ROS/RNS Balancing, Aerobic Fermentation Regulation and Cell Cycle Control - a Complex Early Trait ('CoV-MAC-TED') for
José Hélio Costa1,2, Gunasekaran Mohanapriya2,3, Revuru Bharadwaj2,3
1Functional Genomics and Bioinformatics Group, Department of Biochemistry and Molecular Biology, Federal University of Ceará, Fortaleza, Brazil.
Abstract:
In a perspective entitled 'From plant survival under severe stress to anti-viral human defense' we raised and justified the hypothesis that transcript level profiles of justified target genes established from in vitro somatic embryogenesis (SE) induction in plants as a reference compared to virus-induced profiles can identify differential virus signatures that link to harmful reprogramming. A standard profile of selected genes named 'ReprogVirus' was proposed for in vitro-scanning of early virus-induced reprogramming in critical primary infected cells/tissues as target trait. For data collection, the 'ReprogVirus platform' was initiated. This initiative aims to identify in a common effort across scientific boundaries critical virus footprints from diverse virus origins and variants as a basis for anti-viral strategy design. This approach is open for validation and extension. In the present study, we initiated validation by experimental transcriptome data available in public domain combined with advancing plant wet lab research. We compared plant-adapted transcriptomes according to 'RegroVirus' complemented by alternative oxidase (AOX) genes during de novo programming under SE-inducing conditions with in vitro corona virus-induced transcriptome profiles. This approach enabled identifying a major complex trait for early de novo programming during SARS-CoV-2 infection, called 'CoV-MAC-TED'. It consists of unbalanced ROS/RNS levels, which are connected to increased aerobic fermentation that links to alpha-tubulin-based cell restructuration and progression of cell cycle. We conclude that anti-viral/anti-SARS-CoV-2 strategies need to rigorously target 'CoV-MAC-TED' in primary infected nose and mouth cells through prophylactic and very early therapeutic strategies. We also discuss potential strategies in the view of the beneficial role of AOX for resilient behavior in plants. Furthermore, following the general observation that ROS/RNS equilibration/redox homeostasis is of utmost importance at the very beginning of viral infection, we highlight that 'de-stressing' disease and social handling should be seen as essential part of anti-viral/anti-SARS-CoV-2 strategies.
Insights
Plant stress response genes can identify early viral reprogramming in human cells. A new
Area of Science:
- Plant biology
- Virology
- Molecular biology
Background:
- Plant somatic embryogenesis (SE) gene profiles can serve as a reference for identifying viral reprogramming signatures.
- The 'ReprogVirus' platform aims to standardize the detection of early virus-induced reprogramming across diverse viral origins.
- Understanding viral footprints is crucial for designing effective antiviral strategies.
Purpose of the Study:
- To validate the 'ReprogVirus' hypothesis using public transcriptome data and plant research.
- To compare plant SE-induced transcriptomes with SARS-CoV-2-induced transcriptomes.
- To identify a novel trait associated with early SARS-CoV-2 infection and reprogramming.
Main Methods:
- Comparative transcriptome analysis of plant SE and SARS-CoV-2 infection.
- Utilized public domain experimental transcriptome data.
- Incorporated alternative oxidase (AOX) gene expression data.
Main Results:
- Identified a major complex trait for early de novo programming in SARS-CoV-2 infection, termed 'CoV-MAC-TED'.
- 'CoV-MAC-TED' involves unbalanced reactive oxygen and nitrogen species (ROS/RNS) levels, increased aerobic fermentation, and alpha-tubulin-based cell restructuring.
- AOX genes and redox homeostasis are highlighted as important factors in viral defense.
Conclusions:
- Antiviral strategies against SARS-CoV-2 must target 'CoV-MAC-TED' in primary infected cells (nose, mouth).
- Prophylactic and early therapeutic interventions are recommended.
- Social and disease 'de-stressing' are essential components of antiviral strategies, alongside biological interventions.
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