变形链球菌乳酸脱氢酶与赖氨酸乙酰化的相互作用。

IF 7.9
Qizhao Ma, Tao Hu, Yongwang Lin, Jing Li, Jun Huang, Qiong Zhang, Tao Gong, Xuedong Zhou, Lei Lei, Jing Zou, Yuqing Li
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引用次数: 0

摘要

翻译后修饰(PTMs)提供了必要的微调蛋白质功能,以应对环境变化。在PTMs中,赖氨酸乙酰化(Kac)和最近发现的赖氨酸乳酸化(Kla)在代谢调节中起着至关重要的作用,因为乳酸和乙酰辅酶a (Ac-CoA)是由丙酮酸作为糖酵解的出口产生的。然而,它们的串扰和调控机制在很大程度上仍然未知,特别是在原核生物中。在这里,我们研究了Kla和Kac在致龋细菌变形链球菌(一种多产的乳酸生产者)中复杂的相互关系。我们对Kla和Kac进行了全面的分析,观察到它们在糖酵解酶中的广泛分布。乳酸脱氢酶(LDH)是糖酵解的末端酶,Kla和Kac随糖酵解中间体的变化而变化,其中Kla与Kac的比值表示代谢内流。此外,ActA被确定为一种双功能酰基转移酶,催化LDH的Kla和Kac,两者都负调控其酶活性。重要的是,该研究确定了LDH上的赖氨酸307 (K307)是一个关键位点,其酰化显著改变LDH活性,从而产生乳酸和细菌生长。我们对Kla和Kac介导的代谢调节的见解有助于理解代谢- ptm -代谢反馈回路,使细菌能够根据代谢中间体的可用性微调其代谢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crosstalk Between Lysine Lactylation and Acetylation Regulates Lactate Dehydrogenase in Streptococcus mutans.

Post-translational modifications (PTMs) provide essential fine-tuning of protein functions in response to environmental changes. Among the PTMs, lysine acetylation (Kac) and the recently identified lysine lactylation (Kla) play crucial roles in metabolic regulation considering that lactate and acetyl-CoA (Ac-CoA) are generated from pyruvate as the outlet of glycolysis. However, their crosstalk and regulatory mechanisms remain largely unknown, particularly in prokaryotes. Herein, we investigated the intricate interrelation between Kla and Kac in the cariogenic bacterium Streptococcus mutans, a prolific producer of lactate. We conducted a comprehensive profiling of Kla and Kac, observing their wide distribution in glycolytic enzymes. Lactate dehydrogenase (LDH), the terminal enzyme of glycolysis, exhibited dynamic Kla and Kac shifts in line with glycolytic intermediates, where the ratio of Kla to Kac denotes the metabolic influx. Furthermore, ActA was pinpointed as a dual-function acyltransferase catalyzing the Kla and Kac of LDH, both negatively regulating its enzymatic activity. Importantly, the study identifies lysine 307 (K307) on LDH as a critical site, with its acylation significantly altering LDH activity, thereby lactate production and bacterial growth. Our insights into the metabolic regulation mediated by Kla and Kac contribute to the understanding of the metabolism-PTM-metabolism feedback loop, allowing bacteria to fine-tune their metabolism based on the availability of metabolic intermediates.

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