A novel predictor of ACE2-binding ability among betacoronaviruses

Jamie D Dixson1, Rajeev K Azad1,2

  • 1Department of Biological Sciences and BioDiscovery Institute, University of North Texas, Denton, TX 76203, USA.

Abstract

Insights

A new waveform-based method reveals that bat and pangolin coronaviruses with ACE2 receptor binding ability cluster together. This finding aids in early detection of zoonotic outbreaks and prevention of future pandemics.

Area of Science:

  • Virology
  • Bioinformatics
  • Evolutionary Biology

Background:

  • The COVID-19 pandemic, caused by SARS-CoV-2, highlights the urgent need for methods to predict coronavirus human infectivity.
  • Understanding the evolution of the spike protein's receptor binding domain (RBD) is crucial for identifying zoonotic risks.
  • Current methods for predicting ACE2 binding are insufficient for effective biosurveillance.

Purpose of the Study:

  • To develop and validate a novel alignment-free method for inferring functional relatedness among betacoronaviruses.
  • To investigate the evolutionary origins of ACE2 receptor binding in coronavirus spike proteins.
  • To identify coronaviruses with potential for human cell entry and zoonotic transmission.

Main Methods:

  • Utilized an alignment-free technique based on physicochemical properties of amino acids to create dynamic waveform representations of proteins.
  • Applied dynamic time warping (DTW) and distance evaluation to quantify functional relatedness between coronavirus RBDs.
  • Compared the novel waveform-based approach with traditional phylogenetic methods (ML and NJ).

Main Results:

  • The waveform-based method successfully clustered bat betacoronavirus RBDs known to bind human ACE2 into a single group.
  • Pangolin coronaviruses with suspected or confirmed ACE2 binding were also found within this cluster.
  • The new method demonstrated utility in identifying potential zoonotic threats, complementing established phylogenetic analyses.

Conclusions:

  • The physicochemical clustering of ACE2-binding RBDs from bats and pangolins provides a novel approach for coronavirus surveillance.
  • This method can guide targeted surveillance efforts to detect and prevent zoonotic outbreaks.
  • The findings underscore the importance of monitoring coronaviruses within this identified cluster to mitigate future public health crises.