Congenital heart disease missense mutations in the TBX5 DNA-binding domain alter thermal stability and DNA-binding affinity.

IF 2.2 3区 生物学 Q3 GENETICS & HEREDITY
Alejandro Rivera-Madera, Edwin G Peña-Martínez, Jean L Messon-Bird, Diego A Pomales-Matos, Oswaldo L Echevarría-Bonilla, Leandro Sanabria-Alberto, Esther A Peterson-Peguero, José A Rodríguez-Martínez
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Abstract

Missense mutations can alter the biochemical properties of proteins, including stability, structure, and function, potentially contributing to the development of multiple human diseases. Mutations in TBX5, a transcription factor necessary for heart development, are among the causes of congenital heart diseases. However, further research on biophysical and biochemical mechanisms is needed to understand how missense mutations in transcription factors alter their function in regulating gene expression. In this work, we applied in vitro and in silico approaches to understand how 5 missense mutations in the TBX5 T-box DNA-binding domain (I54T, M74V, I101F, R113K, and R237W) impact protein structure, thermal stability, and DNA-binding affinity to known TBX5 cognate binding sites. Differential scanning fluorimetry showed that mutants I54T and M74V had decreased thermal stability, mutants I101F and R113K had increased stability, and R237W had no significant effect on stability. Additionally, DNA-binding affinity decreased for all 5 missense mutants when evaluated in vitro for known TBX5 genomic binding sites within regulatory elements of Nppa and Camta1 genes. Structural modeling of the TBX5 predicted altered protein conformations and stability due to the loss or gain of amino acid residue interactions. Together, our findings provide biophysical and biochemical mechanisms that can be further explored to establish causality between TBX5 missense mutations and the development of congenital heart diseases.

先天性心脏病TBX5 dna结合域的错义突变改变了热稳定性和dna结合亲和力。
错义突变可以改变蛋白质的生化特性,包括稳定性、结构和功能,可能导致多种人类疾病的发生。TBX5是一种心脏发育所必需的转录因子(TF),其突变是导致先天性心脏病(CHD)的原因之一。然而,对于tf错义突变如何改变其调控基因表达的功能,还需要进一步的生物物理和生化机制研究。在这项工作中,我们应用体外和计算机方法来了解TBX5 T-box dna结合域(I54T, M74V, I101F, R113K和R237W)中的五种错义突变如何影响蛋白质结构,热稳定性以及与已知TBX5同源结合位点的dna结合亲和力。差示扫描荧光法显示突变体I54T和M74V的热稳定性降低,突变体I101F和R113K的稳定性提高,而R237W对稳定性没有显著影响。此外,当对Nppa和Camta1基因调控元件中已知的TBX5基因组结合位点进行体外评估时,所有五种错义突变体的dna结合亲和力都降低了。TBX5的结构建模预测了由于氨基酸残基相互作用的损失或增加而改变的蛋白质构象和稳定性。总之,我们的发现提供了生物物理和生化机制,可以进一步探索TBX5错义突变与冠心病发展之间的因果关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
G3: Genes|Genomes|Genetics
G3: Genes|Genomes|Genetics GENETICS & HEREDITY-
CiteScore
5.10
自引率
3.80%
发文量
305
审稿时长
3-8 weeks
期刊介绍: G3: Genes, Genomes, Genetics provides a forum for the publication of high‐quality foundational research, particularly research that generates useful genetic and genomic information such as genome maps, single gene studies, genome‐wide association and QTL studies, as well as genome reports, mutant screens, and advances in methods and technology. The Editorial Board of G3 believes that rapid dissemination of these data is the necessary foundation for analysis that leads to mechanistic insights. G3, published by the Genetics Society of America, meets the critical and growing need of the genetics community for rapid review and publication of important results in all areas of genetics. G3 offers the opportunity to publish the puzzling finding or to present unpublished results that may not have been submitted for review and publication due to a perceived lack of a potential high-impact finding. G3 has earned the DOAJ Seal, which is a mark of certification for open access journals, awarded by DOAJ to journals that achieve a high level of openness, adhere to Best Practice and high publishing standards.
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