Huang Yuanyuan, Zhang Hao, Tian Hongming, Li Cheng, Han Shuangyan, Lin Ying, Zheng Suiping
Guangdong Key Laboratory of Fermentation and Enzyme Engineering, School of Bioscience and Bioengineering, South China University of Technology, Guangzhou, 510006, People's Republic of China.
Appl Microbiol Biotechnol. 2015 Sep;99(18):7527-37. doi: 10.1007/s00253-015-6469-5. Epub 2015 Mar 8.
N-acetyl glutamate kinase (NAGK) is a key enzyme in the synthesis of L-arginine that is inhibited by its end product L-arginine in Corynebacterium glutamicum (C. glutamicum). In this study, the potential binding sites of arginine and the residues essential for its inhibition were identified by homology modeling, inhibitor docking, and site-directed mutagenesis. The allosteric inhibition of NAGK was successfully alleviated by a mutation, as determined through analysis of mutant enzymes, which were overexpressed in vivo in C. glutamicum ATCC14067. Analysis of the mutant enzymes and docking analysis demonstrated that residue W23 positions an arginine molecule, and the interaction between arginine and residues L282, L283, and T284 may play an important role in the remote inhibitory process. Based on the results of the docking analysis of the effective mutants, we propose a linkage mechanism for the remote allosteric regulation of NAGK activity, in which residue R209 may play an essential role. In this study, the structure of the arginine-binding site of C. glutamicum NAGK (CgNAGK) was successfully predicted and the roles of the relevant residues were identified, providing new insight into the allosteric regulation of CgNAGK activity and a solid platform for the future construction of an optimized L-arginine producing strain.
N-乙酰谷氨酸激酶(NAGK)是谷氨酸棒杆菌(C. glutamicum)中L-精氨酸合成的关键酶,它受到其终产物L-精氨酸的抑制。在本研究中,通过同源建模、抑制剂对接和定点诱变确定了精氨酸的潜在结合位点及其抑制作用所必需的残基。通过对在谷氨酸棒杆菌ATCC14067体内过表达的突变酶进行分析,确定通过突变成功缓解了NAGK的别构抑制。对突变酶的分析和对接分析表明,残基W23定位一个精氨酸分子,精氨酸与残基L282、L283和T284之间的相互作用可能在远程抑制过程中起重要作用。基于有效突变体的对接分析结果,我们提出了一种NAGK活性远程别构调节的连锁机制,其中残基R209可能起关键作用。在本研究中,成功预测了谷氨酸棒杆菌NAGK(CgNAGK)的精氨酸结合位点结构并确定了相关残基的作用,为深入了解CgNAGK活性的别构调节提供了新见解,并为未来构建优化的L-精氨酸生产菌株提供了坚实平台。