Possible Pathogenesis and Prevention of Long COVID: SARS-CoV-2-Induced Mitochondrial Disorder

被引:39
作者
Chen, Tsung-Hsien [1 ]
Chang, Chia-Jung [2 ]
Hung, Peir-Haur [1 ,3 ]
机构
[1] Ditmanson Med Fdn Chia Yi Christian Hosp, Dept Internal Med, Chiayi 60002, Taiwan
[2] Ditmanson Med Fdn Chia Yi Christian Hosp, Dept Internal Med, Div Crit Care Med, Chiayi 60002, Taiwan
[3] Chia Nan Univ Pharm & Sci, Dept Life & Hlth Sci, Tainan, Taiwan
关键词
SARS-CoV-2; long COVID; pathogen-associated molecular patterns (PAMPs); mitochondrial disorder; inflammatory responses; oxidative phosphorylation; electron transport chain; RESPIRATORY SYNDROME CORONAVIRUS; APOPTOSIS-INDUCING FACTOR; NF-KAPPA-B; INFLAMMASOME ACTIVATION; NLRP3; INFLAMMASOME; ACCESSORY PROTEINS; VIRUS-REPLICATION; EXPRESSION; INFECTION; MECHANISM;
D O I
10.3390/ijms24098034
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Patients who have recovered from coronavirus disease 2019 (COVID-19) infection may experience chronic fatigue when exercising, despite no obvious heart or lung abnormalities. The present lack of effective treatments makes managing long COVID a major challenge. One of the underlying mechanisms of long COVID may be mitochondrial dysfunction. Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infections can alter the mitochondria responsible for energy production in cells. This alteration leads to mitochondrial dysfunction which, in turn, increases oxidative stress. Ultimately, this results in a loss of mitochondrial integrity and cell death. Moreover, viral proteins can bind to mitochondrial complexes, disrupting mitochondrial function and causing the immune cells to over-react. This over-reaction leads to inflammation and potentially long COVID symptoms. It is important to note that the roles of mitochondrial damage and inflammatory responses caused by SARS-CoV-2 in the development of long COVID are still being elucidated. Targeting mitochondrial function may provide promising new clinical approaches for long-COVID patients; however, further studies are needed to evaluate the safety and efficacy of such approaches.
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相关论文
共 203 条
[51]   NSP4 and ORF9b of SARS-CoV-2 Induce Pro-Inflammatory Mitochondrial DNA Release in Inner Membrane-Derived Vesicles [J].
Faizan, Md Imam ;
Chaudhuri, Rituparna ;
Sagar, Shakti ;
Albogami, Sarah ;
Chaudhary, Nisha ;
Azmi, Iqbal ;
Akhtar, Areej ;
Ali, Syed Mansoor ;
Kumar, Rohit ;
Iqbal, Jawed ;
Joshi, Mohan C. ;
Kharya, Gaurav ;
Seth, Pankaj ;
Roy, Soumya Sinha ;
Ahmad, Tanveer .
CELLS, 2022, 11 (19)
[52]   SARS-CoV-2: An Overview of Virus Genetics, Transmission, and Immunopathogenesis [J].
Farrag, Mohamed A. ;
Amer, Haitham M. ;
Bhat, Rauf ;
Hamed, Maaweya E. ;
Aziz, Ibrahim M. ;
Mubarak, Ayman ;
Dawoud, Turki M. ;
Almalki, Sami G. ;
Alghofaili, Fayez ;
Alnemare, Ahmad K. ;
Al-Baradi, Raid Saleem ;
Alosaimi, Bandar ;
Alturaiki, Wael .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2021, 18 (12)
[53]   The coding capacity of SARS-CoV-2 [J].
Finkel, Yaara ;
Mizrahi, Orel ;
Nachshon, Aharon ;
Weingarten-Gabbay, Shira ;
Morgenstern, David ;
Yahalom-Ronen, Yfat ;
Tamir, Hadas ;
Achdout, Hagit ;
Stein, Dana ;
Israeli, Ofir ;
Beth-Din, Adi ;
Melamed, Sharon ;
Weiss, Shay ;
Israely, Tomer ;
Paran, Nir ;
Schwartz, Michal ;
Stern-Ginossar, Noam .
NATURE, 2021, 589 (7840) :125-U254
[54]   SARS-CoV-2 membrane glycoprotein M antagonizes the MAVS-mediated innate antiviral response [J].
Fu, Yu-Zhi ;
Wang, Su-Yun ;
Zheng, Zhou-Qin ;
Huang, Yi ;
Li, Wei-Wei ;
Xu, Zhi-Sheng ;
Wang, Yan-Yi .
CELLULAR & MOLECULAR IMMUNOLOGY, 2021, 18 (03) :613-620
[55]   A tug-of-war between severe acute respiratory syndrome coronavirus 2 and host antiviral defence: lessons from other pathogenic viruses [J].
Fung, Sin-Yee ;
Yuen, Kit-San ;
Ye, Zi-Wei ;
Chan, Chi-Ping ;
Jin, Dong-Yan .
EMERGING MICROBES & INFECTIONS, 2020, 9 (01) :558-570
[56]   Exploring Mitochondrial Localization of SARS-CoV-2 RNA by Padlock Assay: A Pilot Study in Human Placenta [J].
Gabanella, Francesca ;
Barbato, Christian ;
Corbi, Nicoletta ;
Fiore, Marco ;
Petrella, Carla ;
de Vincentiis, Marco ;
Greco, Antonio ;
Ferraguti, Giampiero ;
Corsi, Alessandro ;
Ralli, Massimo ;
Pecorella, Irene ;
Di Gioia, Cira ;
Pecorini, Francesco ;
Brunelli, Roberto ;
Passananti, Claudio ;
Minni, Antonio ;
Di Certo, Maria Grazia .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (04)
[57]  
Gaebler C., 2020, BIORXIV, DOI [10.1101/2020.11.03.367391, DOI 10.1038/S41586-021-03207-W, 10.1038/s41586-021-03207-w]
[58]   Molecular definitions of cell death subroutines: recommendations of the Nomenclature Committee on Cell Death 2012 [J].
Galluzzi, L. ;
Vitale, I. ;
Abrams, J. M. ;
Alnemri, E. S. ;
Baehrecke, E. H. ;
Blagosklonny, M. V. ;
Dawson, T. M. ;
Dawson, V. L. ;
El-Deiry, W. S. ;
Fulda, S. ;
Gottlieb, E. ;
Green, D. R. ;
Hengartner, M. O. ;
Kepp, O. ;
Knight, R. A. ;
Kumar, S. ;
Lipton, S. A. ;
Lu, X. ;
Madeo, F. ;
Malorni, W. ;
Mehlen, P. ;
Nunez, G. ;
Peter, M. E. ;
Piacentini, M. ;
Rubinsztein, D. C. ;
Shi, Y. ;
Simon, H-U ;
Vandenabeele, P. ;
White, E. ;
Yuan, J. ;
Zhivotovsky, B. ;
Melino, G. ;
Kroemer, G. .
CELL DEATH AND DIFFERENTIATION, 2012, 19 (01) :107-120
[59]   The "post-COVID" syndrome: How deep is the damage? [J].
Garg, Prerna ;
Arora, Umang ;
Kumar, Arvind ;
Wig, Naveet .
JOURNAL OF MEDICAL VIROLOGY, 2021, 93 (02) :673-674
[60]   A diabetic milieu increases ACE2 expression and cellular susceptibility to SARS-CoV-2 infections in human kidney organoids and patient cells [J].
Garreta, Elena ;
Prado, Patricia ;
Stanifer, Megan L. ;
Monteil, Vanessa ;
Marco, Andres ;
Ullate-Agote, Asier ;
Moya-Rull, Daniel ;
Vilas-Zornoza, Amaia ;
Tarantino, Carolina ;
Pablo Romero, Juan ;
Jonsson, Gustav ;
Oria, Roger ;
Leopoldi, Alexandra ;
Hagelkruys, Astrid ;
Gallo, Maria ;
Gonzalez, Federico ;
Domingo-Pedrol, Pere ;
Gavalda, Aleix ;
Hurtado del Pozo, Carmen ;
Hasan Ali, Omar ;
Ventura-Aguiar, Pedro ;
Maria Campistol, Josep ;
Prosper, Felipe ;
Mirazimi, Ali ;
Boulant, Steeve ;
Penninger, Josef M. ;
Montserrat, Nuria .
CELL METABOLISM, 2022, 34 (06) :857-+