# Possible Link between Higher Transmissibility of Alpha, Kappa and Delta Variants of SARS-CoV-2 and Increased Structural Stability of Its Spike Protein and hACE2 Affinity

**Authors:** Vipul Kumar, Jasdeep Singh, Seyed E. Hasnain, Durai Sundar

PMC · DOI: 10.3390/ijms22179131 · International Journal of Molecular Sciences · 2021-08-24

## TL;DR

This paper explores how mutations in Alpha, Kappa, and Delta SARS-CoV-2 variants may increase their transmissibility through enhanced spike protein stability and stronger binding to human cells.

## Contribution

The study provides a biophysical explanation for increased transmissibility of SARS-CoV-2 variants through molecular dynamics simulations.

## Key findings

- Alpha and Kappa variants show increased binding energy between spike protein and hACE2.
- Mutations in Kappa and Delta variants enhance spike protein stability and intra-chain interactions.
- Alpha variant has stronger hydrogen interactions with hACE2 compared to the wild-type.

## Abstract

The Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) outbreak in December 2019 has caused a global pandemic. The rapid mutation rate in the virus has created alarming situations worldwide and is being attributed to the false negativity in RT-PCR tests. It has also increased the chances of reinfection and immune escape. Recently various lineages namely, B.1.1.7 (Alpha), B.1.617.1 (Kappa), B.1.617.2 (Delta) and B.1.617.3 have caused rapid infection around the globe. To understand the biophysical perspective, we have performed molecular dynamic simulations of four different spikes (receptor binding domain)-hACE2 complexes, namely wildtype (WT), Alpha variant (N501Y spike mutant), Kappa (L452R, E484Q) and Delta (L452R, T478K), and compared their dynamics, binding energy and molecular interactions. Our results show that mutation has caused significant increase in the binding energy between the spike and hACE2 in Alpha and Kappa variants. In the case of Kappa and Delta variants, the mutations at L452R, T478K and E484Q increased the stability and intra-chain interactions in the spike protein, which may change the interaction ability of neutralizing antibodies to these spike variants. Further, we found that the Alpha variant had increased hydrogen interaction with Lys353 of hACE2 and more binding affinity in comparison to WT. The current study provides the biophysical basis for understanding the molecular mechanism and rationale behind the increase in the transmissivity and infectivity of the mutants compared to wild-type SARS-CoV-2.

## Linked entities

- **Diseases:** SARS-CoV-2 (MONDO:0100096)

## Full-text entities

- **Genes:** ERVK-6 (endogenous retrovirus group K member 6, envelope) [NCBI Gene 64006] {aka ERVK6, HERV-K(C7), HERV-K108, K-Rev, c-orf, cORF}, TMPRSS2 (transmembrane serine protease 2) [NCBI Gene 7113] {aka PRSS10}, ACE2 (angiotensin converting enzyme 2) [NCBI Gene 59272] {aka ACEH}, ACE (angiotensin I converting enzyme) [NCBI Gene 1636] {aka ACE1, CD143, DCP, DCP1}, S (surface glycoprotein) [NCBI Gene 43740568] {aka spike glycoprotein}
- **Diseases:** lung infection (MESH:D012141), COVID-19 (MESH:D000086382), Coronavirus-2 (MESH:D018352), infected (MESH:D007239), Severe Acute Respiratory Syndrome (MESH:D045169)
- **Chemicals:** Tyr (MESH:D014443), Glu (MESH:D018698), Leu (MESH:D007930), Arg (MESH:D001120), hydrogen (MESH:D006859), water (MESH:D014867), ritonavir (MESH:D019438), Na+/Cl- (MESH:D012965), Asn (MESH:D001216), remdesivir (MESH:C000606551), hydroxychloroquine (MESH:D006886), Thr (MESH:D013912), lopinavir (MESH:D061466), Lys (MESH:D008239)
- **Species:** Severe acute respiratory syndrome coronavirus 2 (no rank) [taxon 2697049], Homo sapiens (human, species) [taxon 9606], Gammacoronavirus (genus) [taxon 694013], Betacoronavirus (genus) [taxon 694002], Dipturus trachyderma (ray, species) [taxon 255564]
- **Mutations:** L452R, E484Q, Gln484, W258L, E484K, P681R, L45R, D950N, L452, D614G, T478K, Asn501, Q1071H, Asn to Tyr, E154K, 501Y, E484, N501Y, L18F, T19R, Lys417, T478, Thr478, K417T, K417N, K478, Arg452

## Full text

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## Figures

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## References

43 references — full list in the complete paper: https://tomesphere.com/paper/PMC8431609/full.md

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Source: https://tomesphere.com/paper/PMC8431609