Megazyme 氨[快速]检测试剂盒(K-AMIAR)


氨[快速]检测试剂盒

货号:K-AMIAR
包装:1 Kit

  • 英文名:Ammonia (Rapid) Assay Kit
  • 品牌:Megazyme
Megazyme 氨[快速]检测试剂盒,Ammonia (Rapid) Assay Kit,货号:K-AMIAR,96次(手工),用于包括葡萄汁和葡萄酒以及其它食品、饮料样本中氨含量的快速检测。

产品详情质检信息

氨[快速]检测试剂盒 , Ammonia (Rapid) Assay Kit , 货号:K-AMIAR
品牌:Megazyme
货号:K-AMIAR
中文品名:氨[快速]检测试剂盒
品名:Ammonia (Rapid) Assay Kit
规格: 96次(手工) / 960次 (微孔板) / 960次(自动分析仪)
应用:氨[快速]检测试剂盒,用于包括葡萄汁和葡萄酒以及其它食品、饮料样本中氨含量的快速检测。 辅助因子更强的稳定性,溶解后的辅助因子在4°C下可保存超过1年。适合手工、微孔板和自动分析仪分析。
原理:
食品、饮料和其它食材中氨的紫外检测方法
Megazyme 氨[快速]检测试剂盒(K-AMIAR)
检测方法:分光光度法 @340 nm
反应时间:~ 5分钟
检测限: 0.07 mg/L
应用案例:
葡萄汁、葡萄酒、水果汁、软饮料、奶制品(例如牛奶)、营养食品、酱油、蛋及蛋制品、奶酪、肉、加工肉、海鲜、烘焙产品、化肥、医药、烟草、化妆品、水、凯氏定氮、纸张(和纸板)、水和其他材料 (例如:生物培养、样品等)
方法识别:
基于此原理的检测方法被MEBAK接受认可。
试剂盒组成:
Bottle 1: 缓冲液(36 ml,pH 8),添加α-酮戊二酸和叠氮化钠(0.02% w/v)作为防腐剂
  4°C下稳定超过 2年
Bottle 2: NADPH
  -20°C稳定超过5年
Bottle 3: 谷氨酸脱氢酶(2.2 mL)
  4°C稳定超过2年
Bottle 4: 氨标准溶液(5 mL, 0.04 mg/mL) 溶于0.02% (w/v)叠氮钠
  4°C稳定超过2年
优点:

使用谷氨酸脱氢酶,反应异常迅速
提供稳定的酶悬浮液 价格非常具有竞争力
所有试剂制备后可以稳定保存超过2年
官网提供Mega-Calc™ 软件工具用于一站式原始数据处理
包含标准品
辅助因子更强的稳定性
适合手工、微孔板和自动分析仪分析

参考文献:
Grape and wine analysis: Oenologists to exploit advanced test kits. Charnock, S. C. & McCleary, B. V. (2005). Revue des Enology, 117, 1-5.
Megazyme “advanced” wine test kits general characteristics and validation. Charnock, S. J., McCleary, B. V., Daverede, C. & Gallant, P. (2006). Reveue des Oenologues, 120, 1-5.
Combined intracellular nitrate and NIT2 effects on storage carbohydrate metabolism in Chlamydomonas. Remacle, C., Eppe, G., Coosemans, N., Fernandez, E. & Vigeolas, H. (2014). Journal of Experimental Botany, 65(1), 23-33.
A mutation in GDP-mannose pyrophosphorylase causes conditional hypersensitivity to ammonium, resulting in Arabidopsis root growth inhibition, altered ammonium metabolism, and hormone homeostasis. Barth, C., Gouzd, Z. A., Steele, H. P. & Imperio, R. M. (2010). Journal of Experimental Botany, 61(2), 379-394.
Proteomic phenotyping of Novosphingobium nitrogenifigens reveals a robust capacity for simultaneous nitrogen fixation, polyhydroxyalkanoate production, and resistance to reactive oxygen species. Smit, A. M., Strabala, T. J., Peng, L., Rawson, P., Lloyd-Jones, G. & Jordan, T. W. (2012). Applied and Environmental Microbiology, 78(14), 4802-4815.
No effects of gluten in patients with self-reported non-celiac gluten sensitivity after dietary reduction of fermentable, poorly absorbed, short-chain carbohydrates. Biesiekierski, J. R., Peters, S. L., Newnham, E. D., Rosella, O., Muir, J. G. & Gibson, P. R. (2013). Gastroenterology, 145(2), 320-328.
The interaction between high ammonia diet and bile duct ligation in developing rats: assessment by spatial memory and asymmetric dimethylarginine. Huang, L. T., Chen, C. C., Sheen, J. M., Chen, Y. J., Hsieh, C. S. & Tain, Y. L. (2010). International Journal of Developmental Neuroscience, 28(2), 169-174.
Dietary protein excess during neonatal life alters colonic Microbiota and mucosal response to inflammatory mediators later in life in female pigs. Boudry, G., Jamin, A., Chatelais, L., Gras-Le Guen, C., Michel, C. & Le Huërou-Luron, I. (2013). The Journal of Nutrition, 143(8), 1225-1232.
Effects of enzymatic modification of wheat protein on the formation of pyrazines and other volatile components in the Maillard reaction. Lee, S. E., Chung, H. & Kim, Y. S. (2012). Food Chemistry, 131(4), 1248-1254.
使用手册:
K-AMIAR使用手册
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