Department of Biological and Environmental Science, Nanoscience Center, University of Jyvaskyla, Jyväskylä, Finland.
Institute of Biotechnology, Helsinki Institute of Life Science, University of Helsinki, Helsinki, Finland.
Elife. 2024 Nov 4;13:RP93673. doi: 10.7554/eLife.93673.
Orchestrated action of peptidoglycan (PG) synthetases and hydrolases is vital for bacterial growth and viability. Although the function of several PG synthetases and hydrolases is well understood, the function, regulation, and mechanism of action of PG hydrolases characterised as lysostaphin-like endopeptidases have remained elusive. Many of these M23 family members can hydrolyse glycyl-glycine peptide bonds and show lytic activity against whose PG contains a pentaglycine bridge, but their exact substrate specificity and hydrolysed bonds are still vaguely determined. In this work, we have employed NMR spectroscopy to study both the substrate specificity and the bond cleavage of the bactericide lysostaphin and the PG hydrolase LytM. Yet, we provide substrate-level evidence for the functional role of these enzymes. Indeed, our results show that the substrate specificities of these structurally highly homologous enzymes are similar, but unlike observed earlier both LytM and lysostaphin prefer the D-Ala-Gly cross-linked part of mature peptidoglycan. However, we show that while lysostaphin is genuinely a glycyl-glycine hydrolase, LytM can also act as a D-alanyl-glycine endopeptidase.
糖肽(PG)合成酶和水解酶的协调作用对细菌的生长和存活至关重要。尽管几种 PG 合成酶和水解酶的功能已经得到很好的理解,但被描述为溶菌酶样内切酶的 PG 水解酶的功能、调节和作用机制仍然难以捉摸。许多属于 M23 家族的成员可以水解甘氨酰-甘氨酸肽键,并对含有五肽桥的 PG 具有溶菌活性,但它们的确切底物特异性和水解键仍然模糊不清。在这项工作中,我们使用 NMR 光谱研究了杀菌剂溶菌酶和 PG 水解酶 LytM 的底物特异性和键断裂。然而,我们为这些酶的功能作用提供了基于底物的证据。事实上,我们的结果表明,这些结构高度同源的酶的底物特异性相似,但与早期观察到的不同,LytM 和溶菌酶都优先选择成熟糖肽中的 D-Ala-Gly 交联部分。然而,我们表明,虽然溶菌酶确实是甘氨酰-甘氨酸水解酶,但 LytM 也可以作为 D-丙氨酰-甘氨酸内肽酶。