Rurek Michał
Department of Molecular and Cellular Biology, Institute of Molecular Biology and Biotechnology, Faculty of Biology, Adam Mickiewicz University, Poznań, Poland.
Front Physiol. 2024 Jun 21;15:1406635. doi: 10.3389/fphys.2024.1406635. eCollection 2024.
The rapid development of the COVID-19 pandemic resulted in a closer analysis of cell functioning during β-coronavirus infection. This review will describe evidence for COVID-19 as a syndrome with a strong, albeit still underestimated, mitochondrial component. Due to the sensitivity of host mitochondria to coronavirus infection, SARS-CoV-2 affects mitochondrial signaling, modulates the immune response, modifies cellular energy metabolism, induces apoptosis and ageing, worsening COVID-19 symptoms which can sometimes be fatal. Various aberrations across human systems and tissues and their relationships with mitochondria were reported. In this review, particular attention is given to characterization of multiple alterations in gene expression pattern and mitochondrial metabolism in COVID-19; the complexity of interactions between SARS-CoV-2 and mitochondrial proteins is presented. The participation of mitogenome fragments in cell signaling and the occurrence of SARS-CoV-2 subgenomic RNA within membranous compartments, including mitochondria is widely discussed. As SARS-CoV-2 severely affects the quality system of mitochondria, the cellular background for aberrations in mitochondrial dynamics in COVID-19 is additionally characterized. Finally, perspectives on the mitigation of COVID-19 symptoms by affecting mitochondrial biogenesis by numerous compounds and therapeutic treatments are briefly outlined.
新冠疫情的迅速发展促使人们对β冠状病毒感染期间的细胞功能进行更深入的分析。本综述将阐述新冠病毒病作为一种具有强大线粒体成分(尽管仍被低估)的综合征的证据。由于宿主线粒体对冠状病毒感染敏感,严重急性呼吸综合征冠状病毒2(SARS-CoV-2)会影响线粒体信号传导,调节免疫反应,改变细胞能量代谢,诱导细胞凋亡和衰老,从而加重新冠病毒病症状,有时甚至会导致死亡。已有报道称人体各系统和组织存在各种异常及其与线粒体的关系。在本综述中,特别关注新冠病毒病中基因表达模式和线粒体代谢的多种改变的特征;介绍了SARS-CoV-2与线粒体蛋白之间相互作用的复杂性。广泛讨论了线粒体基因组片段在细胞信号传导中的参与以及SARS-CoV-2亚基因组RNA在包括线粒体在内的膜性区室中的存在情况。由于SARS-CoV-2严重影响线粒体的质量系统,还对新冠病毒病中线粒体动力学异常的细胞背景进行了描述。最后,简要概述了通过多种化合物和治疗方法影响线粒体生物发生来缓解新冠病毒病症状的前景。