bioRxiv · 10.1101/2020.08.10.244558
Proteome-scale Analysis of Vertebrate Protein Thermoadaptation Modulated by Dynamic Allostery And Protein Solvation
Abstract
Despite differences in behaviors and living conditions, vertebrate organisms share the great majority of proteins, often with subtle differences in amino acid sequence. Here, we present a simple way to analyze the difference in amino acid occurrence by comparing highly homologous proteins on a sub-proteome level between several vertebrate model organisms. Specifically, we use this method to identify a pattern of amino acid conservation as well as a shift in amino acid occurrence between homeotherms (warm-blooded species) and poikilotherms (cold-blooded species). Importantly, this general analysis and a specific example further establish a correlation, if not likely connection between the thermoadaptation of protein sequences and two of their physical features: a possible change in their protein dynamics and, even more strongly, in their solvation. For poikilotherms, such as frog and fish, the lower body temperature is expected to increase the association of proteins due to a decrease in protein internal dynamics. In order to prevent overly-sticky protein association at low temperatures, the use of amino acids suggests that poikilotherms enhance the solvation of their proteins by favoring polar groups on their proteins surface. This feature appears to dominate over possible changes in dynamics. The results suggest that a general trend for amino acid choice is part of the mechanism for thermoadaptation of vertebrate organisms at the molecular level.
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LI, Z., Buck, M.. 2020-08-11. Proteome-scale Analysis of Vertebrate Protein Thermoadaptation Modulated by Dynamic Allostery And Protein Solvation. https://doi.org/10.1101/2020.08.10.244558
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