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Bodner, J.

Publications and source records attributed to Bodner, J..

2 recordsLinked to original sources

Replication stress alters CENP-A nucleosome stability during S phase

1.The maintenance of centromere identity is essential for the proper segregation of chromosomes during cell division. Centromere identity is epigenetically specified by centromeric histone H3 variant CENP-A, and its retention during DNA replication is facilitated by HJURP chaperone. Replication stress disrupts replication fork progression and can negatively influence the interactions between histone chaperone network necessary for retention and deposition of parental and new histones, respectively. In this study we investigate the role of replication stress response on centromere inheritance. We define changes in centromere-associated proteins that govern stability of centromeric and canonical nucleosomes through proximity labeling coupled with affinity purification mass spectrometry. We identified that under replication stress, CENP-A-containing chromatin strongly enriches for SWI/SNF chromatin remodeling proteins ATRX. We show that depletion of ATRX and its associated histone H3.3 chaperone DAXX results in the loss CENP-A retention in S-phase and loss persists into the subsequent cell cycle. Altogether our findings provide insight into how replication stress negatively influences centromeric chromatin instability and delineates a function of DAXX-ATRX complex in maintaining centromere inheritance during DNA replication.

biochemistry↗

Distinct Control of histone H1 expression within the Histone Locus body by CRAMP1

Proper histone gene expression is critical to cell viability and maintaining genomic integrity. Multiple histone genes organized into three genomic loci encode for replication coupled core and linker histones. Histone gene expression and transcript processing is orchestrated in the histone locus body (HLB) within the nucleus. We identified human CRAMP1 as a selective regulator of linker histone H1 expression. CRAMP1 is recruited to the HLB in RPE1hTERT cells. Affinity purification shows that CRAMP1 physically associates the HLB component GON4L (a.k.a. YARP). We show that the PAH domains of GON4L interact with CRAMP1. CRAMP1 disruption results in a loss of histone H1 expression and a reduction in H1 protein. CRAMP1 occupies the unmethylated promoters of the replication coupled linker histone genes that reside within the histone locus body, and the replication independent histone H1 loci, which reside in a region of the genome without other histone genes. Together these data identify CRAMP1 as a novel and selective regulator of histone H1 gene expression.

genomics↗