Whatman Puradisc 13 针头式滤器, 6779-1302, 6790-1302

  • 名称 : Puradisc 13 针头式滤器
  • 型号 : 6779-1302, 6790-1302
  • 价格 :
  • 特点 : Whatman Puradisc 针头式滤器具有一流的质量,是最经济的选择。它可以快速有效的过滤样品,最大过滤量为100ml。Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302
  • Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302

    详细描述

    Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302

    Whatman Puradisc滤器由无色聚丙烯或聚碳酸酯材料制成,有标准进口 (female luer lock)和出口(male luer)接头(除非另有说明)。有无菌包装、医疗级别包装可选,还有特殊尖头出口可用于高精确度样品分离回收入微型管,避免了空气阻塞作用。

    特点
    ·无色聚丙烯(Whatman Puradisc 30 和 Aqua 30是聚碳酸酯)
    ·标准进口和出口接头
    ·无菌包装和医疗级别包装
    ·尖头出口规格(可选)用于直接回收入微型瓶
    ·可选或玻璃微纤维介质
    ·无菌包装随时可用
    ·多种材质滤

    Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302

    Puradisc 13
    特点
    ·直径13mm的针头式滤器
    ·最大样品量10ml
    ·样品吸附量低< 25 µl保证最大的样品得率
    ·可选玻璃微纤维
    ·可选尖头出口规格
    应用
    ·生物样品准备
    ·HPLC样品制备 

    Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302

    Whatman Puradisc 13 针头式滤器, 6779-1302, 6790-1302

    Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302
     
    6760-1302, 6760-1304, 6763-1304, 6765-1302, 6765-1304, 6766-1302, 6766-1304, 6768-1302, 6768-1304, 6771-1304, 6775-1302, 6775-1304, 6777-1302, 6777-1304, 6778-1302, 6779-1302, 6779-1304, 6780-1302, 6780-1304, 6781-1304, 6782-1302, 6782-1304, 6783-1302, 6783-1304, 6784-1301, 6784-1302, 6784-1304, 6784-1310, 6784-1350, 6785-1302, 6785-1304, 6786-1301, 6786-1302, 6788-1302, 6788-1304, 6789-1301, 6789-1302, 6790-1302, 6789-1304, 6790-1304, 6791-1302, 6791-1304, 6792-1302, 6792-1304, 6796-1304, 6806-1316, 6816-1315, 6818-1304, 6820-1316, 6821-1310, 6822-1312, 6823-1327, 6825-1307, 6827-1315, 10462945, 10462940
     
    Whatman 沃特曼 Puradisc 13 针头式滤器, 6779-1302, 6790-1302

     

    上海金畔生物科技有限公司

    文章号:6779-1302-6779-1302

    Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒

    Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒
    Lbis® High Molecular Adiponectin-Mouse/Rat

    • 产品特性
    • 相关资料
    • Q&A
    • 参考文献

    Lbis® High Molecular Adiponectin-Mouse/RatShibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒

    Shibayagi 小鼠/大鼠 人高分子量脂联素 ELISA试剂盒

    Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒

    Adiponectin(脂联素)是脂肪细胞分泌的一种细胞因子。作为脂肪细胞因子,控制脂肪代谢和胰岛素感受性、是抗糖尿病、抗动脉粥样硬化、抗炎症的重要物质。血液中的脂联素通过聚集单聚体形成3聚体、6聚体或者是12-18聚体。三聚体(LMW)通过胶原三螺旋链的非共价相互作用以及球状体C1q域的疏水相互作用形成。三聚体聚集形成六聚体(MMW)或者更大的多聚体(HMW)。

    Adiponectin与各种各样的生长因子相结合有明显的亲和性,将其隔离能影响细胞的生长、血管新生和细胞组织的重建。血液中HMW的测定值除了表示总脂联素以外,同时明确地反映出BMI和性别、体重减轻的影响、糖耐量、肝脏的胰岛素感受性、代谢综合征和2型糖尿病。预计HMW的测定比起总脂联素的测定,对于代谢综合征和DM2的分析更有帮助。

    Shibayagi的此款试剂盒只用于测定高分子Adiponectin。

    ◆特点

     

    ● 短时间测定(总的反应时间:4小时)

    ● 微量样品可测

    ● 使用对环境无害的防腐剂

    ● 全部试剂均为液体,可直接使用

    ● 精密的测定精度和高再现性

     

     

    ◆构成

     

    组成部分

    状态

    容量

    (A)   抗体固相化 96 孔板

    洗净后使用

    96 wells(8×12)/1块

    (B)   标准溶液(2,000 ng/mL)

    稀释后使用

    200 μL/1 瓶

    (C)   缓冲液

    即用

    60 mL/1 瓶

    (D)   HRP标识抗脂联素抗体

    稀释后使用

    100 μL/1 瓶

    (F)   显色液(TMB)

    即用

    12 mL/1 瓶

    (H)   反应终止液(1M H2SO4)※小心轻放

    即用

    12 mL/1 瓶

    ( I ) 浓缩洗净液(10×)

    稀释后使用

    100 mL/1 瓶

    封板膜

    3 张

    使用说明书

    1 份

    ◆交叉反应

    动物种类

    对象物质

    反应性和交叉率(%)

    Mouse

    Adiponectin(HMW)

    100

    Adiponectin(Hexamer)

    <5

    Adiponectin(Trimer)

    不存在交叉反应

    Adiponectin(Monomer)

    不存在交叉反应

    MCH

    不存在交叉反应

    TNF-α

    不存在交叉反应

    IFN-γ

    不存在交叉反应

    Insulin

    不存在交叉反应

    Leptin

    不存在交叉反应

    Rat

    Adiponectin(HMW)

    100

    Adiponectin(Monomer)

    不存在交叉反应

    TNF-α

    不存在交叉反应

    IFN-γ

    不存在交叉反应

    Insulin

    不存在交叉反应

    Leptin

    不存在交叉反应

    ※交叉率浓度为1,000 ng/mL

    ◆样品信息

    小鼠/大鼠的血清•血浆•培养液

    50 μL/well(稀释样品)

    ※血浆采血建议使用肝素处理

    ※正常样品的稀释倍数为50倍(~25倍)

     

    ◆测量范围

    3.13~200 ng/mL(标准曲线范围)

    78.25~5,000 ng/mL(25倍稀释样品)

    0.1565~10 μg/mL(50倍稀释样品)

     

    ◆Validation data

    精度测试(检测内变异系数)

    样品

    A

    B

    1

    29.5

    129

    2

    30.7

    125

    3

    29.8

    128

    4

    29.0

    126

    5

    29.6

    126

    mean

    29.7

    127

    SD

    0.631

    1.89

    CV(%)

    2.12

    1.49

    单位:ng/mL

    再现性测试(检测内变异系数)

    测量日/样品

    C

    D

    E

    第0天

    196

    126

    62.5

    第1天

    192

    130

    59.1

    第2天

    196

    125

    60.7

    第3天

    190

    125

    60.3

    mean

    193

    127

    60.7

    SD

    2.63

    2.27

    1.41

    CV(%)

    1.36

    1.79

    2.33

    单位:ng/mL n=2

    添加回收测试

    样品H

    添加量

    实测值

    回收量

    回收率(%)

    0

    68.5

    35.0

    103

    34.5

    98.6

    65.0

    132

    63.5

    97.7

    95.0

    165

    96.9

    102

    单位:ng/mL n=2



    样品I

    添加量

    实测值

    回收量

    回收率(%)

    0

    23.3

    18.0

    40.3

    17.0

    94.4

    26.0

    50.6

    27.3

    105

    32.0

    55.5

    32.2

    101

    单位:ng/mL n=2

     

    稀释直线性测试

    用稀释缓冲液分3次连续稀释2个血清样品的测量结果,直线回归方程的R2在0.9987~0.9993之间。

    相关资料


    Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒 Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒 Shibayagi 小鼠/大鼠 高分子量脂联素 ELISA试剂盒
    说明书

    ELISA试剂盒选择指南①②

    ELISA试剂盒选择指③④

    参考文献



    1.

    Maternal intake of grape seed procyanidins during lactation induces insulin resistance and an adiponectin resistance-like phenotype in rat offspring. Caimari A, Marine-Casado R, Boque N, Crescenti A, Arola L, Del Bas JM. Sci Rep. 2017 Oct 3;7(1):12573.


    2.

    Effects of β-Glucan Content and Pearling of Barley in Diet-Induced Obese Mice. Seiichiro Aoe, Yasunori Ichinose, Noriko Kohyama, Kozo Komae, Asuka Takahashi, Toji Yoshioka, and Takashi Yanagisawa. Posted online on 27 Sep 2017.

    https://doi.org/10.1094/CCHEM-04-17-0083-R

    3.

    The cannabinoid ligand LH-21 reduces anxiety and improves glucose handling in diet-induced obese pre-diabetic mice. Romero-Zerbo SY, Ruz-Maldonado I, Espinosa-Jimenez V, Rafacho A, Gomez-Conde AI, Sanchez-Salido L, Cobo-Vuilleumier N, Gauthier BR, Tinahones FJ, Persaud SJ, Bermudez-Silva FJ. Sci Rep. 2017 Jun 21;7(1):3946.


    4.

    Moringa oleifera from Cambodia Ameliorates Oxidative Stress, Hyperglycemia, and Kidney Dysfunction in Type 2 Diabetic Mice. Tang Y, Choi EJ, Han WC, Oh M, Kim J, Hwang JY, Park PJ, Moon SH, Kim YS, Kim EK. J Med Food. 2017 May;20(5):502-510


    5.

    Gelidium amansii extract ameliorates obesity by down-regulating adipogenic transcription factors in diet-induced obese mice. Kang JH, Lee HA, Kim HJ, Han JS. Nutr Res Pract. 2017 Feb;11(1):17-24.


    6.

    Oleuropein aglycone enhances UCP1 expression in brown adipose tissue in high-fat-diet-induced obese rats by activating β-adrenergic signaling. Oi-Kano Y, Iwasaki Y, Nakamura T, Watanabe T, Goto T, Kawada T, Watanabe K, Iwai K. J Nutr Biochem. 2017 Feb;40:209-218.


    7.

    Mild Hyperbaric Oxygen Inhibits Growth-related Decrease in Muscle Oxidative Capacity of Rats with Metabolic Syndrome. Takemura A, Ishihara A. J Atheroscler Thromb. 2017 Jan 1;24(1):26-38.


    8.

    Germinated Pigmented Rice (Oryza Sativa L. cv. Superhongmi) Improves Glucose and Bone Metabolisms in Ovariectomized Rats. Chung SI, Ryu SN, Kang MY. Nutrients. 2016 Oct 21;8(10).


    9.

    Sodium alginate prevents progression of non-alcoholic steatohepatitis and liver carcinogenesis in obese and diabetic mice. Miyazaki T, Shirakami Y, Kubota M, Ideta T, Kochi T, Sakai H, Tanaka T, Moriwaki H, Shimizu M. Oncotarget. 2016 Mar 1;7(9):10448-58.


    10.

    Biotin augments acetyl CoA carboxylase 2 gene expression in the hypothalamus, leading to the suppression of food intake in mice. Sone H, Kamiyama S, Higuchi M, Fujino K, Kubo S, Miyazawa M, Shirato S, Hiroi Y, Shiozawa K. Biochem Biophys Res Commun. 2016 Jul 29;476(3):134-9.


    11.

    Reduced rat plasma lysophosphatidylglycerol or lysophosphatidic acid level as a biomarker of aristolochic acid-induced renal and adipose dysfunctions. Tsutsumi T, Okamoto Y, Yamakawa S, Bingjun C, Ishihara A, Tanaka T, Tokumura A. Life Sci. 2016 Jul 15;157:208-16.


    12.

    Fermentation of purple Jerusalem artichoke extract to improve the α-glucosidase inhibitory effect in vitro and ameliorate blood glucose in db/db mice. Wang Z, Hwang SH, Lee SY, Lim SS. Nutr Res Pract. 2016 Jun;10(3):282-7.


    13.

    Anti-diabetic effects of luteolin and luteolin-7-O-glucoside on KK-Ay mice. Zang Y, Igarashi K, Li Y. Biosci Biotechnol Biochem. 2016 May 12:1-7.


    14.

    The combination of maternal and offspring high-fat diets causes marked oxidative stress and development of metabolic syndrome in mouse offspring. Ito J, Nakagawa K, Kato S, Miyazawa T, Kimura F, Miyazawa T. Life Sci. 2016 Apr 15;151:70-5.


    15.

    Wasabi leaf extracts attenuate adipocyte hypertrophy through PPARγ and AMPK. Oowatari Y, Ogawa T, Katsube T, Iinuma K, Yoshitomi H, Gao M. Biosci Biotechnol Biochem. 2016 May 3:1-8.


    16.

    Biotin augments acetyl CoA carboxylase 2 gene expression in the hypothalamus, leading to the suppression of food intake in mice. Sone H, Kamiyama S, Higuchi M, Fujino K, Kubo S, Miyazawa M, Shirato S, Hiroi Y, Shiozawa K. Biochem Biophys Res Commun. 2016 May 12


    17.

    Oral administration of Aloe vera gel powder prevents UVB-induced decrease in skin elasticity via suppression of overexpression of MMPs in hairless mice. Saito M, Tanaka M, Misawa E, Yao R, Nabeshima K, Yamauchi K, Abe F, Yamamoto Y, Furukawa F. Biosci Biotechnol Biochem. 2016 Apr 4:1-9.


    18.

    The combination of maternal and offspring high-fat diets causes marked oxidative stress and development of metabolic syndrome in mouse offspring. Ito J, Nakagawa K, Kato S, Miyazawa T, Kimura F, Miyazawa T. Life Sci. 2016 Apr 15;151:70-75.


    19.

    Total and high molecular weight adiponectin levels in the rat model of post-myocardial infarction heart failure. Kalisz M, Baranowska B, Wolinska-Witort E, Maczewski M, Mackiewicz U, Tulacz D, Gora M, Martynska L, Bik W. J Physiol Pharmacol. 2015 Oct;66(5):673-80.


    20.

    Anti-obese and anti-diabetic effects of a mixture of daidzin and glycitin on C57BL/6J mice fed with a high-fat diet. Zang Y, Igarashi K, Yu C. Biosci Biotechnol Biochem. Vol.79(1), p117-23, 2015.


    21.

    Dietary Administration of Aloe Vera Gel Extract Inhibits Intestinal Polyp Formation in Min Mice Fed a High-Fat Diet. Chihara T, Shimpo K, Beppu H, Kaneko T, Higashiguchi T, Sonoda S, Tanaka M, Yamada M and Abe. Pharm Anal Acta 2015, 6:3


    22.

    Preventive effects of astaxanthin on diethylnitrosamine-induced liver tumorigenesis in C57/BL/KsJ-db/db obese mice. Ohno T, Shimizu M, Shirakami Y, Miyazaki T, Ideta T, Kochi T, Kubota M, Sakai H, Tanaka T, Moriwaki H. Hepatol Res. Jul 2015.


    23.

    Effects of liquid konjac on parameters related to obesity in diet-induced obese mice. Aoe S, Kudo H, Sakurai S. Biosci Biotechnol Biochem. Vol.79(7), p1141-6, Jul 2015.


    24.

    The anti-obesity and anti-diabetic effects of kaempferol glycosides from unripe soybean leaves in high-fat-diet mice. Zang Y, Zhang L, Igarashi K, Yu C. Food Funct. Vol.11;6(3), p834-41, Mar 2015.


    25.

    Ashitaba (Angelica keiskei) extract prevents adiposity in high-fat diet-fed C57BL/6 mice. Zhang T, Yamashita Y, Yasuda M, Yamamoto N, Ashida H. Food Funct. Vol.6(1), p134-144, Jan 2015.


    26.

    Anti-obese and anti-diabetic effects of a mixture of daidzin and glycitin on C57BL/6J mice fed with a high-fat diet. Zang Y, Igarashi K, Yu C. Bioscience, Biotechnology, and Biochemistry, Vol.79(1), 2015.


    27.

    Oolong, black and pu-erh tea suppresses adiposity in mice via activation of AMP-activated protein kinase. Yamashita Y, Wang L, Wang L, Tanaka Y, Zhang T, Ashida H. Food Funct. Vol.5(10), p2420-29, Oct 2014.


    28.

    Functional ingredients and cardiovascular protective effect of pumpkin seed oils. Al-Okbi SY., Mohamed DA., Kandi E., Ahmed EK., Mohammed SE. Source: Grasas y Aceites, Vol.65(1), p1-10, Jan-Mar 2014.


    29.

    The novel dipeptidyl peptidase-4 inhibitor teneligliptin prevents high-fat diet-induced obesity accompanied with increased energy expenditure in mice. Fukuda-Tsuru S., Kakimoto T., Utsumi H., Kiuchi S., Ishi S. European Journal of Pharmacology, Vol.723(15), p207-215, Jan 2014.


    30.

    Non-alcoholic steatohepatitis and preneoplastic lesions develop in the liver of obese and hypertensive rats: Suppressing effects of EGCG on the development of liver lesions. Kochi T., Shimizu M, Terakura D., Baba A., Ohno T., Kubota M., Shirakami Y., Tsurumi H., Tanaka T., Moriwaki H. Cancer Letters, Vol342(1), p60-69, Jan 2014.


    31.

    Anti-glycation Activity of Japanese Chestnut (Castanea crenata) Inner Skin Extract is Beneficial for Type 2 Diabetes in a Rat Model. Mizutani T., Shizuka F., Matsuzawa T., Amano Y., Arikawa Y. Anti-Aging Medicine, Vol.10(6), p112-119, 2014.


    32.

    Chronic Administration of Bovine Milk-Derived α-Lactalbumin Improves Glucose Tolerance via Enhancement of Adiponectin in Goto-Kakizaki Rats with Type 2 Diabetes. Yamaguchi M., Takai S. Biological and Pharmaceutical Bulletin, Vol.37(2014) No.3, p.404-408, 2014.


    33.

    Effects of Sleeve Gastrectomy on Lipid Metabolism in an Obese Diabetic Rat Model. Kawano, Y., Ohta, M., Hirashita, T., Masuda, T., Inomata, M., Kitano. S. Obesity Surgery, Vol.23(12), p1947-1956, Dec 2013.


    34.

    Quercetin glucosides promote ischemia-induced angiogenesis, but do not promote tumor growth. Sumi M., Tateishi N., Shibata H., Ohki T., Sat M. Life Sciences, Vol.93(22), p814-819, Nov 2013.


    35.

    I ntake of mulberry 1-deoxynojirimycin prevents diet-induced obesity through increases in adiponectin in mice. Tsuduki T., Kikuchi I., Kimura T., Nakagawa K., Miyazawa T. Food Chemistry, Vol.139(1-4), p16-23, Aug 2013.


    36.

    Effects of Sleeve Gastrectomy on Lipid Metabolism in an Obese Diabetic Rat Model. Y.Kawano, M.Ohta, T.Hirashita, T.Masuda, M.Inomata, S.Kitano. Obesity Surgery, Jul 2013.


    37.

    Rosehip Extract Inhibits Lipid Accumulation in White Adipose Tissue by Suppressing the Expression of Peroxisome Proliferator-activated Receptor Gamma. Nagatomo A., Nishida N., Matsuura Y.and Shibata N. Prev Nutr Food Sci, Vol.18(2), p85-91, Jun 2013.


    38.

    Glucose Use in Fasted Rats Under Sevoflurane Anesthesia and Propofol Anesthesia. K.Sato, T.Kitamura, G.Kawamura, Y.Mori, R.Sato, Y.Araki, Y.Yamada. Anesth Analg, Jun 2013.


    39.

    Supplementing Obese Zucker Rats with Niacin Induces the Transition of Glycolytic to Oxidative Skeletal Muscle Fibers. Ringseis R., Rosenbaum S., Gessner D.K., Herges L., Kubens J.F., Mooren F-C., Kruger K. and Eder K. J.Nutr, Vol.143(2), p125-131, Feb 2013.


    40.

    Quercetin intake during lactation modulates the AMP-activated protein kinase pathway in the livers of adult male rat offspring programmed by maternal protein restriction. Sato S., Mukai Y., Saito T. The Journal of Nutritional Biochemistry, Vol.24(1), p118-123, Jan 2013.


    41.

    Azuki bean polyphenols intake during lactation upregulate AMPK in male rat offspring exposed to fetal malnutrition. Mukai Y,Sun Y, Sato S. Nutrition, Vol.29(1), p291-297, Jan 2013.


    42.

    Effect of Angiotensin II Type 2 Receptor-Interacting Protein on Adipose Tissue Function via Modulation of Macrophage Polarization. F.Jing, M.Mogi, L.-J.Min, K.Ohshima, H.Nakaoka, K.Tsukuda, X.Wang, J.Iwanami, M.Horiuchi. PLOS one, 2013.


    43.

    Prevention mechanisms of glucose intolerance and obesity by cacao liquor procyanidin extract in high-fat diet-fed C57BL/6 mice. Y. Yamashita., M. Okabe., M. Natsume., H. Ashida. Archives of Biochemistry and Biophysics, Mar 2012.


    44.

    High-fat diet-induced reduction of peroxisome proliferator-activated receptor-γ coactivator-1α messenger RNA levels and oxidative capacity in the soleus muscle of rats with metabolic syndrome. F. Nagatomo., H. Fujino., H. Kondo., I. Takeda., K. Tsuda., A. Ishihara. Nutrition Research, Vol.32(2), p144-151, Feb 2012.


    45.

    Oral Ingestion of Aloe vera Phytosterols Alters Hepatic Gene Expression Profiles and Ameliorates Obesity-Associated Metabolic Disorders in Zucker Diabetic Fatty Rats. E. Misawa., M. Tanaka., K. Nomaguchi., K. Nabeshima., M. Yamada., T. Toida., and K. Iwatsuki. J. Agric. Food Chem., Vol.60 (11), p2799-2806, 2012.


    46.

    The effects of running exercise on oxidative capacity and PGC-1α mRNA levels in the soleus muscle of rats with metabolic syndrome. F. Nagatomo., H. Fujino., H. Kondo., M. Kouzaki., N. Gu., I. Takeda., K. Tsuda., and A. Ishihara. The Journal of Physiological Sciences, Vol. 62, p105-114, Nov 2012.


    47.

    Roles of Interleukin 17 in Angiotensin II Type 1 Receptor-Mediated Insulin Resistance. K. Ohshima., M. Mogi., F. Jing., J. Iwanami., K. Tsukuda., L-J. Min., J. Higaki., M. Horiuchi. American Heart Association. Hypertension. Vol.59, p493-499, 2012.


    48.

    A Comparative Study of Gastric Banding and Sleeve Gastrectomy in an Obese Diabetic Rat Model. T. Masuda., M. Ohta., T. Hirashita., Y. Kawano., H. Egucji., K. Yada., Y. Iwashita., S. Kitano. Obesity Surgery, Aug 2011.


    49.

    Anti-Diabetic Effects of a Kaempferol Glycoside-Rich Fraction from Unripe Soybean (Edamame,Glycine max L.Merrill.’Jindai’) Leaves on KK-Ay Mice. Y. Zang., H. Sato., K. Igarashi. Biosci.Biotechnol.Biochem, Vol.75(9), p1677-1684, 2011.


    50.

    Effects of visceral fat resection and gastric banding in an obese diabetic rat model. T. Hirashita., M. Ohta., Y. Endo., T. Masuda., Y. Iwashita., S. Kitano. Surgery, Vol.151(1), p6-12, 2012.


    51.

    Preventive Effects of Curcumin on the Development of Azoxymethane-Induced Colonic Preneoplastic Lesions in Male C57BL/KsJ-db/db Obese Mice. M. Kubota., M. Shimizu., H. Sakai., Y. Yasuda., D. Terakura., A. Baba., T. Ohno., H. Tsurumi., T. Tanaka., H. Moriwaki. Nutrition and Cancer, Vol.64(1), 2012.


    52.

    Preventive Effects of Curcumin on the Development of Azoxymethane-Induced Colonic Preneoplastic Lesions in Male C57BL/KsJ-db/db Obese Mice. M. Kubota., M. Shimizu., H. Sakai., Y. Yasuda., D. Terakura., A. Baba., T. Ohno., H. Tsurumi., T. Tanaka., H. Moriwaki. Nutrition and Cancer, Vol.64(1), 2012.


    53.

    Antihyperlipidemic and Body Fat-Lowering Effects of Silk Proteins with Different Fibroin/Sericin Compositions in Mice Fed with High Fat Diet. Chung-Won Seo,In Chul Um,Catherine W.Rico,and Mi Young Kang. J.Agric.Food Chem. Vol.59, p4192-4197, 2011.


    54.

    Trehalose prevents adipocyte hypertrophy and mitigates insulin resistance. C,Arai.,N,Arai.,A,Mizote.,K,Kohno.,K,Iwaki.,T,Hanaya.,S,Arai.,S,Ushio.,S,Fukuda. Nutrition Research, Vol.30(12), p840-848, 2010.


    55.

    Combined Effects of Short-term Calorie Restriction and Exercise on Insulin Action in Normal Rats. H,Y,Jiang.,T,Koike.,P,Li.,Z,H,Wang.,Y,Kawata.,Y,Oshida. Horm Metab Res,  Vol.42(13), p950-954, 2010.


    56.

    Dietary Hesperidin Exerts Hypoglycemic and Hypolipidemic Effects in Streptozocin-Induce Marginal Type 1 Diabetic Rats. Akiyama,S., Katsumata,S., Suzuki,K., Ishimi,Y.,Wu,J., and Uehara,M. J Clin Biochem Nutr.January, Vol.46(1), p87-92, 2010.


    57.

    Hypoglycemic and Hypolipidemic Effects of Hesperidin and Cyclodextrin-Clathrated Hesperetin in Goto-Kakizaki Rats with Type 2 Diabetes. Akiyama,S., Katsumata,S., Suzuki,K., Nakayama,Y., Ishimi,Y. and Uehara,M. Bioscience,Biotechnology,and Biochemistry. Vol.73, No.12, p2779-2782, 2009.


    产品编号 产品名称 产品规格 产品等级 产品价格
    638-13079 (AKMAN-011)Lbis® Mouse/Rat HMW Adiponectin ELISA Kit
    Lbis® 小鼠/大鼠 人高分子量脂联素 ELISA试剂盒
    96 tests

    Fisherbrand 增厚载玻片12-550-1012-550-10-赛默飞中国代理商

    产品信息
    产品名称:
    Fisherbrand 增厚载玻片12-550-10
    产品型号:
    12-550-10
    Fisherbrand 增厚载玻片12-550-1012-550-10 产品特点
      比标准载玻片厚约20% *分白玻片和磨砂玻片*由1.2mm厚度的抗化洁净玻璃制成*品质均一,预清洁,即用型*磨砂玻片一端有喷砂书写区

    Fisherbrand 增厚载玻片12-550-1012-550-10
    产品详细信息:

    比标准载玻片厚约20% 

    *分白玻片和磨砂玻片

    *由1.2mm厚度的抗化洁净玻璃制成

    *品质均一,预清洁,即用型

    *磨砂玻片一端有喷砂书写区

    FisherbrandTM多聚赖氨酸防脱载玻片12-545-7812-545-78-赛默飞中国代理商

    产品信息
    产品名称:
    FisherbrandTM多聚赖氨酸防脱载玻片12-545-78
    产品型号:
    12-545-78
    FisherbrandTM多聚赖氨酸防脱载玻片12-545-7812-545-78 产品特点
      多聚赖氨酸涂层,有效防脱*多聚赖氨酸涂层,有效防止样本脱落, 避免背景着色*可吸附不易固定的组织切片,特别适合 脱落细胞和培养细胞*可吸附冰冻组织切片,还可吸附甲醛、 乙醇、Bouin 液或非交联固定的组织 切片*可用于原位杂交技术、免疫细胞化学技 术等

    FisherbrandTM多聚赖氨酸防脱载玻片12-545-7812-545-78
    产品详细信息:

    多聚赖氨酸涂层,有效防脱

    *多聚赖氨酸涂层,有效防止样本脱落, 避免背景着色

    *可吸附不易固定的组织切片,特别适合 脱落细胞和培养细胞

    *可吸附冰冻组织切片,还可吸附甲醛、 乙醇、Bouin 液或非交联固定的组织 切片

    *可用于原位杂交技术、免疫细胞化学技 术等

    Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE 500/PK

    【简单介绍】

    Whatman为客户提供多种多样的特殊实验产品,以满足实验者的不同实验需求。秉承Whatman传统的质量,这些产品集合了易于操作、精确度高、一致性好等优点。

    【简单介绍】

    Whatman为客户提供多种多样的特殊实验产品,以满足实验者的不同实验需求。秉承Whatman传统的质量,这些产品集合了易于操作、精确度高、一致性好等优点。

    【详细说明】

    原装进口英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

    产品介绍:

    Galss Microfiber Filters玻璃微纤维滤纸

    Whatman玻璃微纤维滤纸采用100%硼硅酸玻璃纤维制造而

    成,包括不含粘合剂呈化学惰性的和含黏合剂的2种类型。

    这种深度滤纸流速快、负载力大、保留颗粒极为细小,

    可达亚微颗粒范围。玻璃微纤维滤纸能承受高达500℃的温

    度,所以能用于需要灼烧的比重分析和高温气体过滤。

    Whatman玻璃微纤维滤纸具有毛细纤维结构,能吸附比同

    等纤维素滤纸更多的水分,使其能适用于点样分析和液闪计

    数方法,并能制成全透明,用于后续的显微检验。

    Whatman玻璃微纤维滤纸如GF/BGF/D具有高流速、低抗

    性和高颗粒负载力的特征,是理想的预滤产品,能明显地增

    加过滤量。多级GMF 150滤纸特别适合于预滤那些难过滤的

    大容量溶液。

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

        玻璃微纤维GF系列

    玻璃微纤维GF系列

    无黏合剂玻璃微纤维滤纸

    Grade GF/A : 1.6 μm

    保留细小颗粒、流速快、负载力高,用于高效常规过滤,包

    括废水水污染检测,用于过滤水、藻类和细菌培养、食品分

    析、蛋白过滤和弱?发射器的放免测定,推荐用于空气污染

    监测中的颗粒物重量测定、烟囱取样和吸附等。

    此类滤纸也以滤杯和一次性过滤漏斗形式提供。

    Grade GF/B : 1.0 μm

    厚度是GF/A3倍,湿强更高,负载力也明显增强。用于保

    留细小颗粒,流速快。特别适用于在液体澄清或颗粒定量中

    悬浮细颗粒高的样品处理。可用于膜过滤前的细颗粒物预过

    滤,用于要求高负载力的LSC技术。

    Grade GF/C : 1.2 μm

    保留细小颗粒,有很好的流速。在世界许多地方,这是用于

    收集饮用水和天然、工业废水中的悬浮物的标准滤纸。

    快速而有效地澄清含小到中等细小颗粒的水溶液。当需要更

    高负载的时候,广泛地用于细胞培养、液闪计数和结合分析

    方面。

    此种滤纸也可用于滤杯。

    Grade 934-AH : 1.5 μm

    用这种普遍的滤纸截流细小颗粒的优越性,在于快流速和高

    负载力下有着非常高的保留效率。这是种表面光滑,高保留

    力的硼硅酸微纤维滤纸,可耐高温达500℃。指定用于测定

    水中悬浮物总数去除浑浊物和细菌培养的过滤。Grade 934-

    AH用于很多范围的实验室应用中。推荐用于水污染监测、

    细胞培养、液闪计数和空气污染监测。

    Grade 934-AH RTUNEW

    Grade 934-AH,广泛用于总悬浮颗粒分析,现在为您带来全

    新的Ready-To-Use (RTU)规格,帮你节省更多的时间。

    934-AH RTU不含有粘合剂,由高纯的硼硅酸玻璃微纤维制成,

    完全符合标准方法的要求。预洗脱和预称量的规格,无需您

    做预处理,使您的试验流程更流畅。每张RTU滤纸被放置于

    一个铝盘中,在铝盘边上贴的抗热标签上清晰标注了滤纸的

    重量。

    特征和优点

    l 快速方便:可直接使用预洗、预称量的滤纸,无需再预处理

    l 高效:高流速下超细颗粒保留

    l 高载量:可处理非常浑浊的样品

    应用

    934-AH RTU符合最新版水中总悬浮颗粒的检测标准方法

    2540D的要求,被广泛用于水体检测,包括:

    l 河流、湖泊和海岸水体监测

    l 废水处理厂的废水纯化

    l 工厂排水监控

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

     

     

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

     

    石英滤纸-Grade QM-A : 2.2μm

    高纯度石英(SiO2)微纤维滤纸,特别推荐用于烟囱、烟道、

    烟雾方面空气污染监测工作,操作温度可达500℃。滤纸经

    热处理,无黏合剂,重金属和碱土建树含量特别低。用于

    PM-10检测。QM-A根据EPA标准编号,适合大部分应用。订

    货信息请参考空气样品滤纸/石英滤纸部分。

    Grade GF/D : 2.7 μm

    流速相当快,在相同颗粒保留度的条件下,整个过滤速度比

    纤维素更快。滤纸较厚,具有较强的负载力,可作为膜的预

    滤。由不同大小来适合大多数滤器。GF/D为保留细小颗粒的

    膜提供了很好的保护,可以和GF/B一起使用,给膜提供了非

    常有效的预滤保护。

    GF/F : 0.7 μm

    小到0.7μm的细小颗粒的保留率极高,不同于滤膜,它有非

    常快的流速,负载力极高。

    因具有严格的0.6μm-0.8μm颗粒保留度和纯硼硅酸结构,

    EPA TCLP 1311毒性滤取方法是以GF/F为基质创建的。

    这种滤纸在今天仍是很好的选择。推荐用于DNA吸附和纯

    化,过滤细小沉淀蛋白非常有效,GF/FGF/D一起可以作

    为极其难以澄清的生化溶液、流体和核酸的预滤膜。

    这种滤纸同时也提供滤杯和一次性漏斗形式。

    Grade EPM 2000 : 2.0 μm

    EPM 2000被专门开发用来在高流量空气采样设备来收集大

    气中颗粒剂气溶胶。由100%高纯度硼硅玻纤制成,用于痕

    迹污染物在最低干扰和背景情况下的化学分析。

    Grade GMF 150 : 1μm2μm

    Whatman GMF150是一种多层玻璃微纤维滤膜,最上层是个

    粗滤层(10μm),下层是孔径为1μm或者2μm的有网孔的细

    滤层。采用100%硼硅酸玻璃纤维制成,没有任何添加剂,

    通过很好的预滤作用来增强对颗粒的负载能力和加快过滤

    速度。

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

    英国Whatman10463882无粘合剂玻璃微纤维滤纸UNIFLO 13/0.2 PTFE  500/PK

    订货信息:

    CATALOG NO货号

    DESCRIPTION描述

    10463823

    UNIFLO 13/0.45 PTFE 1000/PK

    10463852

    UNIFLO 13/0.2 RC 500/PK

    10463862

    UNIFLO 13/0.45 RC 500/PK

    10463872

    UNIFLO 13/0.2 NYL 1000/PK

    10463875

    UNIFLO 13/0.2 RC 1000/PK

    10463876

    UNIFLO 13/0.45 RC 1000/PK

    10463877

    UNIFLO 13/0.2 NYL 500/PK

    10463878

    UNIFLO 13/0.45 NYL 1000/PK

    10463879

    UNIFLO 13/0.45 NYL 500/PK

    10463880

    UNIFLO 13/0.45 PTFE 500/PK

    10463881

    UNIFLO 13/0.2 PTFE 1000/PK

    10463882

    UNIFLO 13/0.2 PTFE 500/PK

     

     

     

     

    上海金畔生物科技有限公司

    文章号:20824020-20824020

    蛋白质检测Bradford试剂

    蛋白质检测Bradford试剂
    Protein Assay Bradford Reagent

    • 产品特性
    • 相关资料
    • Q&A
    • 参考文献

    蛋白质检测Bradford试剂蛋白质检测Bradford试剂

    Protein Assay Bradford Reagent 


      本产品含有考马斯亮蓝(CBB)G-250,能够用于Bradford法测定溶液中蛋白质的浓度。在酸性条件下CBB和蛋白质结合后,最大吸收波长会从465nm增加至595nm,再根据吸光度的变化测定出蛋白质的浓度。即使测定样品中含界面活性剂,只要在一定浓度一下也不会影响测定结果。(共存物质的影响请参照下表)

     

    ◆测定法


    (1)试管

    (2)试管

    (3)微量滴定板

    测定范围

    100~1000μg/mL

    6.25~100μg/mL

    0.78~25μg/mL

    测定样品量

    10μL

    20μL

    150μL

    本产品

    500μL

    380μL

    150μL

    反应时间

    室温下静置10分钟

    测定

    在595nm下测定

    使用plate Reader在595nm下测定

    ※根据测定范围,可以参考表格的样品量和本产品的混合比例

     

    测定结果


    (1)试管

    蛋白质检测Bradford试剂


    (2)试管

    蛋白质检测Bradford试剂


    (3)微量滴定板

    蛋白质检测Bradford试剂



    ◆共存物质的影响


      使用本产品测定蛋白质的浓度时,样品溶液中的下列物质在该浓度一下时并不会对测定结果产生影响。


    物质

    浓度

    物质

    浓度

    CHAPS

    5%

    NP-40

    0.1%

    Trion X-100

    0.1%

    乙醇

    10%

    Tween 20

    0.1%

    丙三醇

    20%

    SDS

    0.025%

    甲醇

    10% 

    产品编号 产品名称 产品规格 产品等级 产品价格
    168-25911 Protein Assay Bradford Reagent
    蛋白质检测Bradford试剂
    1L 蛋白质定量用

    美国wheatonW225173-0307 棕色色谱进样瓶W225173-0307-赛默飞中国代理商

    产品信息
    产品名称:
    美国wheatonW225173-0307 棕色色谱进样瓶
    产品型号:
    W225173-0307
    美国wheatonW225173-0307 棕色色谱进样瓶W225173-0307 产品特点
      由符合ASTM TYPE Ⅰ 标准的硼硅酸盐玻璃制造,容量为1.8ml,宽瓶的设计,加样更容易。适用于绝大部分的自动进样器。瓶盖为单层PTFE膜胶垫顶开口11mm铝盖。

    美国wheatonW225173-0307 棕色色谱进样瓶W225173-0307
    产品详细信息:

    由符合ASTM TYPE 标准的硼硅酸盐玻璃制造,容量为1.8ml,宽瓶的设计,加样更容易。适用于绝大部分的自动进样器。瓶盖为单层PTFE膜胶垫顶开口11mm铝盖。

     

    订货号

    描述

    包装

    225179

    透明,卷曲口

    100/

    W225151-0205 

    透明,卷曲口,黄色盖

    100/

    W225151-0204 

    透明,卷曲口,蓝色盖

    100/

    W225173-0203

    棕色,卷曲口,红色铝盖

    100/

    W225173-0207 

    棕色,卷曲口,绿色铝盖

    100/

    W225173-0104

    棕色,卷曲口,蓝色铝盖

    100/

    W225173-0307 

    棕色,卷曲口,绿色铝盖

    100/

    W225173-0103 

    棕色,卷曲口,红色铝盖

    100/

    W225173-0107 

    棕色,卷曲口,绿色铝盖

    100/

    W225173-0304 

    棕色,卷曲口,蓝色铝盖

    100/

    W225173-03 

    棕色,卷曲口,铝盖

    100/

    W225173-01 

    棕色,卷曲口,铝盖

    100/

    W225173-0303 

    棕色,卷曲口,红色铝盖

    100/

    W225173-0204 

    棕色,卷曲口,蓝色铝盖

    100/

    Mini LabRoller混合仪 美国Labnet 货号:H5500-230V(已停产,升级为H5600)

    名称:Mini LabRoller混合仪

    品牌:美国Labnet

    订货号:H5500-230V(已停产,升级为H5600)

    Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)

    咨询此产品

    产品介绍

    Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)

          Mini LabRoller 混合仪专为在可水平或垂直混合样品而设计,结构简单,适用广泛。大容量和微量管同样适用。可以在冷藏室和培养箱里使用。该混合器在生物化学、分子生物学等领域中使用广泛,同时也适用于临床测试和组织化学。

        设计紧凑、光滑。小巧而有效的机架设计充分利用了空间,使其可适用任何实验室。方便用于培养箱,适宜在4°C40°C。重量轻,可手提,方便移动。简单的构造容易清洁和去污。

        Mini LabRoller混合仪运动范围宽,迷你的独特设计,可以从激烈的水平运动调整到温和的旋转运动经过翻动支架,可使样品充分混合当支架(管垂直支架放置)插入的时候,就可产生运动。整机可以进行简单的旋转,也可即停进行翻转。Mini LabRoller混合仪的末端有电源开关,可制造更有力的翻转运动。摇动可简单通过插入支架来完成,支架角度限制为20°、45°和60°。3个支架中的任何一个都能被当作一个摇动的托盘使用。使用供应杆,支架可垂直安装(管垂直支架放置)。支架转速固定为24rpm。

        Mini LabRoller混合仪可互换支架以适应多种规格的管子,标配36 x 1.5/2.0ml支架。另外还有两种支架可提供(需另购)。一种适合10x15ml管(或15~16mm直径的试管)和12×12~13mm直径的试管。另一种适合6x50ml锥形管。微量板能在任何一种支架上使用。

        Mini LabRoller混合仪可在多种地方使用,三种支架应用范围广,双重支架可改变机子的位置,已产生大范围的运动。除此之外,它还小巧,安静和经济实用。

    l          设计小巧

    l          运动多样

    l          操作安静

    l          冷藏室和培养箱兼容

    规格参数                             

    转速:           24rpm

    尺寸(W x D x H)21.3 x 10.2 x 12.6 cm

    温度范围:       +4 65

    转动方式:       摇摆,旋转和晃动

    重量:           8kg

    摆动角度:       可调,090°

    电压/频率:      30V/50Hz

    订货信息

    货号                                                       

    H5500-230V  美国Labnet  Mini LabRollerTM 混合仪,配36×1.5ml/2.0ml管支架

    H5500-02    36×1.5ml/2.0ml管支架

    H5500-15    10x15ml(直径15~16mm和12×12~13mm直径管支架

    H5500-50    6x50ml 管支架

     Mini LabRoller混合仪                                                        美国Labnet                                                        货号:H5500-230V(已停产,升级为H5600)

    Fisher Scientific Traceable存储式湿度 / 温度计11-661-18-赛默飞中国代理商

    产品信息
    产品名称:
    Fisher Scientific Traceable存储式湿度 / 温度计
    产品型号:
    11-661-18
    Fisher Scientific Traceable存储式湿度 / 温度计11-661-18 产品特点
      Fisher Scientific Traceable存储式湿度 / 温度计 产品特色 ● Traceable 存 储 式 湿 度 / 温 度 计 对相对湿度的测量范围为 10.0 至 95.0%;对温度的测量范围为 0.0 至 199.9℉或 -18.0 至 93.0℃,其高 28.6 mm 的液晶显示屏上可同时显示 温度和相对湿度。通过采用高精度热 敏电阻,在 0 到 40℃ 的温度范围内

    Fisher Scientific Traceable存储式湿度 / 温度计11-661-18
    产品详细信息:

    Fisher Scientific Traceable存储式湿度 / 温度计

    产品特色

    Traceable 湿 / 对相对湿度的测量范围为 10.0 95.0%;对温度的测量范围为 0.0 199.9℉或 -18.0 93.0℃,其高 28.6 mm 的液晶显示屏上可同时显示 温度和相对湿度。通过采用高精度热 敏电阻,在 0 40 的温度范围内, 测量精度为 ±1℃;此温度范围外的 测量精度为 ±2℃;分辨率为 0.1°。 读数可为华氏度或摄氏度。每次按键时,都会有声音提示。

    采用高分子膜电阻性传感器,在相对湿度量程中间范围可实 ±2% 的测量精度,此范围以外精度为 ±4%。湿度分辨率为 相对湿度的 0.1%。为了确保精度,这款温度计由 A2LAA2LA CNAL 的校准证书是互相承认的)认可的 ISO17025 校准实 验室颁发了单独编号的 Traceable 证书。这份证书表明,此项产 品符合美国国家标准技术研究院(NIST)颁布的标准。通过触摸 按钮,可以调出任意时间段内所采集到的zui高和zui低湿度和温 度读数。装置上的专门有一个保持(HOLD)按钮,可锁定显示 器以采集读数。本装置具有自动关闭节电功能,您也可以禁用此功能。

    Fisher Scientific Traceable存储式湿度 / 温度计11-661-18 此装置配备有输出插头,可用于向计算机传输数据。使用此功能, 可在清洁室、计算机房、存储设施等各种环境下监测可能影响关 键部件和试验的温度和湿度值。美观大方的双色 ABS 塑料外壳 具有轻质(305)和坚固的特点,可适用于恶劣的野外或试验室 环境。本装置配套提供有探头 / 接线、Traceable 产品证书、硬 质塑料携带箱及可连续使用 100 小时的 9V 电池。装置大小为 181×70×31.8 mm。探针长 216 mm、直径为 16.8 mm,带 3 m 长的接线。

    技术参数/订购信息

    订货号

    FIS11-661-18

    证书(NIST/A2LA

    湿度范围

    10.095.0%RH

    湿度分辨率

    0.1%RH

    温度范围

    -17.793.3

    温度分辨率

    0.1°

    Thermo Scientific陶瓷加热磁力搅拌7*7SP131320-33Q-赛默飞中国代理商

    产品信息
    产品名称:
    Thermo Scientific陶瓷加热磁力搅拌7*7
    产品型号:
    SP131320-33Q
    Thermo Scientific陶瓷加热磁力搅拌7*7SP131320-33Q 产品特点
      Cimarec 系列数字型搅拌器、加热板和加热搅拌器提供精确的控制性能、杰出的安全性和卓越的温度控制功能。三种大小不同的产品型号可以覆盖微量化学研究和大量样品的处理● 加热面板平整光滑,提供高效的热量传递,可使样品快速升温● 数字型显示屏显示温度,可控的温度范围为 5℃ 至 540℃,通过旋钮设定,设置的增量为 5℃● StirTracTM 功能提供温和、稳定的搅拌速度和强劲的磁力耦合作用,

    Thermo Scientific陶瓷加热磁力搅拌7*7SP131320-33Q
    产品详细信息:

    Cimarec 系列数字型搅拌器、加热板和加热搅拌器提供精确的控制性能、杰出的安全性和卓越的温度控制功能。三种大小不同的产品型号可以覆盖微量化学研究和大量样品的处理
    ● 加热面板平整光滑,提供高效的热量传递,可使样品快速升温
    ● 数字型显示屏显示温度,可控的温度范围为 5℃ 至 540℃,通过旋钮设定,设置的增量为 5℃
    ● StirTracTM 功能提供温和、稳定的搅拌速度和强劲的磁力耦合作用,样品拿走前可即刻停止搅拌子转动
    ● HOT TOP 报警系统在温度超过 50℃ 时启用,防止过热
    ● 外形设计提供优质的稳定性和耐用性
    ● 三种大小可以处理不同的样品量Thermo Scientific陶瓷加热磁力搅拌7*7SP131320-33Q

    Fisher 超配型数字计时器06-662-11-赛默飞中国代理商

    产品信息
    产品名称:
    Fisher 超配型数字计时器
    产品型号:
    06-662-11
    Fisher  超配型数字计时器06-662-11 产品特点
      Fisher 超配型数字计时器技术参数/订购信息订货号FIS06-662-11特色带钥匙链和时钟Traceable证书有最长使用时间100小时通道数1通道倒数/顺数倒数/顺数分辨率1秒钟

    Fisher  超配型数字计时器06-662-11
    产品详细信息:

    Fisher Scientific Traceable 超配型数字计时器

    价格经济,值得每个人拥有

    ● 这是迄今为止最称手的计时器,它可以 夹在实验室工作外套、皮带、笔记本、 书写板上,或是夹在任何其它地方。用 户绝不会丢失自己的个性化计时器。

    六位数液晶显示屏以小时、分、秒的格 式持续显示剩余时间

    ● 用户可以按 1 秒的步进量,在 100 小时到 1 秒钟的时间范围内设 置倒计时。当到达零位后,它会发出响亮的闹铃声,持续 60 秒 钟,用户可以手动关闭闹铃。在跑表模式下,它可以从 1 秒钟开 始顺数计时到 99 小时,然后重复计时。采用石英晶体,精确度为 0.005%。它在顺数和倒数计时中还具备暂停功能

    当您不在试验室时,超配型数据定时器TM 可为您提供提醒功能

    ● 这款定时器会提醒用户何时应当去观察色彩变化、何时应当从烘 箱中取出试样,或是何时应当去开会。它配有 8.4 毫米高的大数 字显示屏,易于察看。操作它只需五个按键,迅速而直观(完全 不需阅读说明书)。如需让它充当跑表,只要点按一只按键即可。

    这款计时器具备石英晶体的精度

    ● 为了确保精度,这款计时器由 A2LA(A2LA 与 CNAL 的校准证 书是互相承认的)认可的 ISO 17025 校准实验室颁发了单独编号 的 Traceable 证书。这份证书表明,此项产品符合美国国家标准 技术研究院(NIST)颁布的标准。计时器配有耐受化学品的耐用 型 ABS 塑料外壳、钥匙链和系绳、用于放置在金属上的磁体,以 及可供一年半连续使用的氧化银电池,电池可更换。装置尺寸是 51×38×19 毫米。

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    【简单介绍】

    Whatman Mini-UniPrep非针式滤器为HPLC分析样品前处理提供了快速简便的去除颗粒的解决方案。事实上,与其他样品前处理方法相比Mini-UniPrep处理样品的时间仅为原来的1/3。算上样品制备过程中节约的时间成本和大量日常消耗品的成本,Whatman Mini-UniPrep非针式滤器将为您的实验提供更多更有效的便捷。

    【简单介绍】

    Whatman Mini-UniPrep非针式滤器为HPLC分析样品前处理提供了快速简便的去除颗粒的解决方案。事实上,与其他样品前处理方法相比Mini-UniPrep处理样品的时间仅为原来的1/3。算上样品制备过程中节约的时间成本和大量日常消耗品的成本,Whatman Mini-UniPrep非针式滤器将为您的实验提供更多更有效的便捷。

    【详细说明】

    原装进口英国WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    产品介绍:

    Whatman Mini-UniPrep非针式滤器为HPLC分析样品前处理提供了快速简便的去除颗粒的解决方案。事实上,与其他样品前处理方法相比Mini-UniPrep处理样品的时间仅为原来的1/3算上样品制备过程中节约的时间成本和大量日常消耗品的成本,Whatman Mini-UniPrep非针式滤器将为您的实验提供更多更有效的便捷。

    Mini-UniPrep是由一个容量为0.4 mL的套管和一个柱活塞组成。柱活塞底部含有一层过滤层(滤膜),顶部是预先固定好的盖片。操作时,将样品先放入套管内,然后将柱芯的滤膜一端插入套管并加压,使得滤液从下往上透过滤膜进入柱芯内。空气从排气小孔被排出,直到锁环将整个装置密闭。在数秒内,就可以将Mini-Uniprep放入任何可以容纳2ml小瓶的仪器中进行操作。

    Mini-Uniprep

    此滤器既可使用手工操作,也可使用加压机。加压机最多一次可操作6个样品,缩短了操作时间,降低了手动操作的风险。Mini-UniPrep更加适合12 x 32mm自动进样器使用;也可用针头刺破盖片,将样品抽出再手工注射到分析仪器中去。

    特点:

    ?一个滤器解决您整个样品操作,节省1/3时间

    ?可选不同的滤膜,孔径大小有0.20.45µm,可根据样品需要选择
    ?与大多数自动化样品操作系统兼容

    ?较少的消耗,节省40%花销。

    应用:

    ?常规HPLC/UHPLC分析
    ?混合物分析
    ?含量均一性
    ?蛋白沉淀
    ?可溶性检测
    ?溶解测试
    ?样品过滤

    多种Mini-Uniprep滤器满足您的需求

    经过不断的研发和创新,Whatman根据客户的需要制造出了一整套Mini-Uniprep滤器家族,满足各种特殊的应用。对于需要过滤光敏性样品的客户,可以选择Amber Mini-Uniprep;而要使用大通量自动化设备的客户,Whatman的Slit Septa Mini-Uniprep可以满足需要。

    琥珀色 Mini-Uniprep非针头式滤器
    保护样品免受UV损害

    特点和优点:

    ?琥珀色管身保护光敏感样品不被光降解
    ?药品容纳管具有一样的颜色,满足USP抗光性规范
    ?半透明琥珀色管和塞,很容易肉眼观测。

    应用:
    ?适用于任何需要避光的混合物,比如儿茶酚胺或维生素

    Slit Septa Mini-Uniprep非针头式滤器
    用于高通量自动化操作

    特点和优点:
    ?Mini-Uniprep的开口膜盖使其可以用于高通量自动化HPLC仪器的机械操作。
    ?耐用的柔性开口膜盖专为高灵敏度样品操作仪器的需要而设计,样品蒸发量最小。

    应用:
    ?用于具有高灵敏度加样针的仪器的机械操作,满足更大通量。

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    Mini-UniPrep

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK
    Mini-UniPrep

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK
    自动化Mini-Uniprep

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK
    6位压缩仪

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK
    Mini-Uniprep 置于HPLC启动取样器中

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    WhatmanMUPG2HCPWC1非针头式滤器MUP G2 HAND COMP PUR/WH 1/PK

    CATALOG NO货号

    DESCRIPTION描述

    GN203NPEAQU MUP G2 0.2uM PVDF 100/PK
    GN203NPUAQU MUP G2 0.45uM PVDF 100/PK
    GN203NPEORG MUP G2 0.2uM PTFE 100/PK
    GN203NPUORG MUP G2 0.45uM PTFE 100/PK
    GN203NPEPP MUP G2 0.2uM PP 100/PK
    MUPG2PWC1 MUP G2 HAND COMP PUR/WH 1/PK
    GN203NPEAQUSP MUP G2 0.2uM PVDF 100/PK + HC
    GN203NPUAQUSP MUP G2 0.45uM PVDF 100/PK + HC
    GN203NPEORGSP MUP G2 0.2uM PTFE 100/PK + HC
    GN203NPUORGSP MUP G2 0.45uM PTFE 100/PK + HC
    GN203NPEPPSP MUP G2 0.2uM PP 100/PK + HC
    GN203NPENYLSP MUP G2 0.2uM NYL 100/PK + HC
    GS203NPUORGSP MUPG2 SS 0.45uM PTFE 100PK+HC
    GS203NPEORGSP MUPG2 SS 0.2uM PTFE 100PK+HC
    GN203APEORGSP MUPG2 AMB 0.2uM PTFE 100PK+HC
    GN203APEAQUSP MUPG2 AMB 0.2uM PVDF 100PK+HC
    MUPG2HCPWC1 MUP G2 HAND COMP PUR/WH 1/PK
    MUPG2MCPWC8 MUP G2 MULTI COMP PUR/WH 1/PK
    MUPG2MCWT8 MUP G2 Multi Compressor Tray

    上海金畔生物科技有限公司

    文章号19863645-19863645

    异径管(30系列)(简称:30-12.7R 8C)日本三博特sanplatec

    异径管(30系列)(简称:30-12.7R 8C)
    产品编号: WEB14865 价格: 会员价:0元;市场价:0元 产品特点
    简称:30-12.7R 8C
    产品规格
    .
    材料

    确认材料的耐药性 >> 耐药性检索

            异径管(30系列)(简称:30-12.7R 8C)异径管(30系列)(简称:30-12.7R 8C)产品特征

    A

    B

    C

    D

    E

    F

    W

    T(mm)

    适用管外径(inch)

    Tx

    产品编号

    简称

    52

    20

    25

    18

    6

    26

    19

    1/2

    8

    14865

    30-12.7R 8C

     

    单位:mm

    主体:PTFE

    螺帽:ECTFE

    W是对角线的尺寸。

     

    特点

    毫米、英寸规格的管均可通用。

    最大使用压力请咨询。

     

    Phos-tag™ 琼脂糖

    Phos-tag™ 琼脂糖
    Phos-tag™ Agarose

    • 产品特性
    • 相关资料
    • Q&A
    • 参考文献

    Phos-tag™ AgarosePhos-tag™ 琼脂糖

    亲和层析纯化磷酸化蛋白

      填入色谱柱中使用。可分离、纯化、浓缩磷酸化蛋白。不使用界面活性剂、还原剂,可得到状态近似生物体内的磷酸化蛋白。




    原理:


    Phos-tag™ 琼脂糖




    优点、特色:


     缓冲液不含有界面活性剂、还原剂。

     与亲和层析方法类似。

     可在1小时内纯化磷酸化蛋白。

     Phos-tag™ Agarose捕获结合到Tyr、Thr、Ser、Asp、His等氨基酸、糖类、脂类上的无机磷酸根和大

       二价磷酸根

     可在生理条件下(pH7.5)捕捉蛋白。

     纯化后的产物可用于Co-IP实验和其他蛋白活性实验。




    案例、应用:


    【使用例子:A431裂解液中的磷酸化蛋白的纯化】


      把Phos-tag™ 填充到柱里,再加上A431 裂解液。

      SYPRO Ruby染色(左图)再使用Anti-p Tyr抗体进行免疫印迹(右图),检测出结果。

      结果确认磷酸化蛋白浓缩在柱吸附层里。


      M:分子量标记

      Lane 1:未吸附层

      Lane 2:吸附层

      Lane 3:柱清洗层

    Phos-tag™ 琼脂糖


    Phos-tag™ 系列

    磷酸化蛋白新方法!

      Phos-tag™ 是一种能与磷酸离子特异性结合的功能性分子。它可用于磷酸化蛋白的分离(Phos-tag™ Acrylamide)、Western Blot检测(Phos-tag™ Biotin)、蛋白纯化 (Phos-tag™ Agarose)及质谱分析MALDI-TOF/MS (Phos-tag™ Mass Analytical Kit)。


    Phos-tag™ 的基本结构:

    Phos-tag™ 琼脂糖


    特点:

    与-2价磷酸根离子的亲和性和选择性高于其它阴离子

    在pH 5-8的生理环境下生成稳定的复合物

    原理:


    Phos-tag™ 琼脂糖

    相关应用:


    Phos-tag™ 琼脂糖

    相关产品:

     产品名称

     用  途

     Phos-tag™ Acrylamide

     分离: SDS – PAGE 分离不同磷酸化水平的蛋白

     SuperSep Phos-tag™

     分离: 预制胶中含有50μM Phos-tag™ Acrylamide

     Phos-tag™ Biotin

     检测: 代替 Western Blot 检测中的磷酸化抗体

     Phos-tag™ Agarose

     纯化: 通用柱层析,纯化磷酸化蛋白

     Phos-tag™ Mass

     Analytical Kit

     分析: 用于质谱 MALDI-TOF/MS 分析,提高磷酸化分子的检测灵敏度


    phos-tag™ 由日本广岛大学研究生院医齿药学综合研究科医药分子功能科学研究室开发。

    更多产品信息,请点击:http://phos-tag.jp

    Phos-tag™ 琼脂糖

    Phos-tag 第5版说明书

    Phos-tag™ 琼脂糖

    Phos-tag系列 ver 5

    Phos-tag™ 琼脂糖

    说明书

    【参考文献】


    ·  Conversion of graded phosphorylation into switch-like nuclear translocation via autoregulatory mechanisms in ERK signalling[J].Nature communications, 2016, 7,Shindo Y, Iwamoto K, Mouri K, et al.

    ·  PTEN modulates EGFR late endocytic trafficking and degradation by dephosphorylating Rab7[J]. Nature communications, 2016, 7,Shinde S R, Maddika S.

    ·  Feedback control of ErbB2 via ERK-mediated phosphorylation of a conserved threonine in the juxtamembrane domain[J]. Scientific Reports, 2016, 6: 31502,Kawasaki Y, Sakimura A, Park C M, et al.

    ·  Plastid-nucleus communication involves calcium-modulated MAPK signalling[J]. Nature Communications, 2016, 7,Guo H, Feng P, Chi W, et al.

    ·  Sequential domain assembly of ribosomal protein S3 drives 40S subunit maturation[J]. Nature communications, 2016, 7,Mitterer V, Murat G, Réty S, et al.

    ·  Phos-tag analysis of Rab10 phosphorylation by LRRK2: a powerful assay for assessing kinase function and inhibitors[J]. Biochemical Journal, 2016: BCJ20160557,Ito G, Katsemonova K, Tonelli F, et al.

    ·  Analysis of phosphorylation of the myosin targeting subunit of smooth muscle myosin light chain phosphatase by Phos-tag SDS-PAGE[J]. The FASEB Journal, 2016, 30(1 Supplement): 1209.1-1209.1,Walsh M P, MacDonald J A, Sutherland C.

    ·  Using Phos-Tag in Western Blotting Analysis to Evaluate Protein Phosphorylation[J]. Kidney Research: Experimental Protocols, 2016: 267-277,Horinouchi T, Terada K, Higashi T, et al.

    ·  The Abundance of Nonphosphorylated Tau in Mouse and Human Tauopathy Brains Revealed by the Use of Phos-Tag Method[J]. The American journal of pathology, 2016, 186(2): 398-409,Kimura T, Hatsuta H, Masuda-Suzukake M, et al.

    ·  Phos-tag SDS-PAGE resolves agonist-and isoform-specific activation patterns for PKD2 and PKD3 in cardiomyocytes and cardiac fibroblasts[J]. Journal of Molecular and Cellular Cardiology, 2016,Qiu W, Steinberg S F.

    ·  Analysis of phosphorylation of the myosin-targeting subunit of myosin light chain phosphatase by Phos-tag SDS-PAGE[J]. American Journal of Physiology-Cell Physiology, 2016, 310(8): C681-C691,Sutherland C, MacDonald J A, Walsh M P.

    ·  Electrochemical biosensor for protein kinase A activity assay based on gold nanoparticles-carbon nanospheres, phos-tag-biotin and β-galactosidase[J]. Biosensors and Bioelectronics, 2016, 86: 508-515,Zhou Y, Yin H, Li X, et al.

    ·  Validation of Cis and Trans Modes in Multistep Phosphotransfer Signaling of Bacterial Tripartite Sensor Kinases by Using Phos-Tag SDS-PAGE[J]. PloS one, 2016, 11(2): e0148294,Kinoshita-Kikuta E, Kinoshita E, Eguchi Y, et al.

    ·  Phosphopeptide Detection with Biotin-Labeled Phos-tag[J]. Phospho-Proteomics: Methods and Protocols, 2016: 17-29,Kinoshita-Kikuta E, Kinoshita E, Koike T.

    ·  A Phos‐tag SDS‐PAGE method that effectively uses phosphoproteomic data for profiling the phosphorylation dynamics of MEK1[J]. Proteomics, 2016,Kinoshita E, Kinoshita‐Kikuta E, Kubota Y, et al.

    ·  Difference gel electrophoresis of phosphoproteome: U.S. Patent Application 15/004,339[P]. 2016-1-22,Tao W A, Wang L.

    ·  ERK1/2-induced phosphorylation of R-Ras GTPases stimulates their oncogenic potential[J]. Oncogene, 2016,Frémin C, Guégan J P, Plutoni C, et al.

    ·  Microtubules Inhibit E-Cadherin Adhesive Activity by Maintaining Phosphorylated p120-Catenin in a Colon Carcinoma Cell Model[J]. PloS one, 2016, 11(2): e0148574,Maiden S L, Petrova Y I, Gumbiner B M.

    ·  Serine 231 and 257 of Agamous-like 15 are phosphorylated in floral receptacles[J]. Plant Signaling & Behavior, 2016, 11(7): e1199314,Patharkar O R, Macken T A, Walker J C.

    ·  A small molecule pyrazolo [3, 4-d] pyrimidinone inhibitor of zipper-interacting protein kinase suppresses calcium sensitization of vascular smooth muscle[J]. Molecular pharmacology, 2016, 89(1): 105-117,MacDonald J A, Sutherland C, Carlson D A, et al.

    ·  The RNA polymerase II C-terminal domain phosphatase-like protein FIERY2/CPL1 interacts with eIF4AIII and is essential for nonsense-mediated mRNA decay in Arabidopsis[J]. The Plant Cell, 2016: TPC2015-00771-RA,Chen T, Qin T, Ding F, et al.

    ·  Vasorelaxant Effect of 5′-Methylthioadenosine Obtained from Candida utilis Yeast Extract through the Suppression of Intracellular Ca2+ Concentration in Isolated Rat Aorta[J]. Journal of agricultural and food chemistry, 2016, 64(17): 3362-3370,Kumrungsee T, Akiyama S, Saiki T, et al.

    ·  Inhibition of deubiquitinating activity of USP14 decreases tyrosine hydroxylase phosphorylated at Ser19 in PC12D cells[J]. Biochemical and biophysical research communications, 2016, 472(4): 598-602,Nakashima A, Ohnuma S, Kodani Y, et al.

    ·  Actin Tyrosine-53-Phosphorylation in Neuronal Maturation and Synaptic Plasticity[J]. The Journal of Neuroscience, 2016, 36(19): 5299-5313,Bertling E, Englund J, Minkeviciene R, et al.

    ·  AMPK-dependent phosphorylation of lipid droplet protein PLIN2 triggers its degradation by CMA[J]. Autophagy, 2016, 12(2): 432-438,Kaushik S, Cuervo A M.

    ·  Myocardin-related transcription factor a and yes-associated protein exert dual control in G protein-coupled receptor-and RhoA-mediated transcriptional regulation and cell proliferation[J]. Molecular and cellular biology, 2016, 36(1): 39-49,Olivia M Y, Miyamoto S, Brown J H.

    ·  Extensive phosphorylation of AMPA receptors in neurons[J]. Proceedings of the National Academy of Sciences, 2016, 113(33): E4920-E4927,Diering G H, Heo S, Hussain N K, et al.

    ·  The transmembrane region of guard cell SLAC1 channels perceives CO2 signals via an ABA-independent pathway in Arabidopsis[J]. The Plant Cell, 2016, 28(2): 557-567,Yamamoto Y, Negi J, Wang C, et al.

    ·  The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP[J]. Journal of molecular and cellular cardiology, 2016, 90: 1-10,Kimura T E, Duggirala A, Smith M C, et al.

    ·  Atg13 is essential for autophagy and cardiac development in mice[J]. Molecular and cellular biology, 2016, 36(4): 585-595,Kaizuka T, Mizushima N.

    ·  The ChrSA and HrrSA two-component systems are required for transcriptional regulation of the hemA promoter in Corynebacterium diphtheriae[J]. Journal of Bacteriology, 2016: JB. 00339-16,Burgos J M, Schmitt M P.

    ·  Intergenic Variable-Number Tandem-Repeat Polymorphism Upstream of rocA Alters Toxin Production and Enhances Virulence in Streptococcus pyogenes[J]. Infection and Immunity, 2016, 84(7): 2086-2093,Zhu L, Olsen R J, Horstmann N, et al.

    ·  Receptor for advanced glycation end products (RAGE) knockout reduces fetal dysmorphogenesis in murine diabetic pregnancy[J]. Reproductive Toxicology, 2016, 62: 62-70,Ejdesjö A, Brings S, Fleming T, et al.

    ·  Aurora kinase-induced phosphorylation excludes transcription factor RUNX from the chromatin to facilitate proper mitotic progression[J]. Proceedings of the National Academy of Sciences, 2016, 113(23): 6490-6495,Chuang L S H, Khor J M, Lai S K, et al.

    ·  Quantitative phosphoproteomics of protein kinase SnRK1 regulated protein phosphorylation in Arabidopsis under submergence[J]. Journal of experimental botany, 2016: erw107,Cho H Y, Wen T N, Wang Y T, et al.

    ·  Temporal regulation of lipin activity diverged to account for differences in mitotic programs[J]. Current Biology, 2016, 26(2): 237-243,Makarova M, Gu Y, Chen J S, et al.

    ·  Block of CDK1‐dependent polyadenosine elongation of Cyclin B mRNA in metaphase‐i‐arrested starfish oocytes is released by intracellular pH elevation upon spawning[J]. Molecular reproduction and development, 2016, 83(1): 79-87,Ochi H, Aoto S, Tachibana K, et al.

    ·  Mitotic Exit Function of Polo-like Kinase Cdc5 Is Dependent on Sequential Activation by Cdk1[J]. Cell reports, 2016, 15(9): 2050-2062,Rodriguez-Rodriguez J A, Moyano Y, Játiva S, et al.

    ·  PLK2 phosphorylates and inhibits enriched TAp73 in human osteosarcoma cells[J]. Cancer medicine, 2016, 5(1): 74-87,Hu Z B, Liao X H, Xu Z Y, et al.

    ·  Phosphorylated TDP-43 becomes resistant to cleavage by calpain: A regulatory role for phosphorylation in TDP-43 pathology of ALS/FTLD[J]. Neuroscience research, 2016, 107: 63-69,Yamashita T, Teramoto S, Kwak S.

    ·  The Pch2 AAA+ ATPase promotes phosphorylation of the Hop1 meiotic checkpoint adaptor in response to synaptonemal complex defects[J]. Nucleic acids research, 2016: gkw506,Herruzo E, Ontoso D, González-Arranz S, et al.

    ·  An optimized guanidination method for large‐scale proteomic studies[J]. Proteomics, 2016,Ye J, Zhang Y, Huang L, et al.

    ·  Expression and purification of the kinase domain of PINK1 in Pichia pastoris[J]. Protein Expression and Purification, 2016,Wu D, Qu L, Fu Y, et al.

    ·  BRI2 and BRI3 are functionally distinct phosphoproteins[J]. Cellular signalling, 2016, 28(1): 130-144,Martins F, Rebelo S, Santos M, et al.

    ·  Identification of glycoproteins associated with HIV latently infected cells using quantitative glycoproteomics[J]. Proteomics, 2016,Yang W, Jackson B, Zhang H.

    ·  Regulation of Beclin 1 Protein Phosphorylation and Autophagy by Protein Phosphatase 2A (PP2A) and Death-associated Protein Kinase 3 (DAPK3)[J]. Journal of Biological Chemistry, 2016, 291(20): 10858-10866,Fujiwara N, Usui T, Ohama T, et al.

    ·  Regulatory Implications of Structural Changes in Tyr201 of the Oxygen Sensor Protein FixL[J]. Biochemistry, 2016, 55(29): 4027-4035,Yamawaki T, Ishikawa H, Mizuno M, et al.

    ·  Histone demethylase Jmjd3 regulates osteoblast apoptosis through targeting anti-apoptotic protein Bcl-2 and pro-apoptotic protein Bim[J]. Biochimica et Biophysica Acta (BBA)-Molecular Cell Research, 2016, 1863(4): 650-659,Yang D, Okamura H, Teramachi J, et al.

    ·  Analysis of Molecular Species Profiles of Ceramide-1-phosphate and Sphingomyelin Using MALDI-TOF Mass Spectrometry[J]. Lipids, 2016, 51(2): 263-270,Yamashita R, Tabata Y, Iga E, et al.

    ·  Highly sensitive myosin phosphorylation analysis in the renal afferent arteriole[J]. Journal of Smooth Muscle Research, 2016, 52(0): 45-55,Takeya K.

    ·  Functional dissection of the CroRS two-component system required for resistance to cell wall stressors in Enterococcus faecalis[J]. Journal of bacteriology, 2016, 198(8): 1326-1336,Kellogg S L, Kristich C J.

    ·  Regulation of mitogen-activated protein kinase by protein kinase C and mitogen-activated protein kinase phosphatase-1 in vascular smooth muscle[J]. American Journal of Physiology-Cell Physiology, 2016, 310(11): C921-C930,Trappanese D M, Sivilich S, Ets H K, et al.

    ·  ModProt: a database for integrating laboratory and literature data about protein post-translational modifications[J]. Journal of Electrophoresis, 2016, 60(1): 1-4,Kimura Y, Toda T, Hirano H.

    ·  The C-ETS2-TFEB Axis Promotes Neuron Survival under Oxidative Stress by Regulating Lysosome Activity[J]. Oxidative medicine and cellular longevity, 2016,Ma S, Fang Z, Luo W, et al.

    ·  Essential role of the PSI–LHCII supercomplex in photosystem acclimation to light and/or heat conditions by state transitions[J]. Photosynthesis Research, 2016: 1-10,Marutani Y, Yamauchi Y, Higashiyama M, et al.

    ·  Identification of a redox-modulatory interaction between selenoprotein W and 14-3-3 protein[J]. Biochimica et Biophysica Acta (BBA)-Molecular Cell Research, 2016, 1863(1): 10-18,Jeon Y H, Ko K Y, Lee J H, et al.

    ·  Effects of hydrogen sulfide on the heme coordination structure and catalytic activity of the globin-coupled oxygen sensor AfGcHK[J]. BioMetals, 2016, 29(4): 715-729,Fojtikova V, Bartosova M, Man P, et al.

    ·  Identification and functional analysis of phosphorylation in Newcastle disease virus phosphoprotein[J]. Archives of virology, 2016: 1-14,Qiu X, Zhan Y, Meng C, et al.

    ·  Increased level of phosphorylated desmin and its degradation products in heart failure[J]. Biochemistry and Biophysics Reports, 2016, 6: 54-62,Bouvet M, Dubois-Deruy E, Alayi T D, et al.

    ·  Profiling DNA damage-induced phosphorylation in budding yeast reveals diverse signaling networks[J]. Proceedings of the National Academy of Sciences, 2016: 201602827,Zhou C, Elia A E H, Naylor M L, et al.

    ·  Unexpected properties of sRNA promoters allow feedback control via regulation of a two-component system[J]. Nucleic Acids Research, 2016: gkw642,Brosse A, Korobeinikova A, Gottesman S, et al.

    ·  Evolution of ZnII–Macrocyclic Polyamines to Biological Probes and Supramolecular Assembly[J]. Macrocyclic and Supramolecular Chemistry: How Izatt-Christensen Award Winners Shaped the Field, 2016: 415,Kimura E, Koike T, Aoki S.

    ·  Phosphopeptide Enrichment Using Various Magnetic Nanocomposites: An Overview[J]. Phospho-Proteomics: Methods and Protocols, 2016: 193-209,Batalha Í L, Roque A C A.

    ·  In vivo phosphorylation of a peptide tag for protein purification[J]. Biotechnology letters, 2016, 38(5): 767-772,Goux M, Fateh A, Defontaine A, et al.

    ·  Regulation of cell reversal frequency in Myxococcus xanthus requires the balanced activity of CheY‐like domains in FrzE and FrzZ[J]. Molecular microbiology, 2016,Kaimer C, Zusman D R.

    ·  Elevation of cortical serotonin transporter activity upon peripheral immune challenge is regulated independently of p38 mitogen‐activated protein kinase activation and transporter phosphorylation[J]. Journal of neurochemistry, 2016, 137(3): 423-435,Schwamborn R, Brown E, Haase J.

    ·  The Yeast Cyclin-Dependent Kinase Routes Carbon Fluxes to Fuel Cell Cycle Progression[J]. Molecular cell, 2016, 62(4): 532-545,Ewald J C, Kuehne A, Zamboni N, et al.

    ·  Two Degradation Pathways of the p35 Cdk5 (Cyclin-dependent Kinase) Activation Subunit, Dependent and Independent of Ubiquitination[J]. Journal of Biological Chemistry, 2016, 291(9): 4649-4657,Takasugi T, Minegishi S, Asada A, et al.

    ·  Increased level of phosphorylated desmin and its degradation products in heart failure[J]. Biochemistry and Biophysics Reports. 2016,Bouvet M, Dubois-Deruy E, Alayi T D, et al.

    ·  a high‐affinity LCO‐binding protein of Medicago truncatula, interacts with LYK3, a key symbiotic receptor[J]. FEBS letters, 2016, 590(10): 1477-1487,Fliegmann J, Jauneau A, Pichereaux C, et al. LYR3,

    ·  Nek1 Regulates Rad54 to Orchestrate Homologous Recombination and Replication Fork Stability[J]. Molecular Cell, 2016,Spies J, Waizenegger A, Barton O, et al.

    ·  PhostagTM-gel retardation and in situ thylakoid kinase assay for determination of chloroplast protein phosphorylation targets[J]. Endocytobiosis and Cell Research, 2016, 27(2): 62-70,Dytyuk Y, Flügge F, Czarnecki O, et al.

    ·  Luteinizing Hormone Causes Phosphorylation and Activation of the cGMP Phosphodiesterase PDE5 in Rat Ovarian Follicles, Contributing, Together with PDE1 Activity, to the Resumption of Meiosis[J]. Biology of reproduction, 2016: biolreprod. 115.135897,Egbert J R, Uliasz T F, Shuhaibar L C, et al.

    ·  Newby, AC, & Bond, M.(2016). The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP[J]. Journal of Molecular and Cellular Cardiology, 2016, 90: 1-10,Kimura-Wozniak T, Duggirala A, Smith M C, et al. G.

    ·  Yeast lacking the amphiphysin family protein Rvs167 is sensitive to disruptions in sphingolipid levels[J]. The FEBS Journal, 2016, 283(15): 2911-2928,Toume M, Tani M.

    ·  Regulation of CsrB/C sRNA decay by EIIAGlc of the phosphoenolpyruvate: carbohydrate phosphotransferase system[J]. Molecular microbiology, 2016, 99(4): 627-639,Leng Y, Vakulskas C A, Zere T R, et al.

    ·  The Late S-Phase Transcription Factor Hcm1 Is Regulated through Phosphorylation by the Cell Wall Integrity Checkpoint[J]. Molecular and cellular biology, 2016: MCB. 00952-15,Negishi T, Veis J, Hollenstein D, et al.

    ·  Validation of chemical compound library screening for transcriptional co‐activator with PDZ‐binding motif inhibitors using GFP‐fused transcriptional co‐activator with PDZ‐binding motif[J]. Cancer science, 2016, 107(6): 791-802,Nagashima S, Maruyama J, Kawano S, et al.

    ·  ULK1/2 Constitute a Bifurcate Node Controlling Glucose Metabolic Fluxes in Addition to Autophagy[J]. Molecular cell, 2016, 62(3): 359-370,Li T Y, Sun Y, Liang Y, et al.

    ·  Spatiotemporal dynamics of Oct4 protein localization during preimplantation development in mice[J]. Reproduction, 2016: REP-16-0277,Fukuda A, Mitani A, Miyashita T, et al.

    ·  The tandemly repeated NTPase (NTPDase) from Neospora caninum is a canonical dense granule protein whose RNA expression, protein secretion and phosphorylation coincides with the tachyzoite egress[J]. Parasites & Vectors, 2016, 9(1): 1,Pastor-Fernández I, Regidor-Cerrillo J, Álvarez-García G, et al.

    ·  Interaction Analysis of a Two-Component System Using Nanodiscs[J]. PloS one, 2016, 11(2): e0149187,Hörnschemeyer P, Liss V, Heermann R, et al.

    ·  Constitutive Activation of PINK1 Protein Leads to Proteasome-mediated and Non-apoptotic Cell Death Independently of Mitochondrial Autophagy[J]. Journal of Biological Chemistry, 2016, 291(31): 16162-16174,Akabane S, Matsuzaki K, Yamashita S, et al.

    ·  p38β Mitogen-Activated Protein Kinase Modulates Its Own Basal Activity by Autophosphorylation of the Activating Residue Thr180 and the Inhibitory Residues Thr241 and Ser261[J]. Molecular and cellular biology, 2016, 36(10): 1540-1554,Beenstock J, Melamed D, Mooshayef N, et al.

    ·  Lysophosphatidylcholine acyltransferase 1 protects against cytotoxicity induced by polyunsaturated fatty acids[J]. The FASEB Journal, 2016, 30(5): 2027-2039,Akagi S, Kono N, Ariyama H, et al.

    ·  Characterization of a herpes simplex virus 1 (HSV-1) chimera in which the Us3 protein kinase gene is replaced with the HSV-2 Us3 gene[J]. Journal of virology, 2016, 90(1): 457-473,Shindo K, Kato A, Koyanagi N, et al.

    ·  Generation of phospho‐ubiquitin variants by orthogonal translation reveals codon skipping[J]. FEBS letters, 2016, 590(10): 1530-1542,George S, Aguirre J D, Spratt D E, et al.

    ·  Evolution of KaiC-Dependent Timekeepers: A Proto-circadian Timing Mechanism Confers Adaptive Fitness in the Purple Bacterium Rhodopseudomonas palustris[J]. PLoS Genet, 2016, 12(3): e1005922,Ma P, Mori T, Zhao C, et al.

    ·  Phosphorylation of Bni4 by MAP kinases contributes to septum assembly during yeast cytokinesis[J]. FEMS Yeast Research, 2016, 16(6): fow060,Pérez J, Arcones I, Gómez A, et al.

    ·  Alteration of Antiviral Signalling by Single Nucleotide Polymorphisms (SNPs) of Mitochondrial Antiviral Signalling Protein (MAVS)[J]. PloS one, 2016, 11(3): e0151173,Xing F, Matsumiya T, Hayakari R, et al.

    ·  Arm-in-arm response regulator dimers promote intermolecular signal transduction[J]. Journal of bacteriology, 2016, 198(8): 1218-1229,Baker A W, Satyshur K A, Morales N M, et al.

    ·  The lsh/ddm1 homolog mus-30 is required for genome stability, but not for dna methylation in neurospora crassa[J]. PLoS Genet, 2016, 12(1): e1005790,Basenko E Y, Kamei M, Ji L, et al.

    ·  Fine tuning chloroplast movements through physical interactions between phototropins[J]. Journal of Experimental Botany, 2016: erw265,Sztatelman O, Łabuz J, Hermanowicz P, et al.

    ·  Characterization of the Neospora caninum NcROP40 and NcROP2Fam-1 rhoptry proteins during the tachyzoite lytic cycle[J]. Parasitology, 2016, 143(01): 97-113,Pastor-Fernandez I, Regidor-Cerrillo J, Jimenez-Ruiz E, et al.

    ·  Transcriptional Profile during Deoxycholate-Induced Sporulation in a Clostridium perfringens Isolate Causing Foodborne Illness[J]. Applied and environmental microbiology, 2016, 82(10): 2929-2942,Yasugi M, Okuzaki D, Kuwana R, et al.

    ·  Timely Closure of the Prospore Membrane Requires SPS1 and SPO77 in Saccharomyces cerevisiae[J]. Genetics, 2016: genetics. 115.183939,Paulissen S M, Slubowski C J, Roesner J M, et al.

    ·  DDK dependent regulation of TOP2A at centromeres revealed by a chemical genetics approach[J]. Nucleic Acids Research, 2016: gkw626,Wu K Z L, Wang G N, Fitzgerald J, et al.

    ·  OVATE Family Protein 8 Positively Mediates Brassinosteroid Signaling through Interacting with the GSK3-like Kinase in Rice[J]. PLoS Genet, 2016, 12(6): e1006118,Yang C, Shen W, He Y, et al.

    ·  Epithelial Sel1L is required for the maintenance of intestinal homeostasis[J]. Molecular biology of the cell, 2016, 27(3): 483-490, Sun S, Lourie R, Cohen S B, et al.

    ·  Effect of Sodium Dodecyl Sulfate Concentration on Supramolecular Gel Electrophoresis[J]. ChemNanoMat, 2016,Tazawa S, Kobayashi K, Yamanaka M.

    ·  Intergenic VNTR Polymorphism Upstream of rocA Alters Toxin Production and Enhances Virulence in Streptococcus pyogenes[J]. Infection and immunity, 2016: IAI. 00258-16,Zhu L, Olsen R J, Horstmann N, et al.

    ·  Ajuba Phosphorylation by CDK1 Promotes Cell Proliferation and Tumorigenesis[J]. Journal of Biological Chemistry, 2016: jbc. M116. 722751,Chen X, Stauffer S, Chen Y, et al.

    ·  Editorial: International Plant Proteomics Organization (INPPO) World Congress 2014[J]. Frontiers in Plant Science, 2016, 7,Heazlewood J L, Jorrín-Novo J V, Agrawal G K, et al.

    ·  Phosphoinositide kinase signaling controls ER-PM cross-talk[J]. Molecular biology of the cell, 2016, 27(7): 1170-1180,Omnus D J, Manford A G, Bader J M, et al.

    ·  A multiple covalent crosslinked soft hydrogel for bioseparation[J]. Chemical Communications, 2016, 52(15): 3247-3250,Liu Z, Fan L, Xiao H, et al.

    ·  Advances in crop proteomics: PTMs of proteins under abiotic stress[J]. Proteomics, 2016, 16(5): 847-865,Wu X, Gong F, Cao D, et al.

    ·  Cyclin-Dependent Kinase Co-Ordinates Carbohydrate Metabolism and Cell Cycle in S. cerevisiae[J]. Molecular cell, 2016, 62(4): 546-557,Zhao G, Chen Y, Carey L, et al.

    ·  Carbon Monoxide Gas Is Not Inert, but Global, in Its Consequences for Bacterial Gene Expression, Iron Acquisition, and Antibiotic Resistance[J]. Antioxidants & redox signaling, 2016,Wareham L K, Begg R, Jesse H E, et al.

    ·  Two-layer regulation of PAQR3 on ATG14-linked class III PtdIns3K activation upon glucose starvation[J]. Autophagy, 2016: 1-2,Xu D, Wang Z, Chen Y.

    ·  Regulation of sphingolipid biosynthesis by the morphogenesis checkpoint kinase Swe1[J]. Journal of Biological Chemistry, 2016, 291(5): 2524-2534,Chauhan N, Han G, Somashekarappa N, et al.

    ·  PAX5 tyrosine phosphorylation by SYK co-operatively functions with its serine phosphorylation to cancel the PAX5-dependent repression of BLIMP1: A mechanism for antigen-triggered plasma cell differentiation[J]. Biochemical and biophysical research communications, 2016, 475(2): 176-181,Inagaki Y, Hayakawa F, Hirano D, et al.

    ·  A Combined Computational and Genetic Approach Uncovers Network Interactions of the Cyanobacterial Circadian Clock[J]. Journal of Bacteriology, 2016: JB. 00235-16,Boyd J S, Cheng R R, Paddock M L, et al.

    ·  HuR mediates motility of human bone marrow-derived mesenchymal stem cells triggered by sphingosine 1-phosphate in liver fibrosis[J]. Journal of Molecular Medicine, 2016: 1-14,Chang N, Ge J, Xiu L, et al.

    ·  Combined replacement effects of human modified β-hexosaminidase B and GM2 activator protein on GM2 gangliosidoses fibroblasts[J]. Biochemistry and Biophysics Reports, 2016,Kitakaze K, Tasaki C, Tajima Y, et al.

    ·  Roseotoxin B Improves Allergic Contact Dermatitis through a Unique Anti-inflammatory Mechanism Involving Excessive Activation of Autophagy in Activated T-Lymphocytes[J]. Journal of Investigative Dermatology, 2016,Wang X, Hu C, Wu X, et al.

    References on Phos-tag™ Chemistry

    Matrix-assisted laser desorption/ionization time-of-flight mass spectrometry of phosphorylated compounds using a novel phosphate capture moleculeRapid Communications of Mass Spectrometry17, 2075-2081 (2003), H. Takeda, A. Kawasaki, M. Takahashi, A. Yamada, and T. Koike 

    Recognition of phosphate monoester dianion by an alkoxide-bridged dinuclear zinc (II) complexDalton Transactions, 1189-1193 (2004), E. Kinoshita, M. Takahashi, H. Takeda, M. Shiro, and T. Koike

    Quantitative analysis of lysophosphatidic acid by time-of-flight mass spectrometry using a phosphate capture molecule, Journal of Lipid Research45, 2145-2150 (2004), T. Tanaka, H. Tsutsui, K. Hirano, T. Koike, A. Tokumura, and K. Satouchi

    Production of 1,2-Didocosahexaenoyl Phosphatidylcholine by Bonito Muscle Lysophosphatidylcholine/TransacylaseJournal of Biochemistry,136, 477-483 (2004), K. Hirano, H. Matsui, T. Tanaka, F. Matsuura, K. Satouchi, and T. Koike

    Novel immobilized zinc(II) affinity chromatography for phosphopeptides and phosphorylated proteins, Journal of Separation Science, 28, 155-162 (2005), E. Kinoshita, A. Yamada, H. Takeda, E. Kinoshita-Kikuta, and T. Koike

    Detection and Quantification of On-Chip Phosphorylated Peptides by Surface Plasmon Resonance Imaging Techniques Using a Phosphate Capture MoleculeAnalytical Chemistry77, 3979-3985 (2005), K. Inamori, M. Kyo, Y. Nishiya, Y. Inoue, T. Sonoda, E. Kinoshita, T. Koike, and Y. Katayama

    Phosphate-binding tag: A new tool to visualize phosphorylated proteins, Molecular & Cellular Proteomics, 5, 749-757 (2006), E. Kinoshita, E. Kinoshita-Kikuta, K. Takiyama, and T. Koike

    Enrichment of phosphorylated proteins from cell lysate using phosphate-affinity chromatography at physiological pHProteomics, 6, 5088-5095 (2006), E. Kinoshita-Kikuta, E. Kinoshita, A. Yamada, M. Endo, and T. Koike

    Separation of a phosphorylated histidine protein using phosphate affinity polyacrylamide gel electrophoresis, Analytical Biochemistry360, 160-162 (2007), S. Yamada, H. Nakamura, E. Kinoshita, E. Kinoshita-Kikuta, T. Koike, and Y. Shiro

    Label-free kinase profiling using phosphate-affinity polyacrylamide gel electrophresisMolecular & Cellular Proteomics, 6, 356-366 (2007), E. Kinoshita-Kikuta, Y. Aoki, E. Kinoshita, and T. Koike

    A SNP genotyping method using phosphate-affinity polyacrylamide gel electrophoresis, Analytical Biochemistry361, 294-298 (2007), E. Kinoshita, E. Kinoshita-Kikuta, and T. Koike (The phosphate group at DNA-terminal is efficiently captured by Zn2+.Phos-tag.)

    Identification on Membrane and Characterization of Phosphoproteins Using an Alkoxide-Bridged Dinuclear Metal Complex as a Phosphate-Binding Tag MoleculeJournal of Biomolecular Techniques18, 278-286 (2007), T. Nakanishi, E. Ando, M. Furuta, E. Kinoshita, E. Kikuta-Kinoshita, T. Koike, S. Tsunasawa, and O. Nishimura

    A mobility shift detection method for DNA methylation analysis using phosphate affinity polyacrylamide gel electrophoresisAnalytical Biochemistry378, 102-104 (2008), E. Kinoshita-Kikuta, E. Kinoshita, and T. Koike

    Separation of phosphoprotein isotypes having the same number of phosphate groups using phosphate- affinity SDS-PAGEProteomics, 8, 2994-3003 (2008), E. Kinoshita, E. Kinoshita-Kikuta, M. Matsubara, S. Yamada, H. Nakamura, Y. Shiro, Y. Aoki, K. Okita, and T. Koike

    FANCI phosphorylation functions as a molecular switch to turn on the Fanconi anemia pathwayNature Structural & Molecular Biology15, 1138-1146 (2008), M. Ishiai, H. Kitao, A. Smogorzewska, J. Tomida, A. Kinomura, E. Uchida, A. Saberi, E. Kinoshita, E. Kinoshita-Kikuta, T. Koike, S. Tashiro, S. J. Elledge, and M. Takata

    Two-dimensional phosphate affinity gel electrophoresis for the analysis of phosphoprotein isotypes Electrophoresis30, 550-559 (2009), E. Kinoshita, E. Kinoshita-Kikuta, M. Matsubara, Y. Aoki, S. Ohie, Y. Mouri, and T. Koike

    Formation of lysophosphatidic acid, a wound-healing lipid, during digestion of cabbage leavesBioscience, Biotechnology, and Biochemistry,73, 1293-300 (2009), T. Tanaka, G. Horiuchi, M. Matsuoka, K. Hirano, A. Tokumura, T. Koike, and K. Satouchi

    A Phos-tag-based fluorescence resonance energy transfer system for the analysis of the dephosphorylation of phosphopeptidesAnalytical Biochemistry388, 235-241, (2009), K. Takiyama, E. Kinoshita, E. Kinoshita-Kikuta, Y. Fujioka, Y. Kubo, and T. Koike

    Phos-tag beads as an immunoblotting enhancer for selective detection of phosphoproteins in cell lysatesAnalytical Biochemistry389, 83-85, (2009), E. Kinoshita-Kikuta, E. Kinoshita, and T. Koike

    Mobility shift detection of phosphorylation on large proteins using a Phos-tag SDS-PAGE gel strengthened with agaroseProteomics9, 4098- 4101 (2009), E. Kinoshita, E. Kinoshita-Kikuta, H. Ujihara, and T. Koike

    Separation and detection of large phosphoproteins using Phos-tag SDS-PAGENature Protocols4, 1513-1521 (2009), E. Kinoshita, E. Kinoshita-Kikuta, and T. Koike

    A clean-up technology for the simultaneous determination of lysophosphatidic acid and sphingosine-1-phosphate by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry using a phosphate-capture molecule, Phos-tagRapid Communications in Mass Spectrometry24, 1075-1084 (2010), J. Morishige, M. Urikura, H. Takagi, K. Hirano, T. Koike, T. Tanaka, and K. Satouchi

    Genotyping and mapping assay of single-nucleotide polymorphisms in CYP3A5 using DNA-binding zinc(II) complexesClinical Biochemistry43, 302-306 (2010), E. Kinoshita, E. Kinoshita-Kikuta, H. Nakashima, and T. Koike

    The DNA-binding activity of mouse DNA methyltransferase 1 is ragulated phosphorylation with casein kinase 1σ/εBiochemical Journal427, 489-497 (2010), Y. Sugiyama, N. Hatano, N. Sueyoshi, I. Suetake, S. Tajima, E. Kinoshita, E. Kinoshita-Kikuta, T. Koike, and I. Kameshita


    产品编号 产品名称 产品规格 产品等级 产品价格
    308-93563 P™ Agarose
     Phos-tag 琼脂糖
    3ml

    fisher阳离子防脱载玻片 预清洁 superfrost生物显微镜玻片 25X75MM 12-550-15-赛默飞中国代理商

    产品信息
    产品名称:
    fisher阳离子防脱载玻片 预清洁 superfrost生物显微镜玻片 25X75MM 12-550-15
    产品型号:
    fisher阳离子防脱载玻片 预清洁 superfrost生物显微镜玻片 25X75MM 12-550-15 产品特点
      美国fisher载玻片冰冻切片、血细胞分离和巴氏涂片等操作的理想选择● 特殊表面处理,以便组织、细胞能通过静电吸附于玻片,无需另外粘附或包被蛋白,节约操作时间● 加强了吸附力,能有效减少染色过程中的组织块损失● Superfrost Plus 载玻片一端有抗化学腐蚀的白色涂层,ColorFrost Plus 载玻片一端带彩色涂层,方便识别● 适用于组织学、细胞学、微生物学,如冰冻组织切

    fisher阳离子防脱载玻片 预清洁 superfrost生物显微镜玻片 25X75MM 12-550-15
    产品详细信息:

    美国fisher防脱载玻片

    冰冻切片、血细胞分离和巴氏涂片等操作的理想选择
    ● 特殊表面处理,以便组织、细胞能通过静电吸附于玻片,无需另外粘附或包被蛋白,节约操作时间
    ● 加强了吸附力,能有效减少染色过程中的组织块损失
    ● Superfrost Plus 载玻片一端有抗化学腐蚀的白色涂层,ColorFrost Plus 载玻片一端带彩色涂层,方便识别
    ● 适用于组织学、细胞学、微生物学,如冰冻组织切片等
    ● 长× 宽 75×25 mm,有 10 种颜色供选择
    fisher阳离子防脱载玻片 预清洁 superfrost生物显微镜玻片 25X75MM 12-550-15

    250ml PFA窄口瓶日本三博特sanplatec

    250ml PFA窄口瓶
    产品编号: WEB11956 价格: 会员价:0元;市场价:0元 产品特点
    产品规格

    螺旋盖< ?xml:namespace prefix = o ns = "urn:schemas-microsoft-com:office:office" />

    ETFE制、GL25

    全高(mm)

    157

    瓶直径(mm)

    61φ

     

    < ?xml:namespace prefix = v ns = "urn:schemas-microsoft-com:vml" />

    材料

    确认材料的耐药性 >> 耐药性检索

            250ml PFA窄口瓶250ml PFA窄口瓶产品特征: . 

    180ml PFA液体运输容器( 接口数:2个、适合管规格(外径):1/8inch)日本三博特sanplatec

    180ml PFA液体运输容器( 接口数:2个、适合管规格(外径):1/8inch)
    产品编号: WEB24021 价格: 会员价:0元;市场价:0元 产品特点
    全PFA制无金属的液体移送容器
    产品规格

    容量< ?xml:namespace prefix = o ns = "urn:schemas-microsoft-com:office:office" />

    180ml

     接口数(个)

    2

    适合管规格(外径)

    18inch

    管径×高(mm

    59×152

    材料

    确认材料的耐药性 >> 耐药性检索

            180ml PFA液体运输容器( 接口数:2个、适合管规格(外径):1/8inch)180ml PFA液体运输容器( 接口数:2个、适合管规格(外径):1/8inch)产品特征: ●特点
    .低压移送用的容器。
    .PFA制品,无需担心金属溶出。
    .耐热性,耐寒性优越。可在广泛的温度范围使用。(-196℃~250℃)
    ■用途
    可以用于液体运输,也可以作为以下用途使用。
    .干燥容器:从一个口放入N2气体,之后从另外一个口排气。
    .反映容器:从一个口放入液体,之后在从另外一个口排出反应形成的气
    体。
    ●注意
    液氮如果在内部汽化,容易受到非常高的压力。请不要使用。
    如果使用为加压流体,请在0.034MPa以下使用。 

    细胞增殖/毒性检测试剂盒

    细胞增殖/毒性检测试剂盒
    Cytotoxicity LDH Assay Kit-WST

    • 产品特性
    • 相关资料
    • Q&A
    • 参考文献

    双重检测让论文获得可靠数据细胞增殖/毒性检测试剂盒


    细胞增殖/毒性检测试剂盒


      

      Cytotoxicity LDH Assay Kit-WST Cell Counting Kit 是细胞增殖/细胞毒性测试试剂盒。Cytotoxicity LDH Assay Kit-WST测定死细胞释出的乳酸脱氢酶(LDH)的活性,Cell Counting Kit测定活细胞的呼吸活性,采用双重检测能获得高度可靠的数据。

    细胞毒性检测测定多个数据,得到数据支持


    细胞增殖/毒性检测试剂盒

    游离LDH活性(活细胞)

    Cytotoxicity LDH Assay Kit-WST

    制造商编号 : CK12


    细胞呼吸活性(活细胞)

    Cell Counting Kit-8

    制造商编号 : CK04


      Cell Counting Kit-8 是测定活细胞的呼吸活性的试剂盒。毒性检测必须考虑 ①活细胞在减少,②细胞自身活性下降这两种可能性。

      因此进行双重检测得到多方数据支持尤为重要。

    HeLa细胞MitomycinC的细胞毒性检测

    细胞增殖/毒性检测试剂盒

      左图为使用CellCounting Kit-8 和Cytotoxicity LDH Assay Kit-WST对HeLa细胞MitomycinC的细胞毒性检测结果。图中显示加入Mitomycin C导致活细胞减少,死细胞增加。根据两种检测结果能得到“活细胞在减少”这一可靠数据。

    Cytotoxicity LDH Assay Kit-WST

    细胞增殖/毒性检测试剂盒

      Cytotoxicity LDH Assay Kit-WST能测定细胞释放到培养基中的LDH的活性,测定细胞损伤。本试剂盒无需与活细胞反应,对细胞无害。

      可测定活细胞和死细胞的混合细胞培养液中的细胞损伤。




    ◆ 测定原理

      死细胞在培养基中释放LDH,能生成丙酮酸和NADH,其中NADH能把四氮唑盐还原为甲臜。生成的甲臜量与释放出的LDH活性成比例,测定甲臜的吸光值则能测定出LDH的活性。

    细胞增殖/毒性检测试剂盒

    ◆ 特点


      ● 不仅可测细胞培养液,活细胞存在下也可测定死细胞数

      ● 采用高稳定性试剂。调配的溶液可长期保存(冷藏2个月),使用时无需调整

      ● 不采用放射性同位素[51Cr]检测


    产品编号 产品名称 产品规格 产品等级 产品价格
    347-91751 Cytotoxicity LDH Assay Kit-WST 100 tests
    343-91753 Cytotoxicity LDH Assay Kit-WST 500 tests
    341-91754 Cytotoxicity LDH Assay Kit-WST 2000 tests

    维生素E标准物质

    维生素E标准物质
    Vitamin E Reference Standard

    • 产品特性
    • 相关资料
    • Q&A
    • 参考文献

    维生素E标准物质

     

     

      试剂盒包含以下几种物质:
       1.  d-α-生育酚  250mg x1瓶
       2.  d-β-生育酚 250mg x1瓶
       3.  d-γ生育酚 250mg x1瓶
       4.  d-δ生育酚 250mg x1瓶
       5.  3,4-二氢-2,2,5,7,8-五甲基-2H-1-苯并吡喃-6-酚(PMC) 250mg x1瓶

       注意: PMC 是用作HPLC分析维生素E的内标物质,不适用于GC分析。 


     ◆分子式,分子量及产品纯度


    物质名称

    分子式

    分子量

    最大吸收波长

    吸收系数
    E1% 1cm

    纯度

    外观

    d-α-生育酚

    C29H50O2

    430.71

    292 nm

    78.1

    98.5+%

    淡黄色、粘稠液体

    d-β-生育酚

    C28H48O2

    416.69

    296 nm

    89.2

    98.5+%

    d-γ生育酚

    C28H48O2

    416.69

    297 nm

    94.4

    98.5+%

    d-δ生育酚

    C27H46O2

    402.66

    297 nm

    92.9

    98.5+%

    PMC

    C14H20O2

    220.31

    292 nm

    99.0+%

    白色晶体

     

     

    ◆保存和稳定条件 


          每小瓶试剂都是用附有氧吸附剂的铝盖包装的。一旦打开了瓶子,请将此试剂于惰性气体环境中的冰箱中(2~10℃)保存。在此条件下,试剂可保持6个月的稳定性。


    ◆使用指南(溶液的制备)


    1.用天平称取每种试剂各50~100mg,质量确定到0.1mg。

    2.将这些试剂分别溶解在乙醇或己烷溶剂中,直至各维生素同系物的浓度为1mg/mL。再将这些溶液密封保存于5℃,可保存一个月。

    3.在使用前将原液稀释,即可得到每个同系物的标准溶液。

     

     


    ◆相关产品

    产品编号

    产品名

    产品中文名

    级别

    包装

    209-01791

    (+/-)-α-Tocopherol

    (+/-)-α-生育酚

    Wako 1st Grade

    1g

    207-01792

    25g

    208-17751

    (±)-α-Tocopherol Acetate Standard

    生育酚乙酸酯标准品

    for Food Analysis

    100mg

     

    产品编号 产品名称 产品规格 产品等级 产品价格
    302-07111 Vitamin E Reference Standard 
    维生素E标准物质
    1set