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Marbach, G.

Publications and source records attributed to Marbach, G..

2 recordsLinked to original sources

Temporal proximity proteomics reveals ANP32A roles in replication fork progression and end joining

Acidic nuclear phosphoprotein 32 family member A (ANP32A) regulates chromatin and histone homeostasis, but its contribution to DNA replication and repair remains unclear. Time-resolved AirID proximity labeling with data-independent acquisition mass spectrometry revealed phased remodeling of the ANP32A proximal proteome during hydroxyurea-induced replication stress. Early stress enriched DNA replication and repair factors, including FEN1, XRCC5/Ku80, and XRCC6/Ku70, whereas prolonged exposure shifted the network towards checkpoint and cell-cycle regulators. Orthogonal proximity ligation assays revealed sustained ANP32A-FEN1 proximity and transiently increased ANP32A-XRCC5 proximity. ANP32A was dynamically recruited to {gamma}H2AX-marked lesions following laser microirradiation and showed increased proximity to {gamma}H2AX after hydroxyurea treatment. ANP32A loss impaired proliferation and G1/S progression and moderately reduced replication fork velocity. However, it did not promote nascent strand degradation at stalled forks or measurably alter homologous recombination reporter activity. In contrast, ANP32A loss reduced non-homologous end-joining reporter activity, consistent with its stress-induced proximity to Ku proteins. These findings identify ANP32A as a chromatin-associated factor supporting replication fork progression and end joining while dispensable for stalled-fork protection, linking ANP32A-dependent chromatin regulation to genome maintenance.

cell biology↗

CRISPR/Cas9-mediated knockout of the ubiquitin variant UbKEKS reveals a role in regulating nucleolar structures and composition.

Ubiquitination is a post-translational modification responsible for one of the most complex multi-layered communication and regulation system in the cell. Over the past decades, new ubiquitin variants and ubiquitin-like proteins arose to further enrich this mechanism. Among them, the recently discovered ubiquitin variant UbKEKS can specifically target several proteins and yet, functional consequences of this new modification remain unknown. The absence of UbKEKS induces accumulation of lamin A in the nucleoli, highlighting the need for deeper investigations about protein composition and functions regulation of this highly dynamic and membrane-less compartment. By using data independent acquisition mass spectrometry and microscopy, we show here that despite not impacting protein stability, UbKEKS is required to maintain normal nucleolar organization. The absence of UbKEKS increases nucleolis size and accentuate their circularity while disrupting dense fibrillar component and fibrillar center structures. Moreover, depletion of UbKEKS leads to distinct changes in nucleolar composition. Notably, lack of UbKEKS favors nucleolar sequestration of known apoptotic regulators such as IFI16 or p14ARF, resulting in an increase of apoptosis in UbKEKS knockout cells observed by flow cytometry and real-time cellular growth monitoring. Overall, the results presented here identifies the first cellular functions of the UbKEKS variant and lay the foundation stone to establish UbKEKS as a new universal layer of regulation in the already complex ubiquitination system.

cell biology↗