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人中性鞘磷脂酶 1(hSMPD2)的催化机制的分子基础。

Molecular basis for the catalytic mechanism of human neutral sphingomyelinases 1 (hSMPD2).

机构信息

Ministry of Education Key Laboratory of Protein Science, Tsinghua-Peking Joint Center for Life Sciences, Beijing Advanced Innovation Center for Structural Biology, School of Life Sciences, Tsinghua University, Beijing, 100084, China.

State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.

出版信息

Nat Commun. 2023 Nov 27;14(1):7755. doi: 10.1038/s41467-023-43580-w.

Abstract

Enzymatic breakdown of sphingomyelin by sphingomyelinase (SMase) is the main source of the membrane lipids, ceramides, which are involved in many cellular physiological processes. However, the full-length structure of human neutral SMase has not been resolved; therefore, its catalytic mechanism remains unknown. Here, we resolve the structure of human full-length neutral SMase, sphingomyelinase 1 (SMPD2), which reveals that C-terminal transmembrane helices contribute to dimeric architecture of hSMPD2 and that D111 - K116 loop domain is essential for substrate hydrolysis. Coupled with molecular docking, we clarify the binding pose of sphingomyelin, and site-directed mutagenesis further confirms key residues responsible for sphingomyelin binding. Hybrid quantum mechanics/molecular mechanics (QM/MM) molecular dynamic (MD) simulations are utilized to elaborate the catalysis of hSMPD2 with the reported in vitro substrates, sphingomyelin and lyso-platelet activating fator (lyso-PAF). Our study provides mechanistic details that enhance our knowledge of lipid metabolism and may lead to an improved understanding of ceramide in disease and in cancer treatment.

摘要

鞘磷脂酶(SMase)对鞘磷脂的酶促分解是膜脂神经酰胺的主要来源,而神经酰胺参与许多细胞生理过程。然而,尚未解析出人源中性 SMase 的全长结构,因此其催化机制仍不清楚。在这里,我们解析了人源全长中性 SMase(鞘磷脂酶 1,SMPD2)的结构,揭示了 C 端跨膜螺旋有助于 hSMPD2 的二聚体结构,并且 D111-K116 环结构域对于底物水解至关重要。结合分子对接,我们阐明了鞘磷脂的结合构象,定点突变进一步证实了负责鞘磷脂结合的关键残基。我们还利用杂化量子力学/分子力学(QM/MM)分子动力学(MD)模拟来详细阐述已报道的体外底物——鞘磷脂和溶血小板激活因子(lyso-PAF)的 hSMPD2 催化过程。我们的研究提供了机制细节,增强了我们对脂质代谢的认识,并可能有助于更好地理解疾病和癌症治疗中的神经酰胺。

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