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Directional Variant Tension (Tv): A Causal Framework for Quantifying Substitution Asymmetry

Karagöl, A.; Karagöl, T.

2026-03-12 bioinformatics
10.64898/2026.03.10.710752 bioRxiv
Show abstract

Amino acid substitutions are often directionally asymmetric due to underlying biophysical constraints and diverse evolutionary pressures. We introduce T{nu} (variant tension), a kernel regression-based metric that quantifies this directional asymmetry directly from aligned multiple sequence alignments (MSAs). T{nu} leverages empirical amino acid frequencies and a non-parametric aussian kernel to capture nonlinear substitution flows, providing a causality-inspired framework for understanding evolutionary dynamics. We also present a web-based application that implements the calculation, allowing users to input MSAs, adjust parameters (kernel bandwidth {sigma}, smoothing window size w), and visualize results, including global tension scores and high-tension sites. Applying T{nu} to the human glutamate transporter (EAA1), we identify significant substitution asymmetries, localize high-tension sites, and reveal correlations between elevated T{nu} and known pathogenic variants. This framework integrates statistical learning with protein evolution, offering a powerful tool for bridging protein design principles with evolutionary inference. Beyond variant prioritization, T{square} offers a scalable framework for simulating evolution under directional constraints, enabling predictive modeling of protein adaptation. The free web application is openly accsessible at https://www.karagolresearch.com/variantt

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