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Zibat, A.

Publications and source records attributed to Zibat, A..

2 recordsLinked to original sources

BTRR complex deficiency is a driver for genomic instability in Bloom syndrome

Biallelic loss-of-function (LoF) variants in the BTRR complex members BLM, TOP3A, RMI1, and RMI2 cause Bloom syndrome (BSyn). The BTRR complex mainly acts on DNA replication and DNA repair processes, and dysfunction of this complex underlies the increased genomic instability and cancer predisposition associated with the BSyn phenotype. Here, we report CRISPR/Cas9-based genome-edited isogenic induced pluripotent stem cell (iPSC) models with compound heterozygous LoF variants in BLM, TOP3A, and RMI1. The cellular phenotype of all three BTRR-deficient iPSC lines included chromosome segregation defects, increased sister chromatid exchange rates, and impaired DNA single-strand template repair. Using single-cell whole genome sequencing, we showed that BTRR complex deficiency causes increased genome copy number alterations (CNAs) and, therefore, is a driver for genomic instability. CNA load was further induced by applying replication stress, and we observed that BTRRKO iPSCs acquired fewer de novo CNA events compared to wild-type cells, suggesting a possible selection loss against cells with high levels of DNA damage. Importantly, stress-induced and non-stress-induced CNAs in single-cell genomes were not stochastically distributed throughout the genome, but instead enriched at fragile sites. This finding might offer an opportunity for the development of novel NGS-based approaches to measure rates of genomic instability in disease conditions.

genetics↗

Single-cell transcription profiles in Bloom syndrome patients link BLM deficiency with altered condensin complex expression signatures

Bloom syndrome (BS) is an autosomal recessive disease clinically characterized by primary microcephaly, growth deficiency, immunodeficiency, and predisposition to cancer. It is mainly caused by biallelic loss-of-function mutations in the BLM gene, which encodes the BLM helicase, acting in DNA replication and repair processes. Here, we describe the gene expression profiles of three BS fibroblast cell lines harboring causative, biallelic truncating mutations obtained by single-cell (sc) transcriptome analysis. We compared the scRNA transcription profiles from three BS patient cell lines to two age-matched wild-type controls and observed specific deregulation of gene sets related to the molecular processes characteristically affected in BS, such as mitosis, chromosome segregation, cell cycle regulation, and genomic instability. We also found specific upregulation of genes of the Fanconi anemia pathway, in particular FANCM, FANCD2, and FANCI, which encode known interaction partners of BLM. The significant deregulation of genes associated with inherited forms of primary microcephaly observed in our study might explain in part the molecular pathogenesis of microcephaly in BS, one of the main clinical characteristics in patients. Finally, our data provide first evidence of a novel link between BLM dysfunction and transcriptional changes in condensin complex I and II genes. Overall, our study provides novel insights into gene expression profiles in BS on a single-cell level, linking specific genes and pathways to BLM dysfunction.

genetics↗