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Review

Genetic Variability of the Functional Domains of Chromodomains Helicase DNA-Binding (CHD) Proteins

by
Ana R. Cardoso
1,2,3,
Mónica Lopes-Marques
1,2,3,
Manuela Oliveira
1,2,3,
António Amorim
1,2,3,
Maria J. Prata
1,2,3 and
Luísa Azevedo
1,2,3,*
1
i3S—Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Rua Alfredo Allen 208, 4200-135 Porto, Portugal
2
IPATIMUP—Institute of Molecular Pathology and Immunology, University of Porto, Rua Júlio Amaral de Carvalho 45, 4200-135 Porto, Portugal
3
FCUP—Department of Biology, Faculty of Sciences, University of Porto, Rua do Campo Alegre, s/n, 4169-007 Porto, Portugal
*
Author to whom correspondence should be addressed.
Genes 2021, 12(11), 1827; https://doi.org/10.3390/genes12111827
Submission received: 24 September 2021 / Revised: 10 November 2021 / Accepted: 18 November 2021 / Published: 19 November 2021
(This article belongs to the Special Issue Genetics of Neurodevelopmental Disorders)

Abstract

In the past few years, there has been an increasing neuroscientific interest in understanding the function of mammalian chromodomains helicase DNA-binding (CHD) proteins due to their association with severe developmental syndromes. Mammalian CHDs include nine members (CHD1 to CHD9), grouped into subfamilies according to the presence of specific functional domains, generally highly conserved in evolutionary terms. Mutations affecting these domains hold great potential to disrupt protein function, leading to meaningful pathogenic scenarios, such as embryonic defects incompatible with life. Here, we analysed the evolution of CHD proteins by performing a comparative study of the functional domains of CHD proteins between orthologous and paralogous protein sequences. Our findings show that the highest degree of inter-species conservation was observed at Group II (CHD3, CHD4, and CHD5) and that most of the pathological variations documented in humans involve amino acid residues that are conserved not only between species but also between paralogs. The parallel analysis of both orthologous and paralogous proteins, in cases where gene duplications have occurred, provided extra information showing patterns of flexibility as well as interchangeability between amino acid positions. This added complexity needs to be considered when the impact of novel mutations is assessed in terms of evolutionary conservation.
Keywords: chromodomains helicase DNA-binding protein; neurodevelopment; chromatin remodelling; transcription regulation; evolutionary conservation chromodomains helicase DNA-binding protein; neurodevelopment; chromatin remodelling; transcription regulation; evolutionary conservation

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MDPI and ACS Style

Cardoso, A.R.; Lopes-Marques, M.; Oliveira, M.; Amorim, A.; Prata, M.J.; Azevedo, L. Genetic Variability of the Functional Domains of Chromodomains Helicase DNA-Binding (CHD) Proteins. Genes 2021, 12, 1827. https://doi.org/10.3390/genes12111827

AMA Style

Cardoso AR, Lopes-Marques M, Oliveira M, Amorim A, Prata MJ, Azevedo L. Genetic Variability of the Functional Domains of Chromodomains Helicase DNA-Binding (CHD) Proteins. Genes. 2021; 12(11):1827. https://doi.org/10.3390/genes12111827

Chicago/Turabian Style

Cardoso, Ana R., Mónica Lopes-Marques, Manuela Oliveira, António Amorim, Maria J. Prata, and Luísa Azevedo. 2021. "Genetic Variability of the Functional Domains of Chromodomains Helicase DNA-Binding (CHD) Proteins" Genes 12, no. 11: 1827. https://doi.org/10.3390/genes12111827

APA Style

Cardoso, A. R., Lopes-Marques, M., Oliveira, M., Amorim, A., Prata, M. J., & Azevedo, L. (2021). Genetic Variability of the Functional Domains of Chromodomains Helicase DNA-Binding (CHD) Proteins. Genes, 12(11), 1827. https://doi.org/10.3390/genes12111827

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