Affiliation:
1. Center for Medical Science, Fujita Health University, Toyoake 470-1192, Japan
Abstract
Length polymorphisms of polyglutamine (polyQs) in triplet-repeat-disease-causing genes have diversified during primate evolution despite them conferring a risk of human-specific diseases. To explain the evolutionary process of this diversification, there is a need to focus on mechanisms by which rapid evolutionary changes can occur, such as alternative splicing. Proteins that can bind polyQs are known to act as splicing factors and may provide clues about the rapid evolutionary process. PolyQs are also characterized by the formation of intrinsically disordered (ID) regions, so I hypothesized that polyQs are involved in the transportation of various molecules between the nucleus and cytoplasm to regulate mechanisms characteristic of humans such as neural development. To determine target molecules for empirical research to understand the evolutionary change, I explored protein–protein interactions (PPIs) involving the relevant proteins. This study identified pathways related to polyQ binding as hub proteins scattered across various regulatory systems, including regulation via PQBP1, VCP, or CREBBP. Nine ID hub proteins with both nuclear and cytoplasmic localization were found. Functional annotations suggested that ID proteins containing polyQs are involved in regulating transcription and ubiquitination by flexibly changing PPI formation. These findings explain the relationships among splicing complex, polyQ length variations, and modifications in neural development.
Funder
Ministry of Education, Culture, Sports, Science and Technology of Japan
Japan Society for the Promotion of Science
Subject
Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis
Reference40 articles.
1. Selection pressure on human STR loci and its relevance in repeat expansion disease;Shimada;Mol. Genet. Genom.,2016
2. Comparative genetics of functional trinucleotide tandem repeats in humans and apes;Soldevila;J. Mol. Evol.,2004
3. Ota, M., Gonja, H., Koike, R., and Fukuchi, S. (2016). Multiple-Localization and Hub Proteins. PLoS ONE, 11.
4. Phase Separation as a Missing Mechanism for Interpretation of Disease Mutations;Tsang;Cell,2020
5. Intrinsically disordered proteins/regions and insight into their biomolecular interactions;Chakrabarti;Biophys. Chem.,2022