Grupo de Biofísica Molecular "Sergio Mascarenhas," Instituto de Física de São Carlos, Universidade de São Paulo, São Carlos, São Paulo, Brasil.
Departamento de Física, Faculdade de Filosofia Ciências e Letras de Ribeirão Preto, Universidade de São Paulo, Ribeirão Preto, São Paulo, Brasil.
J Biol Chem. 2020 Feb 14;295(7):2136-2147. doi: 10.1074/jbc.RA119.011122. Epub 2019 Dec 3.
PlsX plays a central role in the coordination of fatty acid and phospholipid biosynthesis in Gram-positive bacteria. PlsX is a peripheral membrane acyltransferase that catalyzes the conversion of acyl-ACP to acyl-phosphate, which is in turn utilized by the polytopic membrane acyltransferase PlsY on the pathway of bacterial phospholipid biosynthesis. We have recently studied the interaction between PlsX and membrane phospholipids and , and observed that membrane association is necessary for the efficient transfer of acyl-phosphate to PlsY. However, understanding the molecular basis of such a channeling mechanism remains a major challenge. Here, we disentangle the binding and insertion events of the enzyme to the membrane, and the subsequent catalysis. We show that PlsX membrane binding is a process mostly mediated by phospholipid charge, whereas fatty acid saturation and membrane fluidity remarkably influence the membrane insertion step. Strikingly, the PlsX mutant, whose biological functionality was severely compromised but remains catalytically active , was able to superficially bind to phospholipid vesicles, nevertheless, it loses the insertion capacity, strongly supporting the importance of membrane insertion in acyl-phosphate delivery. We propose a mechanism in which membrane fluidity governs the insertion of PlsX and thus regulates the biosynthesis of phospholipids in Gram-positive bacteria. This model may be operational in other peripheral membrane proteins with an unprecedented impact in drug discovery/development strategies.
PlsX 在革兰氏阳性菌中脂肪酸和磷脂生物合成的协调中起着核心作用。PlsX 是一种周质膜酰基转移酶,它催化酰基辅酶 A 到酰基磷酸的转化,而酰基磷酸又被细菌磷脂生物合成途径中的多跨膜酰基转移酶 PlsY 利用。我们最近研究了 PlsX 与膜磷脂之间的相互作用,观察到膜结合对于酰基磷酸向 PlsY 的有效转移是必要的。然而,理解这种定向机制的分子基础仍然是一个主要的挑战。在这里,我们解开了酶与膜的结合和插入事件,以及随后的催化过程。我们表明,PlsX 膜结合主要是由磷脂电荷介导的,而脂肪酸饱和度和膜流动性则显著影响膜插入步骤。引人注目的是,其生物学功能严重受损但仍保持催化活性的 PlsX 突变体能够表面结合磷脂囊泡,但失去插入能力,这强烈支持了在酰基磷酸传递中膜插入的重要性。我们提出了一种机制,其中膜流动性控制 PlsX 的插入,从而调节革兰氏阳性菌中磷脂的生物合成。该模型可能在其他具有前所未有的药物发现/开发策略影响的外周膜蛋白中起作用。