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Biology subjects

Rannou, E.

Publications and source records attributed to Rannou, E..

2 recordsLinked to original sources

H3K4me3 recruits the chromatin remodeling DILL-PICKLE-PEPPERCORN complexes to promoters in plants

The plant CHD chromatin remodeler PICKLE (PKL) is a master regulator of cellular identity and differentiation, controlling developmental, hormonal and stress-response processes. Yet the molecular mechanisms underlying its function remain unclear. Here, we show that PKL forms three complexes, each composed of a protein of previously unknown function and one of three mutually exclusive novel DNAJ proteins that recruit HSP70-1. Simultaneous loss of all three DNAJs phenocopies the pkl mutant, indicating functional redundancy among PKL complexes. In vitro activity assays and cryo-electron microscopy reveal that PKL clamps nucleosomal DNA via its ATPase motor domain and recognizes H3K4me3 through its double chromodomain. Genome-wide profiling shows that H3K4me3 recognition positions PKL complexes at genic promoters to bidirectionally fine-tune gene expression. Together, these results provide structure-function insight into PKL recruitment and its control of developmental gene expression, and reveal a chaperone-coupled complex assembly that offers a broader perspective on how chaperone networks may support chromatin remodeling complexes across eukaryotes.

plant biology↗

USP7 deubiquitinase stabilizes FAN1 to support DNA crosslink repair and suppress CAG repeat expansion

Human FAN1 is a structure-specific endonuclease critical for the repair of DNA interstrand crosslinks (ICLs) and the excision of extrahelical CAG repeats-whose pathological expansion underlies Huntingtons disease (HD), a progressive and currently incurable neurodegenerative disorder. However, mechanisms of post-translational regulation of FAN1 are still largely unknown. Here, we identify the ubiquitin-specific protease 7 (USP7) as new interactor of FAN1. USP7 stabilizes FAN1 protein levels in a deubiquitination-dependent manner, preventing FAN1 from proteasomal degradation. Consequently, we demonstrate that USP7 depletion leads to reduced chromatin association of FAN1 and increased cellular hypersensitivity following ICL damage. Moreover, we find that loss of USP7 accelerates CAG repeat expansion in an HD cellular model. Collectively, our findings establish USP7 as a critical regulator of FAN1 activity in the maintenance of genome stability, highlighting potential therapeutic opportunities for cancer and HD.

molecular biology↗