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Published on: March 8, 2024
Developing Cytokine Storm-Sensitive Therapeutic Strategy in COVID-19 Using 8P9R Chimeric Peptide and Soluble ACE2
Yasaman Nazerian1, Kimia Vakili1, Ali Ebrahimi1
1Student Research Committee, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.
Abstract:
Currently, the COVID-19 pandemic is an international challenge, largely due to lack of effective therapies. Pharmacotherapy has not yet been able to find a definitive treatment for COVID-19. Since SARS-CoV-2 affects several organs, treatment strategies that target the virus in a wider range are expected to be ultimately more successful. To this end, a two-step treatment strategy has been presented. In the first phase of the disease, when the patient is newly infected with the virus and the cytokine storm has not yet been developed, a chimeric peptide is used to inhibit virus entry into the host cell cytosol (by inhibiting endosomal pH acidification) and viral replication. After the virus entry and decrease of angiotensin converting enzyme 2 (ACE2) level, some people are unable to properly compensate for the ACE2 pathway and progress toward the cytokine storm. In the beginning of the cytokine storm, sACE2 protein is very effective in regulating the immune system toward the anti-inflammatory pathway, including M2 macrophages. Hence, the genes of 8P9R chimeric peptide and sACE2 would be inserted in an episomal vector with a separate promoter for each gene: the chimeric peptide gene promoter is a CMV promoter, while the sACE2 gene promoter is a NF-κB-sensitive promoter. The NF-κB-sensitive promoter induces the expression of sACE2 gene soon after elevation of NF-κB which is the main transcription factor of inflammatory genes. Thus, as the expression of inflammatory cytokines increases, the expression of sACE2 increases simultaneously. In this condition, sACE2 can prevent the cytokine storm by inhibiting the pro-inflammatory pathways. To deliver the designed vector to the target cells, mesenchymal stem cell-derived (MSC-derived) exosome-liposome hybrids are used. Herein, the strategy can be considered as a personalized clinical therapy for COVID-19, that can prevent morbidity and mortality in the future.
Insights
A novel two-step COVID-19 therapy uses a chimeric peptide to block viral entry and replication, followed by soluble ACE2 protein to prevent cytokine storms. Mesenchymal stem cell-derived exosome-liposome hybrids deliver the therapeutic genes for personalized treatment.
Area of Science:
- Virology
- Immunology
- Biotechnology
Background:
- The COVID-19 pandemic presents a significant global health challenge due to the lack of effective treatments.
- Current pharmacotherapy has not yielded a definitive cure for COVID-19.
- SARS-CoV-2 infection impacts multiple organs, necessitating broad-acting therapeutic strategies.
Purpose of the Study:
- To present a novel two-step therapeutic strategy for COVID-19 management.
- To inhibit early viral replication and entry, and later prevent cytokine storms.
- To develop a personalized clinical therapy for COVID-19.
Main Methods:
- A chimeric peptide is employed in the initial phase to inhibit viral entry and replication.
- Soluble ACE2 (sACE2) protein is utilized to regulate the immune response and mitigate cytokine storms.
- Genes for the chimeric peptide and sACE2 are inserted into an episomal vector with specific promoters (CMV and NF-κB-sensitive, respectively).
- Mesenchymal stem cell-derived (MSC-derived) exosome-liposome hybrids are used for targeted gene delivery.
Main Results:
- The chimeric peptide targets early-stage viral infection by inhibiting endosomal acidification and replication.
- The NF-κB-sensitive promoter drives sACE2 expression in response to elevated NF-κB, counteracting inflammation.
- sACE2 effectively regulates the immune system towards an anti-inflammatory pathway, including M2 macrophages, thereby preventing cytokine storms.
- The combined strategy aims to reduce COVID-19 morbidity and mortality.
Conclusions:
- This two-step therapeutic approach offers a promising strategy for managing COVID-19.
- The use of a chimeric peptide and sACE2 protein, delivered via MSC-derived exosome-liposome hybrids, represents a potential personalized therapy.
- This approach targets both viral replication and the detrimental cytokine storm, addressing key aspects of severe COVID-19 pathogenesis.

