THAP11F80L cobalamin disorder-associated mutation reveals normal and pathogenic THAP11 functions in gene expression and cell proliferation

Twelve human THAP proteins share the THAP domain, an evolutionary conserved zinc-finger DNA-binding domain. Studies of different THAP proteins have indicated roles in gene transcription, cell proliferation and development. We have analyzed this protein family, focusing on THAP7 and THAP11. We show t...

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Veröffentlicht in:PloS one 2020-01, Vol.15 (1), p.e0224646-e0224646
Hauptverfasser: Dehaene, Harmonie, Praz, Viviane, Lhôte, Philippe, Lopes, Maykel, Herr, Winship
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Praz, Viviane
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Lopes, Maykel
Herr, Winship
description Twelve human THAP proteins share the THAP domain, an evolutionary conserved zinc-finger DNA-binding domain. Studies of different THAP proteins have indicated roles in gene transcription, cell proliferation and development. We have analyzed this protein family, focusing on THAP7 and THAP11. We show that human THAP proteins possess differing homo- and heterodimer formation properties and interaction abilities with the transcriptional co-regulator HCF-1. HEK-293 cells lacking THAP7 were viable but proliferated more slowly. In contrast, HEK-293 cells were very sensitive to THAP11 alteration. Nevertheless, HEK-293 cells bearing a THAP11 mutation identified in a patient suffering from cobalamin disorder (THAP11F80L) were viable although proliferated more slowly. Cobalamin disorder is an inborn vitamin deficiency characterized by neurodevelopmental abnormalities, most often owing to biallelic mutations in the MMACHC gene, whose gene product MMACHC is a key enzyme in the cobalamin (vitamin B12) metabolic pathway. We show that THAP11F80L selectively affected promoter binding by THAP11, having more deleterious effects on a subset of THAP11 targets, and resulting in altered patterns of gene expression. In particular, THAP11F80L exhibited a strong effect on association with the MMACHC promoter and led to a decrease in MMACHC gene transcription, suggesting that the THAP11F80L mutation is directly responsible for the observed cobalamin disorder.
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subjects Abnormalities
Amino acids
Binding
Biological evolution
Biology and Life Sciences
Cell cycle
Cell growth
Cell Line
Cell proliferation
Cell Proliferation - genetics
Chromosomal Proteins, Non-Histone - genetics
Deoxyribonucleic acid
DNA
DNA-Binding Proteins - genetics
Evolutionary conservation
Gene expression
Gene Expression Regulation - genetics
Genomics
HEK293 Cells
Host Cell Factor C1 - genetics
Humans
Metabolic Networks and Pathways - genetics
Metabolic pathways
Metabolism
Mutation
Mutation - genetics
Neurodevelopmental disorders
Nutrient deficiency
Oxidoreductases - genetics
Phosphorylation
Physical Sciences
Promoter Regions, Genetic
Protein Binding - genetics
Proteins
Repressor Proteins - genetics
Research and Analysis Methods
Transcription
Vitamin B 12 - genetics
Vitamin B 12 - metabolism
Vitamin B 12 Deficiency - genetics
Vitamin B 12 Deficiency - metabolism
Vitamin B 12 Deficiency - pathology
Vitamin B12
Vitamin deficiency
Zinc
Zinc finger proteins
title THAP11F80L cobalamin disorder-associated mutation reveals normal and pathogenic THAP11 functions in gene expression and cell proliferation
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