Suppr超能文献

中的葡萄糖双亲和转运系统的鉴定与表征:在营养物质转运、信号传导及碳代谢物阻遏中的多效性作用

Identification and characterization of the glucose dual-affinity transport system in : pleiotropic roles in nutrient transport, signaling, and carbon catabolite repression.

作者信息

Wang Bang, Li Jingen, Gao Jingfang, Cai Pengli, Han Xiaoyun, Tian Chaoguang

机构信息

Key Laboratory of Systems Microbial Biotechnology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308 China.

University of Chinese Academy of Sciences, Beijing, 100049 China.

出版信息

Biotechnol Biofuels. 2017 Jan 19;10:17. doi: 10.1186/s13068-017-0705-4. eCollection 2017.

Abstract

BACKGROUND

The glucose dual-affinity transport system (low- and high-affinity) is a conserved strategy used by microorganisms to cope with natural fluctuations in nutrient availability in the environment. The glucose-sensing and uptake processes are believed to be tightly associated with cellulase expression regulation in cellulolytic fungi. However, both the identities and functions of the major molecular components of this evolutionarily conserved system in filamentous fungi remain elusive. Here, we systematically identified and characterized the components of the glucose dual-affinity transport system in the model fungus .

RESULTS

Using RNA sequencing coupled with functional transport analyses, we assigned GLT-1 ( = 18.42 ± 3.38 mM) and HGT-1/-2 ( = 16.13 ± 0.95 and 98.97 ± 22.02 µM) to the low- and high-affinity glucose transport systems, respectively. The high-affinity transporters -- complemented a moderate growth defect under high glucose when - was deleted. Simultaneous deletion of -- led to extensive derepression of genes for plant cell wall deconstruction in cells grown on cellulose. The suppression by HGT-1/-2 was connected to both carbon catabolite repression (CCR) and the cyclic adenosine monophosphate-protein kinase A pathway. Alteration of a residue conserved across taxa in hexose transporters resulted in a loss of glucose-transporting function, whereas CCR signal transduction was retained, indicating dual functions for HGT-1/-2 as "transceptors."

CONCLUSIONS

In this study, GLT-1 and HGT-1/-2 were identified as the key components of the glucose dual-affinity transport system, which plays diverse roles in glucose transport and carbon metabolism. Given the wide conservation of the glucose dual-affinity transport system across fungal species, the identification of its components and their pleiotropic roles in this study shed important new light on the molecular basis of nutrient transport, signaling, and plant cell wall degradation in fungi.

摘要

背景

葡萄糖双亲和转运系统(低亲和性和高亲和性)是微生物用于应对环境中营养物质可利用性自然波动的一种保守策略。葡萄糖感知和摄取过程被认为与纤维素分解真菌中纤维素酶的表达调控紧密相关。然而,丝状真菌中这个进化保守系统的主要分子成分的身份和功能仍然不清楚。在这里,我们系统地鉴定并表征了模式真菌中葡萄糖双亲和转运系统的成分。

结果

通过结合功能转运分析的RNA测序,我们分别将GLT-1(Km = 18.42 ± 3.38 mM)和HGT-1/-2(Km = 16.13 ± 0.95和98.97 ± 22.02 μM)分配到低亲和性和高亲和性葡萄糖转运系统。当hgt-1缺失时,高亲和性转运蛋白HGT-1/-2在高葡萄糖条件下弥补了适度的生长缺陷。同时缺失hgt-1/hgt-2导致在纤维素上生长的细胞中植物细胞壁解构相关基因的广泛去阻遏。HGT-1/-2的抑制作用与碳分解代谢物阻遏(CCR)和环磷酸腺苷 - 蛋白激酶A途径都有关。己糖转运蛋白中一个跨分类群保守的残基发生改变导致葡萄糖转运功能丧失,而CCR信号转导得以保留,表明HGT-1/-2作为“转ceptors”具有双重功能。

结论

在本研究中,GLT-1和HGT-1/-2被鉴定为葡萄糖双亲和转运系统的关键成分,该系统在葡萄糖转运和碳代谢中发挥多种作用。鉴于葡萄糖双亲和转运系统在真菌物种中的广泛保守性,本研究中其成分的鉴定及其多效性作用为真菌中营养物质转运、信号传导和植物细胞壁降解的分子基础提供了重要的新见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/239c/5244594/a981c5093069/13068_2017_705_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验