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Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
COVID-19, Cation Dysmetabolism, Sialic Acid, CD147, ACE2, Viroporins, Hepcidin and Ferroptosis: A Possible Unifying
Attilio Cavezzi1, Roberto Menicagli2, Emidio Troiani3
1Eurocenter Venalinfa, San Benedetto del Tronto, AP, 63074, Italy.
Insights
COVID-19 infection involves iron and calcium dysregulation, leading to cell damage via ferroptosis. SARS-CoV-2 utilizes sialic acid and CD147 receptors, causing cation imbalances and multi-organ effects.
Area of Science:
- Biochemistry
- Cell Biology
- Virology
Background:
- COVID-19 patients exhibit iron and calcium dysmetabolism, including hyperferritinemia, hypoferremia, hypocalcemia, and anemia.
- SARS-CoV-2 uses sialic acid (SA) molecules and CD147, in addition to ACE2, as host receptors for cell entry.
- Cell ferroptosis is proposed as a central degenerative mechanism in COVID-19 pathogenesis.
Purpose of the Study:
- To investigate the pathophysiological mechanisms linking SARS-CoV-2 infection to cation dysmetabolism and ferroptosis.
- To elucidate the role of specific viral entry receptors and host factors in COVID-19 pathology.
- To analyze the sequence of events from viral entry to multi-organ degeneration.
Main Methods:
- Comprehensive literature research conducted across major scientific databases (PubMed Central, Cochrane Library, Chemical Abstract Service).
- Analysis of over 500 retrieved articles published up to mid-December 2021.
- Synthesis of evidence to identify key pathophysiological pathways in COVID-19.
Main Results:
- SARS-CoV-2 entry involves spike protein S1 binding to SA-containing receptors (ACE2, CD147) and S2 fusion.
- Viral activity, including viroporin action, alters cell membrane ion channels, leading to cation accumulation and dysmetabolism.
- Deregulation of the hepcidin-ferroportin axis increases intracellular iron, contributing to ferroptosis.
- Erythrocytes, endothelial cells, and macrophages are affected, causing hemoglobin and iron/calcium imbalances.
- ABO blood group, hemochromatosis, and environmental factors may influence individual susceptibility.
Conclusions:
- Sialic acid molecules, ACE2, CD147, viroporins, and hepcidin collectively drive cation dysmetabolism and ferroptosis in SARS-CoV-2 infected cells.
- Altered ion channels and electrochemical gradients are critical for viral entry and subsequent cell dysmetabolism.
- These processes result in multi-organ immune-inflammatory degeneration and erythrocyte/hemoglobin alterations.
Abstract:
Background: iron and calcium dysmetabolism, with hyperferritinemia, hypoferremia, hypocalcemia and anemia have been documented in the majority of COVID-19 patients at later/worse stages. Furthermore, complementary to ACE2, both sialic acid (SA) molecules and CD147 proved relevant host receptors for SARS-CoV-2 entry, which explains the viral attack to multiple types of cells, including erythrocytes, endothelium and neural tissue. Several authors advocated that cell ferroptosis may be the core and final cell degenerative mechanism. Methods: a literature research was performed in several scientific search engines, such as PubMed Central, Cochrane Library, Chemical Abstract Service. More than 500 articles were retrieved until mid-December 2021, to highlight the available evidence about the investigated issues. Results: based on COVID-19 literature data, we have highlighted a few pathophysiological mechanisms, associated with virus-based cation dysmetabolism, multi-organ attack, mitochondria degeneration and ferroptosis. Our suggested elucidated pathological sequence is: a) spike protein subunit S1 docking with sialylated membrane glycoproteins/receptors (ACE2, CD147), and S2 subunit fusion with the lipid layer; b) cell membrane morpho-functional changes due to the consequent electro-chemical variations and viroporin action, which induce an altered ion channel function and intracellular cation accumulation; c) additional intracellular iron concentration due to a deregulated hepcidin-ferroportin axis, with higher hepcidin levels. Viral invasion may also affect erythrocytes/erythroid precursors, endothelial cells and macrophages, through SA and CD147 receptors, with relative hemoglobin and iron/calcium dysmetabolism. AB0 blood group, hemochromatosis, or environmental elements may represent possible factors which affect individual susceptibility to COVID-19. Conclusions: our literature analysis confirms the combined role of SA molecules, ACE2, CD147, viroporins and hepcidin in determining the cation dysmetabolism and final ferroptosis in the cells infected by SARS-CoV-2. The altered ion channels and electrochemical gradients of the cell membrane have a pivotal role in the virus entry and cell dysmetabolism, with subsequent multi-organ immune-inflammatory degeneration and erythrocyte/hemoglobin alterations.
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