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Journal Article

Characterization of a novel HDAC2 pathogenetic variant: a missing puzzle piece for chromatinopathies

Elisabetta Di Fede; Antonella Lettieri; Esi Taci; Silvia Castiglioni; Stefano Rebellato; Chiara Parodi; Elisa Adele Colombo; Paolo Grazioli; Federica Natacci; Paola Marchisio; Lidia Pezzani; Grazia Fazio; Donatella Milani; Valentina Massa; Cristina Gervasini
Human Genetics · Vol. 143, Issue 6 · pp. 747-759 · 2024

Abstract

Histone deacetylases (HDACs) are enzymes pivotal for histone modification (i.e. acetylation marks removal), chromatin accessibility and gene expression regulation. Class I HDACs (including HDAC1, 2, 3, 8) are ubiquitously expressed and they often participate in multi-molecular protein complexes. To date, three neurodevelopmental disorders caused by mutations in genes encoding for HDACs ( HDAC4 , HDAC6 and HDAC8 ) and thus belonging to the group of chromatinopathies, have been described. We performed whole exome sequencing (WES) for a patient (#249) clinically diagnosed with the chromatinopathy Rubinstein-Taybi syndrome (RSTS) but negative for mutations in RSTS genes, identifying a de novo frameshift variant in HDAC2 gene. We then investigated its molecular effects in lymphoblastoid cell lines (LCLs) derived from the patient compared to LCLs from healthy donors (HD). As the variant was predicted to be likely pathogenetic and to affect the sequence of nuclear localization signal, we performed immunocytochemistry and lysates fractionation, observing a nuclear mis-localization of HDAC2 compared to HD LCLs. In addition, HDAC2 total protein abundance resulted altered in patient, and we found that newly identified variant in HDAC2 affects also acetylation levels, with significant difference in acetylation pattern among patient #249, HD and RSTS cells and in expression of a known molecular target. Remarkably, RNA-seq performed on #249, HD and RSTS cells shows differentially expressed genes (DEGs) common to #249 and RSTS. Interestingly, our reported patient was clinically diagnosed with RSTS, a chromatinopathy which known causative genes encode for enzymes antagonizing HDACs. These results support the role of HDAC2 as causative gene for chromatinopathies, strengthening the genotype-phenotype correlations in this relevant group of disorders.

Bibliographic Information

JournalHuman Genetics
PublisherSpringer
Publication Date2024-06-01
Publication Year2024
Volume143
Issue6
Pages747-759
Document TypeJournal Article
Print ISSN0340-6717
eISSN1432-1203
DOI10.1007/s00439-024-02675-0

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NARA Access Coverage1964-01-01~Current
Journal Homepagehttps://www.springer.com/journal/439
Publisher PageOpen Publisher Page
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