Inferring protein folding mechanisms from natural sequence diversity

Fuente: arXiv
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Autores principales: Galpern, Ezequiel A., Roman, Ernesto A., Ferreiro, Diego U.
Formato: Preprint
Publicado: 2024
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author Galpern, Ezequiel A.
Roman, Ernesto A.
Ferreiro, Diego U.
author_facet Galpern, Ezequiel A.
Roman, Ernesto A.
Ferreiro, Diego U.
contents Protein sequences serve as a natural record of the evolutionary constraints that shape their functional structures. We show that it is possible to use only sequence information to go beyond predicting native structures and global stability to infer the folding mechanisms of globular proteins. The one- and two-body evolutionary energy fields at the amino-acid level are mapped to a coarse-grained description of folding, where proteins are divided into contiguous folding elements, commonly referred to as foldons. For 15 diverse protein families, we calculated the folding mechanisms of hundreds of proteins by simulating an Ising chain of foldons, with their energetics determined by the amino acid sequences. We show that protein topology imposes limits on the variability of folding cooperativity within a family. While most beta and alpha/beta structures exhibit only a few possible mechanisms despite high sequence diversity, alpha topologies allow for diverse folding scenarios among family members. We show that both the stability and cooperativity changes induced by mutations can be computed directly using sequence-based evolutionary models.
format Preprint
id arxiv_https___arxiv_org_abs_2412_14341
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Inferring protein folding mechanisms from natural sequence diversity
Galpern, Ezequiel A.
Roman, Ernesto A.
Ferreiro, Diego U.
Biomolecules
Protein sequences serve as a natural record of the evolutionary constraints that shape their functional structures. We show that it is possible to use only sequence information to go beyond predicting native structures and global stability to infer the folding mechanisms of globular proteins. The one- and two-body evolutionary energy fields at the amino-acid level are mapped to a coarse-grained description of folding, where proteins are divided into contiguous folding elements, commonly referred to as foldons. For 15 diverse protein families, we calculated the folding mechanisms of hundreds of proteins by simulating an Ising chain of foldons, with their energetics determined by the amino acid sequences. We show that protein topology imposes limits on the variability of folding cooperativity within a family. While most beta and alpha/beta structures exhibit only a few possible mechanisms despite high sequence diversity, alpha topologies allow for diverse folding scenarios among family members. We show that both the stability and cooperativity changes induced by mutations can be computed directly using sequence-based evolutionary models.
title Inferring protein folding mechanisms from natural sequence diversity
topic Biomolecules
url https://arxiv.org/abs/2412.14341