Structural Insights into the Impact of the M142I Mutation in Monkeypox Virus G9 Protein on Subcomplex Formation

Xudong She1, Yuan Liang1, Linqing Wang1

  • 1BSL-3 Laboratory (Guangdong), Guangdong Provincial Key Laboratory of Tropical Disease Research, Key Laboratory of Infectious Diseases Research in South China, School of Public Health, Southern Medical University, No. 1023, South Shatai Road, Baiyun District, Guangzhou 510515, China.

Insights

Monkeypox virus (MPXV) entry fusion complex (EFC) mutations, driven by APOBEC3, alter viral structure. The G9 M142I mutation destabilizes EFC assembly, impacting viral evolution.

Area of Science:

  • Virology
  • Structural Biology
  • Genomics

Background:

  • The monkeypox virus (MPXV) entry fusion complex (EFC) is vital for host cell invasion.
  • APOLIPOPROTEIN B mRNA EDITING CATALYTIC POLYPEPTIDELIKE 3 (APOBEC3)-driven mutations influence MPXV evolution.
  • The structural and functional impact of these mutations on EFC proteins is largely unknown.

Purpose of the Study:

  • To investigate how APOBEC3-driven mutations affect the structure and function of MPXV EFC proteins.
  • To analyze genomic mutations in MPXV clades Ib and IIb.
  • To model and experimentally validate the structural consequences of specific mutations.

Main Methods:

  • Genomic mutation analysis of MPXV clades Ib and IIb.
  • Protein structure modeling using AlphaFold 3 (monomer, binary, quaternary complexes).
  • Experimental validation via ELISA to assess binding affinities.

Main Results:

  • Extensive APOBEC3-driven mutations found in MPXV lineage IIb B, including G9 M142I.
  • The M142I mutation alters the G9/A16 subcomplex conformation and destabilizes the G9/A16/A56/K2 quaternary complex.
  • Experimental validation confirmed reduced binding affinity and impaired complex assembly due to the M142I mutation.

Conclusions:

  • APOBEC3-driven mutations dynamically alter EFC protein structure and assembly.
  • The M142I mutation in MPXV lineage IIb B destabilizes EFC quaternary complex formation.
  • These structural changes offer molecular insights into MPXV lineage differentiation and viral evolution.

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