首页> 美国卫生研究院文献>other >Adopting a Theophylline-Responsive Riboswitch for Flexible Regulation and Understanding of Glycogen Metabolism in Synechococcus elongatus PCC7942
【2h】

Adopting a Theophylline-Responsive Riboswitch for Flexible Regulation and Understanding of Glycogen Metabolism in Synechococcus elongatus PCC7942

机译:采用茶碱响应性核糖开关可灵活调节和了解伸长的突触球菌PCC7942中的糖原代谢。

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Cyanobacteria are supposed to be promising photosynthetic microbial platforms that recycle carbon dioxide driven into biomass and bioproducts by solar energy. Glycogen synthesis serves as an essential natural carbon sink mechanism, storing a large portion of energy and organic carbon source of photosynthesis. Engineering glycogen metabolism to harness and rewire carbon flow is an important strategy to optimize efficacy of cyanobacteria platforms. ADP-glucose pyrophosphorylase (GlgC) catalyzes the rate-limiting step for glycogen synthesis. However, knockout of glgC fails to promote cell growth or photosynthetic production in cyanobacteria, on the contrary, glgC deficiency impairs cellular fitness and robustness. In this work, we adopted a theophylline-responsive riboswitch to engineer and control glgC expression in Synechococcus elongatus PCC7942 and achieved flexible regulation of intracellular GlgC abundance and glycogen storage. With this approach, glycogen synthesis and glycogen contents in PCC7942 cells could be regulated in a range from about 40 to 300% of wild type levels. In addition, the results supported a positive role of glycogen metabolism in cyanobacteria cellular robustness. When glycogen storage was reduced, cellular physiology and growth under standard conditions was not impaired, while cellular tolerance toward environmental stresses was weakened. While when glycogen synthesis was enhanced, cells of PCC7942 displayed optimized cellular robustness. Our findings emphasize the significance of glycogen metabolism for cyanobacterial physiology and the importance of flexible approaches for engineering and understanding cellular physiology and metabolism.
机译:蓝细菌被认为是有前途的光合微生物平台,可将被太阳能驱动转化为生物质和生物产品的二氧化碳循环利用。糖原合成是一种必不可少的天然碳汇机制,可存储光合作用的大部分能量和有机碳源。工程化糖原代谢以利用和重新引导碳流是优化蓝细菌平台功效的重要策略。 ADP-葡萄糖焦磷酸化酶(GlgC)催化糖原合成的限速步骤。但是,glgC的敲除不能促进蓝细菌中的细胞生长或光合作用的产生,相反,glgC缺乏会损害细胞的适应性和健壮性。在这项工作中,我们采用了茶碱响应的核糖开关来工程化和控制长突触球菌PCC7942中的glgC表达,并实现了细胞内GlgC丰度和糖原存储的灵活调节。通过这种方法,PCC7942细胞中的糖原合成和糖原含量可以调节为野生型水平的约40%至300%。另外,结果支持糖原代谢在蓝细菌细胞健壮性中的积极作用。当糖原储存减少时,在标准条件下细胞生理和生长不会受到损害,而细胞对环境压力的耐受性则减弱。当糖原合成增强时,PCC7942的细胞表现出最佳的细胞健壮性。我们的研究结果强调了糖原代谢对于蓝细菌生理学的重要性,以及灵活的方法对于工程学和理解细胞生理学和代谢的重要性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号