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Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
Emerging variants of concern in SARS-CoV-2 membrane protein: a highly conserved target with potential pathological
Lishuang Shen1, Jennifer Dien Bard1, Timothy J Triche1
1Children's Hospital Los Angles, Department of Pathology and Laboratory Medicine, Keck School of Medicine of University of Southern California, Los Angeles, CA, USA.
Abstract:
Mutations in the SARS-CoV-2 Membrane (M) gene are relatively uncommon. The M gene encodes the most abundant viral structural protein, and is implicated in multiple viral functions, including initial attachment to the host cell via heparin sulphate proteoglycan, viral protein assembly in conjunction with the N and E genes, and enhanced glucose transport. We have identified a recent spike in the frequency of reported SARS-CoV-2 genomes carrying M gene mutations. This is associated with emergence of a new sub-B.1 clade, B.1.I82T, defined by the previously unreported M:I82T mutation within TM3, the third of three membrane spanning helices implicated in glucose transport. The frequency of this mutation increased in the USA from 0.014% in October 2020 to 1.62% in February 2021, a 116-fold change. While constituting 0.7% of the isolates overall, M:I82T sub-B.1 lineage accounted for 14.4% of B.1 lineage isolates in February 2021, similar to the rapid initial increase previously seen with the B.1.1.7 and B.1.429 lineages, which quickly became the dominant lineages in Europe and California over a period of several months. A similar increase in incidence was also noted in another related mutation, V70L, also within the TM2 transmembrane helix. These M mutations are associated with younger patient age (4.6 to 6.3 years). The rapid emergence of this B.1.I82T clade, recently named Pangolin B.1.575 lineage, suggests that this M gene mutation is more biologically fit, perhaps related to glucose uptake during viral replication, and should be included in ongoing genomic surveillance efforts and warrants further evaluation for potentially increased pathogenic and therapeutic implications.
Insights
New SARS-CoV-2 M gene mutations, like M:I82T, are rapidly emerging. These mutations may enhance viral fitness, potentially impacting glucose transport and affecting younger patients.
Area of Science:
- Virology
- Genomics
- Molecular Biology
Background:
- The SARS-CoV-2 Membrane (M) gene encodes a key structural protein involved in viral assembly and host cell interactions.
- Mutations in the M gene are typically infrequent, but a recent surge in their occurrence has been observed.
- The M protein plays a role in viral attachment and glucose transport, suggesting potential functional implications of M gene mutations.
Purpose of the Study:
- To investigate the recent increase in SARS-CoV-2 M gene mutations.
- To characterize a novel sub-B.1 clade, B.1.I82T, defined by the M:I82T mutation.
- To assess the epidemiological spread and potential biological significance of M gene mutations.
Main Methods:
- Genomic surveillance of SARS-CoV-2 isolates.
- Analysis of mutation frequencies and lineage dynamics.
- Correlation of mutations with patient demographics.
Main Results:
- A significant increase in M gene mutations, particularly M:I82T, was identified, rising from 0.014% to 1.62% in the USA between October 2020 and February 2021.
- The B.1.I82T clade, defined by M:I82T, rapidly increased in prevalence, becoming a notable sub-lineage of the B.1 clade.
- M gene mutations were associated with infections in younger patients (ages 4.6-6.3 years).
Conclusions:
- The rapid emergence of SARS-CoV-2 clades with M gene mutations, such as B.1.I82T, suggests increased biological fitness.
- The M:I82T mutation's location in a transmembrane helix involved in glucose transport may be relevant to its enhanced fitness.
- Ongoing genomic surveillance and further research into the pathogenic and therapeutic implications of these M gene mutations are warranted.
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