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宿主红细胞鞘氨醇-1-磷酸调节组蛋白去乙酰化酶活性并对细胞死亡和分化表现出表观遗传控制。

Host-Erythrocytic Sphingosine-1-Phosphate Regulates Histone Deacetylase Activity and Exhibits Epigenetic Control over Cell Death and Differentiation.

作者信息

Sah Raj Kumar, Anand Sakshi, Dar Waseem, Jain Ravi, Kumari Geeta, Madan Evanka, Saini Monika, Gupta Aashima, Joshi Nishant, Hada Rahul Singh, Gupta Nutan, Pati Soumya, Singh Shailja

机构信息

Special Centre for Molecular Medicine, Jawaharlal Nehru University, New Delhi, India.

School of Natural Sciences, Department of Life Sciences, Shiv Nadar University, Greater Noida, India.

出版信息

Microbiol Spectr. 2023 Feb 6;11(2):e0276622. doi: 10.1128/spectrum.02766-22.

Abstract

The evolution of resistance to practically all antimalarial drugs poses a challenge to the current malaria elimination and eradication efforts. Given that the epigenome of Plasmodium falciparum governs several crucial parasite functions, pharmaceutical interventions with transmission-blocking potential that target epigenetic molecular markers and regulatory mechanisms are likely to encounter drug resistance. In the malaria parasite, histone deacetylases (HDACs) are essential epigenetic modulators that regulate cellular transcriptional rearrangements, notably the molecular mechanisms underlying parasite proliferation and differentiation. We establish "" as a mechanism by which sphingolipids, specifically Sphingosine-1-Phosphate (S1P) (a metabolic product of Sphingosine Kinase 1 [SphK-1]), regulate epigenetic reprogramming in the parasite by interacting with, and modulating, the histone-deacetylation activity of HDAC-1, thereby regulating pathogenesis. Furthermore, we demonstrate that altering host S1P levels with PF-543, a potent and selective Sphk-1 inhibitor, dysregulates HDAC-1 activity, resulting in a significant increase in the global histone acetylation signals and, consequently, transcriptional modulation of genes associated with gametocytogenesis, virulence, and proliferation. Our findings point to a hitherto unrecognized functional role for host S1P-mediated sphingolipid signaling in modulating HDAC-1's enzymatic activity and, as a result, the parasite's dynamic genome-wide transcriptional patterns. The epigenetic regulation of parasite proliferation and sexual differentiation offers a novel approach for developing host-targeted therapeutics to combat malaria resistance to conventional regimens. Sphingolipid is an 18-carbon amino-alcohol-containing lipid with a sphingosine backbone, which when phosphorylated by sphingosine kinase 1 (SphK-1), generates sphingosine-1-phosphate (S1P), an essential lipid signaling molecule. Dysregulation of S1P function has been observed in a variety of pathologies, including severe malaria. The malaria parasite acquires a host S1P pool for its growth and survival. Here, we describe the molecular attuning of histone deacetylase-1 (HDAC-1), a crucial epigenetic modulator that contributes to the establishment of epigenetic chromatin states and parasite survival, in response to S1P binding. Our findings highlight the host lipid-mediated epigenetic regulation of malaria parasite key genes.

摘要

对几乎所有抗疟药物产生耐药性的演变,给当前的疟疾消除和根除工作带来了挑战。鉴于恶性疟原虫的表观基因组控制着几种关键的寄生虫功能,针对表观遗传分子标记和调控机制且具有传播阻断潜力的药物干预可能会遭遇耐药性。在疟原虫中,组蛋白脱乙酰酶(HDACs)是至关重要的表观遗传调节剂,可调节细胞转录重排,尤其是寄生虫增殖和分化的分子机制。我们确立了一种机制,即鞘脂,特别是鞘氨醇 - 1 - 磷酸(S1P)(鞘氨醇激酶1 [SphK - 1]的代谢产物),通过与HDAC - 1的组蛋白去乙酰化活性相互作用并对其进行调节,从而调节寄生虫中的表观遗传重编程,进而调控发病机制。此外,我们证明用强效且选择性的Sphk - 1抑制剂PF - 543改变宿主S1P水平,会使HDAC - 1活性失调,导致全局组蛋白乙酰化信号显著增加,从而导致与配子体生成、毒力和增殖相关基因的转录调控。我们的研究结果指出了宿主S1P介导的鞘脂信号在调节HDAC - 1酶活性以及寄生虫全基因组动态转录模式方面迄今未被认识的功能作用。寄生虫增殖和有性分化的表观遗传调控为开发针对宿主的疗法以对抗疟疾对传统治疗方案的耐药性提供了一种新方法。鞘脂是一种含18个碳原子的含氨基醇的脂质,具有鞘氨醇骨架,当被鞘氨醇激酶1(SphK - 1)磷酸化时,会生成鞘氨醇 - 1 - 磷酸(S1P),这是一种必需的脂质信号分子。在包括严重疟疾在内的多种病理状况中都观察到了S1P功能失调。疟原虫获取宿主的S1P库以实现其生长和存活。在此,我们描述了组蛋白脱乙酰酶 - 1(HDAC - 1)的分子调节,HDAC - 1是一种关键的表观遗传调节剂,有助于建立表观遗传染色质状态和寄生虫存活,以响应S1P结合。我们的研究结果突出了宿主脂质介导的疟原虫关键基因的表观遗传调控。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a32d/10100792/86f668e2ca96/spectrum.02766-22-f001.jpg

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