A Lyt at the end of the tunnel? Unraveling the complex interactions of the N-acetylglucosaminidase LytG in cell wall metabolism.

IF 3.1 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jazmeen Hernandez, Jett Duval, Taryn Rauff, Ethan Hall, Mika Gallati, Brad A Haubrich, Monica Thoma, Elimelec Aponte, Amit Basu, Joseph A DeGiorgis, Christopher W Reid
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Abstract

The growth and division of the Gram-positive cell requires the coordinated action of enzymes involved in the synthesis and degradation of the heteropolymer peptidoglycan. Herein, we present the use of the diamide masarimycin, an inhibitor of the exo-N-acetylglucosaminidase (GlcNAcase) LytG from Bacillus subtilis, as a chemical biology probe to elucidate the biological role of this cell wall degrading enzyme. Using a combination of chemical biology and genetic approaches we provide the first evidence that LytG activity influences the elongation and division complexes in B. subtilis. Chemical inhibition of LytG resulted in dysregulated cell elongation and localization of the division plane and the induction of the cell wall stress response. In the presence of masarimycin, cells show asymmetrical thickening of the cell wall and dysregulation of division plane localization. The use of genetic and synergy/antagonism screens established connections to late-stage peptidoglycan synthesis, particularly related to cross-linking function. These results stand in stark contrast to those observed for the ΔlytG knockout, which does not exhibit these phenotypes. Cell-wall labelling with a fluorescent d-amino acid and muropeptide analysis has highlighted a functional connection between LytG, the carboxypeptidase DacA, and d,d-endopeptidases. These results highlight the use of chemical probes such as masarimycin to inform on the biological function of autolysins by providing insight into the role LytG plays in cell growth and division.

隧道尽头的Lyt ?揭示n -乙酰氨基葡萄糖酶LytG在细胞壁代谢中的复杂相互作用。
革兰氏阳性细胞的生长和分裂需要参与杂聚肽聚糖合成和降解的酶的协调作用。在此,我们提出使用二胺马沙林霉素作为化学生物学探针来阐明这种细胞壁降解酶的生物学作用,马沙林霉素是一种来自枯草芽孢杆菌的外n -乙酰氨基葡萄糖苷酶(GlcNAcase) LytG的抑制剂。利用化学生物学和遗传学方法的结合,我们首次提供了LytG活性影响枯草芽孢杆菌伸长和分裂复合物的证据。化学抑制LytG导致细胞伸长和分裂面定位失调,诱导细胞壁应激反应。在马沙霉素存在下,细胞表现出细胞壁不对称增厚和分裂面定位失调。使用遗传和协同/拮抗筛选建立了与后期肽聚糖合成的联系,特别是与交联功能有关。这些结果与ΔlytG基因敲除观察到的结果形成鲜明对比,后者不表现出这些表型。细胞壁标记与荧光d-氨基酸和多肽分析强调了LytG,羧基肽酶DacA和d,d-内肽酶之间的功能联系。这些结果强调了利用化学探针,如马沙霉素,通过深入了解LytG在细胞生长和分裂中的作用,来了解自溶素的生物学功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.10
自引率
0.00%
发文量
128
审稿时长
10 weeks
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