Centre for Cellular and Molecular Biology, Hyderabad, 500007 Telangana, India.
Proc Natl Acad Sci U S A. 2023 Jun 13;120(24):e2300784120. doi: 10.1073/pnas.2300784120. Epub 2023 Jun 5.
The Gram-negative bacterial cell envelope is a complex multilayered structure comprising a bilayered phospholipid (PL) membrane that surrounds the cytoplasm (inner membrane or IM) and an asymmetric outer membrane (OM) with PLs in the inner leaflet and lipopolysaccharides in the outer leaflet. Between these two layers is the periplasmic space, which contains a highly cross-linked mesh-like glycan polymer, peptidoglycan (PG). During cell expansion, coordinated synthesis of each of these components is required to maintain the integrity of the cell envelope; however, it is currently not clear how such coordination is achieved. In this study, we show that a cross-link-specific PG hydrolase couples the expansion of PG sacculus with that of PL synthesis in the Gram-negative model bacterium, . We find that unregulated activity of a PG hydrolytic enzyme, MepS is detrimental for growth of during fatty acid (FA)-limiting conditions. Further genetic and biochemical analyses revealed that cellular availability of FA or PL alters the post-translational stability of MepS by modulating the proteolytic activity of a periplasmic adaptor-protease complex, NlpI-Prc toward MepS. Our results indicate that loss of OM lipid asymmetry caused by alterations in PL abundance leads to the generation of a signal to the NlpI-Prc complex for the stabilization of MepS, which subsequently cleaves the cross-links to facilitate expansion of PG. In summary, our study shows the existence of a molecular cross-talk that enables coordinated expansion of the PG sacculus with that of membrane synthesis for balanced cell-envelope biogenesis.
革兰氏阴性菌的细胞包膜是一个复杂的多层结构,由双层磷脂(PL)膜组成,包围细胞质(内膜或 IM)和不对称的外膜(OM),PL 在内层,脂多糖在外层。在这两层之间是周质空间,其中含有高度交联的网格状聚糖聚合物肽聚糖(PG)。在细胞扩张过程中,需要协调合成这些成分中的每一种来维持细胞包膜的完整性;然而,目前尚不清楚如何实现这种协调。在这项研究中,我们表明一种交联特异性 PG 水解酶将 PG 囊泡的扩张与革兰氏阴性模型菌中的 PL 合成联系起来。我们发现,PG 水解酶的不受调节的活性对脂肪酸(FA)限制条件下的生长是有害的。进一步的遗传和生化分析表明,FA 或 PL 的细胞可用性通过调节 NlpI-Prc 对 MepS 的蛋白水解活性来改变 MepS 的翻译后稳定性,NlpI-Prc 是一种周质衔接蛋白酶复合物。我们的结果表明,PL 丰度的改变导致 OM 脂质不对称性的丧失,从而产生一个信号给 NlpI-Prc 复合物,以稳定 MepS,随后 MepS 切割交联以促进 PG 的扩张。总之,我们的研究表明存在一种分子对话,使 PG 囊泡的扩张与膜合成协调一致,从而实现平衡的细胞包膜生物发生。