Acute COVID-19 and LongCOVID syndrome – molecular implications for therapeutic strategies - review
Острый COVID-19 и синдром длительного COVID: молекулярные аспекты терапевтических стратегий — обзор
2025-04-17
SCID: 54.1/jnhr2kky
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Long COVID syndromeNrf2 activationSARS-CoV-2autophagy inhibitionchronic inflammation
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Abstract (AI)
Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) has been recognized not only for its acute effects but also for its ability to cause LongCOVID Syndrome (LCS), a condition characterized by persistent symptoms affecting multiple organ systems. This review examines the molecular and immunological mechanisms underlying LCS, with a particular focus on autophagy inhibition, chronic inflammation, oxidative, nitrosative and calcium stress, viral persistence and autoimmunology. Potential pathophysiological mechanisms involved in LCS include (1) autoimmune activation, (2) latent viral persistence, where SARS-CoV-2 continues to influence host metabolism, (3) reactivation of latent pathogens such as Epstein-Barr virus (EBV) or cytomegalovirus (CMV), exacerbating immune and metabolic dysregulation, and (4) possible persistent metabolic and inflammatory dysregulation, where the body fails to restore post-infection homeostasis. The manipulation of cellular pathways by SARS-CoV-2 proteins is a critical aspect of the virus' ability to evade immune clearance and establish long-term dysfunction. Viral proteins such as NSP13, ORF3a and ORF8 have been shown to disrupt autophagy, thereby impairing viral clearance and promoting immune evasion. In addition, mitochondrial dysfunction, dysregulated calcium signaling, oxidative stress, chronic HIF-1α activation and Nrf2 inhibition create a self-sustaining inflammatory feedback loop that contributes to tissue damage and persistent symptoms. Therefore understanding the molecular basis of LCS is critical for the development of effective therapeutic strategies. Targeting autophagy and Nrf2 activation, glycolysis inhibition, and restoration calcium homeostasis may provide novel strategies to mitigate the long-term consequences of SARS-CoV-2 infection. Future research should focus on personalized therapeutic interventions based on the dominant molecular perturbations in individual patients.
Key Findings
1
Long COVID syndrome is associated with persistent multisystem symptoms potentially driven by autoimmune activation, viral persistence, latent pathogen reactivation, and failure to restore metabolic-inflammatory homeostasis.
2
Mitochondrial dysfunction, calcium-signaling dysregulation, oxidative and nitrosative stress, chronic HIF-1α activation, and Nrf2 inhibition may sustain inflammatory feedback and tissue damage.
3
Potential therapeutic strategies include restoring autophagy and calcium homeostasis, activating Nrf2, and inhibiting glycolysis to mitigate persistent post-COVID pathology.
4
SARS-CoV-2 proteins NSP13, ORF3a, and ORF8 disrupt autophagy, potentially impairing viral clearance and promoting immune evasion and chronic dysfunction.
5
The review recommends personalized treatment approaches guided by the predominant molecular disturbances in individual Long COVID patients.
Research Object
Long COVID syndrome following SARS-CoV-2 infection
Research Subject
Molecular and immunological mechanisms underlying persistent multisystem symptoms, including autophagy inhibition, chronic inflammation, cellular stress, viral persistence, and autoimmunity
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2025-04-17
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