论坛时间:2019年11月5-8日论坛时间:2019年10月21-25日
2007年11月5日至7日,来自澳大利亚、美国、加拿大、日本、匈牙利、中国等财神手机版下载官方网站的近百名农业科学家聚会中国杨凌,以“国际农业合作、创新与发展”为主题,就旱区农业与节水农业、高效畜牧业与动物疾病防控、食...
【点击查看更多内容】
2016 主页» 杨凌国际农业科技论坛» 论文摘要» 2016

Christopher Kesten, Staffan Persson 相关阅读

University of Melbourne, School of Biosciences, Parkville, VIC 3010, Melbourne, Australia 相关阅读

Abiotic stress, such as salinity, drought, and cold, causes detrimental yield losses for all major plant crop species. Understanding mechanisms that improve plants' ability to produce biomass, which largely is constituted by the plant cell wall, is therefore of upmost importance for agricultural activities. Cellulose is a principal component of the cell wall and is synthesized by microtubule-guided cellulose synthase enzymes at the plasma membrane. We identified two components of the cellulose synthase complex, which we call companion of cellulose synthase (CC) proteins (Endler et al., 2015, Cell). The cytoplasmic tails of these membrane proteins could bind to microtubules and promote microtubule dynamics in vivo. This activity supported microtubule organization, cellulose synthase localization at the plasma membrane, and rendered seedlings less sensitive to stress. NMR analyses revealed four regions of the CC proteins that could interact with microtubules, which we confirmed using cross-linking experiments and mass spectrometry analyses. The latter analyses, furthermore, revealed what parts of the tubulin dimers the CC proteins could interact with. Electron microscopy analyses revealed that the CC proteins enhanced microtubule bundling and that the CC proteins are arranged in rows along adjacent microtubules, and that they were evenly spaced of approx. 12 nm. These data indicate that the CC proteins bind to microtubules along their seams following the three start helical confirmation of the microtubules, and that this binding supports bundling of microtubules. Our findings thus offer a mechanistic model for how the CC proteins sustain microtubule organization and cellulose synthase localization and thus aid plant biomass production during salt stress. 继续了解

A Molecular Mechanism for How Plants Can Sustain Their Cellulose Producing Capacity during Salt Stress
发布时间:2016-12-21 来源:


上一篇: $article.name
下一篇: $article.name
Christopher Kesten
Staffan Persson 相关
版权所有 © 2006-2012 财神手机版下载官方网站 国际合作与交流处
中国.陕西.杨凌邰城路3号 Tel: +86-29-87082857 Fax:+86-29-87082892 Email: ipo@nwsuaf.edu.cn

相关阅读

以下内容与「财神手机版下载官方网站」同属公开资讯,可按栏目继续浏览相关条目。

本站按公开材料组织页面。需要原文时请核对应栏目发布页。

若从搜索引擎进入,可先确认当前栏目名称,再按需打开相关阅读。

参会代表Participants | $article.name | 2014 | 交通示意Transportation | 2012 | 论坛日程Agenda | 2017 | 首页Home

站点导览

forum / 主页 / Abstract / 2016lwzy

公开资讯滚动更新。建议通过站内栏目继续浏览,核对最新条目。