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Published on: July 15, 2016
Compromised structure and function of HDAC8 mutants identified in Cornelia de Lange Syndrome spectrum disorders
Christophe Decroos1, Christine M Bowman, Joe-Ann S Moser
1Roy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania , Philadelphia, Pennsylvania 19104-6323 United States.
Insights
Cornelia de Lange Syndrome (CdLS) is linked to HDAC8 gene mutations. Researchers characterized five HDAC8 mutants, finding structural changes impacting function, but some activity was restored with an HDAC8 activator.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Cornelia de Lange Syndrome (CdLS) is a genetic disorder caused by mutations in genes regulating the cohesin complex.
- HDAC8, a key enzyme in cohesin recycling, has recently been found mutated in CdLS patients.
Purpose of the Study:
- To understand the molecular mechanisms underlying CdLS caused by HDAC8 mutations.
- To characterize the structural and functional impact of five specific HDAC8 missense mutations.
Main Methods:
- X-ray crystallography was used to determine the structures of five HDAC8 mutants (C153F, A188T, I243N, T311M, H334R).
- Enzyme kinetics and thermostability assays were performed to assess mutant protein function.
- In vitro rescue experiments using an HDAC8 activator were conducted.
Main Results:
- Each mutation induced local structural alterations, affecting enzyme catalysis and/or stability.
- The C153F mutation severely impaired catalytic activity by blocking product release.
- The H334R mutation affected distant structural regions, reducing thermostability despite near-normal activity.
- An HDAC8 activator partially or fully restored catalytic activity for all tested mutants in vitro.
Conclusions:
- HDAC8 mutations identified in CdLS patients disrupt enzyme structure and function.
- HDAC8 activators show potential as a therapeutic strategy for managing CdLS.
Abstract:
Cornelia de Lange Syndrome (CdLS) is a multiple congenital anomaly disorder resulting from mutations in genes that encode the core components of the cohesin complex, SMC1A, SMC3, and RAD21, or two of its regulatory proteins, NIPBL and HDAC8. HDAC8 is the human SMC3 lysine deacetylase required for cohesin recycling in the cell cycle. To date, 16 different missense mutations in HDAC8 have recently been identified in children diagnosed with CdLS. To understand the molecular effects of these mutations in causing CdLS and overlapping phenotypes, we have fully characterized the structure and function of five HDAC8 mutants: C153F, A188T, I243N, T311M, and H334R. X-ray crystal structures reveal that each mutation causes local structural changes that compromise catalysis and/or thermostability. For example, the C153F mutation triggers conformational changes that block acetate product release channels, resulting in only 2% residual catalytic activity. In contrast, the H334R mutation causes structural changes in a polypeptide loop distant from the active site and results in 91% residual activity, but the thermostability of this mutant is significantly compromised. Strikingly, the catalytic activity of these mutants can be partially or fully rescued in vitro by the HDAC8 activator N-(phenylcarbamothioyl)benzamide. These results suggest that HDAC8 activators might be useful leads in the search for new therapeutic strategies in managing CdLS.
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