Gu Huawei, Hao Xinwei, Liu Ruirui, Shi Zhenkun, Zhao Zehua, Chen Fu, Wang Wenqiang, Wang Yao, Shen Xihui
State Key Laboratory of Crop Stress Biology for Arid Areas, Shaanxi Key Laboratory of Agricultural and Environmental Microbiology, College of Life Sciences, Northwest A&F University, Yangling, Shaanxi, China.
Stress Biol. 2022 Nov 22;2(1):49. doi: 10.1007/s44154-022-00071-0.
Corynebacterium glutamicum is a promising chassis microorganism for the bioconversion of lignocellulosic biomass owing to its good tolerance and degradation of the inhibitors generated in lignocellulosic pretreatments. Among the identified proteins encoded by genes within the C. glutamicum genome, nearly 400 are still functionally unknown. Based on previous transcriptome analysis, we found that the hypothetical protein gene cgl2215 was highly upregulated in response to phenol, ferulic acid, and vanillin stress. The cgl2215 deletion mutant was shown to be more sensitive than the parental strain to phenolic compounds as well as other environmental factors such as heat, ethanol, and oxidative stresses. Cgl2215 interacts with C. glutamicum mycoloyltransferase A (MytA) and enhances its in vitro esterase activity. Sensitivity assays of the ΔmytA and Δcgl2215ΔmytA mutants in response to phenolic stress established that the role of Cgl2215 in phenolic tolerance was mediated by MytA. Furthermore, transmission electron microscopy (TEM) results showed that cgl2215 and mytA deletion both led to defects in the cell envelope structure of C. glutamicum, especially in the outer layer (OL) and electron-transparent layer (ETL). Collectively, these results indicate that Cgl2215 can enhance MytA activity and affect the cell envelope structure by directly interacting with MytA, thus playing an important role in resisting phenolic and other environmental stresses.
谷氨酸棒杆菌因其对木质纤维素预处理过程中产生的抑制剂具有良好的耐受性和降解能力,是一种很有前景的用于木质纤维素生物质生物转化的底盘微生物。在谷氨酸棒杆菌基因组内已鉴定的基因所编码的蛋白质中,近400种蛋白质的功能仍然未知。基于之前的转录组分析,我们发现假定蛋白基因cgl2215在应对苯酚、阿魏酸和香草醛胁迫时高度上调。结果表明,cgl2215缺失突变体比亲本菌株对酚类化合物以及其他环境因素(如热、乙醇和氧化应激)更敏感。Cgl2215与谷氨酸棒杆菌分枝菌酸转移酶A(MytA)相互作用,并增强其体外酯酶活性。对ΔmytA和Δcgl2215ΔmytA突变体进行酚类胁迫敏感性分析,结果表明Cgl2215在酚类耐受性方面的作用是由MytA介导的。此外,透射电子显微镜(TEM)结果显示,cgl2215和mytA的缺失均导致谷氨酸棒杆菌细胞包膜结构出现缺陷,尤其是在外层(OL)和电子透明层(ETL)。总的来说,这些结果表明Cgl2215可以增强MytA活性,并通过与MytA直接相互作用影响细胞包膜结构,从而在抵抗酚类和其他环境胁迫中发挥重要作用。