AMPK通过下调P-HOG1 MAPK水平激活真菌青霉菌纤维素酶分泌。

IF 3.5 4区 生物学 Q2 MICROBIOLOGY Journal of Basic Microbiology Pub Date : 2024-12-19 DOI:10.1002/jobm.202400658
Anmoldeep Randhawa, Tulika Sinha, Maitreyee Das, Syed Shams Yazdani
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引用次数: 0

摘要

在营养匮乏的情况下,丝状真菌生产用于水解植物细胞壁的纤维素酶是能量密集型的。由snf1编码的amp活化蛋白激酶(AMPK)是真核生物中已知的营养和能量传感器。先前对AMPK的研究发现它在致病真菌的碳交替利用中起作用。然而,AMPK在纤维素酶生产中的确切作用仍然难以捉摸。在本研究中,我们采用基因缺失分析、定量蛋白质组学和化学遗传学方法研究AMPK在真菌青霉纤维素酶合成中的作用。基因缺失分析显示AMPK不促进转录和翻译,但对纤维素酶以钙依赖的方式分泌至关重要。对snf1缺失(Δsnf1)菌株的蛋白质组学分析证实了菌丝内的纤维素酶被捕获,并确定HOG1 MAPK激活是Δsnf1中碳胁迫期间最重要的Ca2+诱导信号事件。Western blot分析发现,Ca2+信号传导/Ca2+激活AMPK分别维持磷酸化的HOG1 (P-HOG1)/HOG1 MAPK比值,形成纤维素酶分泌检查点,扰乱该平衡可阻断纤维素酶分泌。蛋白质组学分析还表明,Δsnf1在碳胁迫期间mtorc1激活的合成代谢途径大量增加。我们的研究表明,AMPK通过在碳胁迫过程中作为一个全局抑制因子来维持体内平衡。
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AMPK Activates Cellulase Secretion in Penicillium funiculosum by Downregulating P-HOG1 MAPK Levels.

Cellulase production for hydrolyzing plant cell walls is energy-intensive in filamentous fungi during nutrient scarcity. AMP-activated protein kinase (AMPK), encoded by snf1, is known to be the nutrient and energy sensor in eukaryotes. Previous studies on AMPK identified its role in alternate carbon utilization in pathogenic fungi. However, the precise role of AMPK in cellulase production remains elusive. In the present study, we employed gene-deletion analysis, quantitative proteomics and chemical-genetic approaches to investigate the role of AMPK in cellulase synthesis in Penicillium funiculosum. Gene-deletion analysis revealed that AMPK does not promote transcription and translation but is essential for cellulase secretion in a calcium-dependent manner. Proteomic analysis of the snf1-deleted (Δsnf1) strain confirmed trapped cellulase inside the mycelia and identified HOG1 MAPK activation as the most significant Ca2+-induced signaling event during carbon stress in Δsnf1. Western blot analysis analysis revealed that the phosphorylated HOG1 (P-HOG1)/HOG1 MAPK ratio maintained by Ca2+-signaling/Ca2+-activated AMPK, respectively, forms a secretion checkpoint for cellulases, and disturbing this equilibrium blocks cellulase secretion. The proteomic analysis also indicated a massive increase in mTORC1-activated anabolic pathways during carbon stress in Δsnf1. Our study suggests that AMPK maintains homeostasis by acting as a global repressor during carbon stress.

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来源期刊
Journal of Basic Microbiology
Journal of Basic Microbiology 生物-微生物学
CiteScore
6.10
自引率
0.00%
发文量
134
审稿时长
1.8 months
期刊介绍: The Journal of Basic Microbiology (JBM) publishes primary research papers on both procaryotic and eucaryotic microorganisms, including bacteria, archaea, fungi, algae, protozoans, phages, viruses, viroids and prions. Papers published deal with: microbial interactions (pathogenic, mutualistic, environmental), ecology, physiology, genetics and cell biology/development, new methodologies, i.e., new imaging technologies (e.g. video-fluorescence microscopy, modern TEM applications) novel molecular biology methods (e.g. PCR-based gene targeting or cassettes for cloning of GFP constructs).
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