久久综合九色综合欧洲色-久久综合九色综合桃花-久久综合九色综合网站-久久综合久久综合九色-亚洲影院在线播放-亚洲永久视频

技術文章您現在的位置:首頁 > 技術文章 > ClickChemistry點擊化學疊氮試劑Azide Plus and Picolyl Azide Reagents

ClickChemistry點擊化學疊氮試劑Azide Plus and Picolyl Azide Reagents

更新時間:2023-04-22   點擊次數:1223次

Azide Plus and Picolyl Azide 試劑

Kinetic comparison of conventional azide
(Figure 1). Kinetic comparison of chelating azide and non-chelating conventional azide.

Recent advances in the design of copper-chelating ligands, such as THPTA or BTTAA that stabilize the Cu(I) oxidation state in aqueous solution, improve the kinetics of the copper-catalyzed azide-alkyne cycloaddition (CuAAC) reaction and greatly increase the sensitivity of alkyne detection. Copper-chelating ligands have also been shown to increase the biocompatibility of the CuAAC reaction by preventing the copper ions from causing biological damage1. The next step in improving the CuAAC reaction was the development of copper-chelating azides as more reactive substrates. Since it is speculated that the Cu(I)-azide association is the rate-determining step in the CuAAC catalytic cycle2, the introduction of a copper-chelating moiety at the azide reporter molecule allows for a dramatic raise of the effective Cu(I) concentration at the reaction site, enhancing the weakest link in the reaction rate acceleration(Figure 2). It has been proposed that the high reactivity of chelating azides comes from the rapid copper-azido group interaction which occurs prior to Cu(I) acetylide formation, and this renders the deprotonation of alkyne in the rate-determining step3. This concept was successfully exploited to perform CuAAC reactions using pyridine-based copper-chelating azides (picolyl azides) as substrates4-6. Nevertheless, the copper-chelating motif of picolyl azide molecules is not complete, requiring the presence of a copper chelator (e.g. THPTA) to achieve significant improvement in the kinetics of the CuAAC reaction3, 4.

In efforts to improve the performance of the CuAAC reaction in complex media, Click Chemistry Tools developed new chelating azides with a complete copper-chelating system in their structure, termed “Azides Plus"(Figure 3). These azides are capable of forming strong, active copper complexes and are therefore considered both reactant and catalyst in the CuAAC reaction. Using these types of azides, the CuAAC reaction becomes a bimolecular reaction and displays much faster kinetics compared to the CuAAC reaction performed with conventional azides.

Comparative kinetic measurements for the CuAAC reaction(Figure 4)were performed using an agarose-alkyne resin labeling experiment (3.0 uM CuSO4, with (6.0 uM) or without THPTA ligand) using Cy5 Azide Plus, Cy5 Picolyl Azide, and Cy5 bis-Triazole Azide – the fastest copper-chelating azide that has been reported to date7. As expected, the picolyl azide containing the incomplete copper-chelating motif displays relatively slow reactivity, in particular without the presence of THPTA. The kinetic data shows that completing a copper-chelating moiety greatly enhances reactivity, and importantly does not require the presence of copper-chelating ligands. Interestingly, the copper-chelating azides developed by Click Chemistry Tools display almost identical reactivity in the CuAAC reaction compared to the most reactive copper-chelating azide reported up to now7, bis-triazole azide.

The new copper chelating azides allow the formation of azide copper complexes that react almost instantaneously with alkynes under diluted conditions. This unprecedented reactivity in the CuAAC reaction is of special value for the detection of low abundance targets, improving biocompatibility, and any other application where greatly improved S/N ratio is highly desired.

Selected References:
  1. Steinmetz, N. F., et al. (2010). Labeling live cells by copper-catalyzed alkyne–azide click chemistry. Bioconjug Chem., 21 (10), 1912-6. [PubMed]

  2. Rodionov, V. O., et al. (2007). Ligand-accelerated Cu-catalyzed azide-alkyne cycloaddition: a mechanistic report. J Am Chem Soc., 129 (42), 12705-12. [PubMed]
    Presolski, S. I., et al. (2010). Tailored ligand acceleration of the Cu-catalyzed azide-alkyne cycloaddition reaction: practical and mechanistic implications. J Am Chem Soc., 132 (41), 14570-6. [PubMed]

  3. Simmons, J. T., et al. (2011). Experimental investigation on the mechanism of chelation-assisted, copper(II) acetate-accelerated azide-alkyne cycloaddition. J Am Chem Soc., 133 (35), 13984-4001. [PubMed]

  4. Marlow, F. L., et al. (2014). Monitoring dynamic glycosylation in vivo using supersensitive click chemistry. Bioconjug Chem., 25 (4), 698-706. [PubMed]

  5. Clarke, S., et al. (2012). Fast, cell-compatible click chemistry with copper-chelating azides for biomolecular labeling. Angew Chem Int Ed Engl., 51 (24), 5852-6. [PubMed]

  6. Gaebler, A., et al. (2016). A highly sensitive protocol for microscopy of alkyne lipids and fluorescently tagged or immunostained proteins. J Lipid Res., 57 (10), 1934-1947. [PubMed]

  7. Gabillet, S., et al. (2014). Copper-chelating azides for efficient click conjugation reactions in complex media. Angew Chem Int Ed Engl., 53 (23), 5872-6. [PubMed]

訂購信息(靶點科技國內倉庫):


靶點科技(北京)有限公司

靶點科技(北京)有限公司

地址:中關村生命科學園北清創意園2-4樓2層

© 2025 版權所有:靶點科技(北京)有限公司  備案號:京ICP備18027329號-2  總訪問量:316503  站點地圖  技術支持:化工儀器網  管理登陸

主站蜘蛛池模板: 免费观看一区二区 | 婷婷中文网 | 精东影业果冻传媒蜜桃 | 一区二区三区高清在线观看 | www.av在线视频| 天天舔天天干 | 高清一区在线 | 精东影业果冻传媒蜜桃 | 久久久国产一区二区三区 | 日韩a一级欧美一级在线播放 | 日本综合在线观看 | 5151四虎永久在线精品免费 | 亚洲欧洲精品视频在线观看 | 久久天天躁狠狠躁夜夜2020一 | 春意影院午夜免费入口 | 97视频免费观看 | 色偷偷伊人| 久久香蕉国产线看免费 | 99精品国产三级在线观看 | 国产专区精品 | www.100lu | 国内91视频 | 亚洲一区免费视频 | 亚洲免费视频网址 | 四虎影视884aa·com | 欧美成人a人片 | 成人韩免费网站 | 日本深夜福利19禁在线播放 | 韩国福利视频一区二区 | 日韩精品一区二区三区毛片 | 日韩精选视频 | 久久精品2 | 国产日本欧美高清免费区 | 色婷婷久久久swag精品 | 好男人影视神马在线www | 性刺激免费视频观看在线观看 | 五月天男人的天堂 | 国产欧美日韩在线一区二区不卡 | 理论福利午夜 | 亚洲国语在线视频手机在线 | 2021久久精品永久免费 |