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Biology subjects

Cardoso da Silva, R.

Publications and source records attributed to Cardoso da Silva, R..

4 recordsLinked to original sources

A modular toolbox for in cellulo screening of small molecule inhibitors targeting chromatin reader domains

The dysregulation of bromodomain proteins, a family of "reader" proteins that recognize the critical post-translational modification of acylation, is implicated in diseases like cancer, making them important therapeutic targets. However, the development of specific small-molecule inhibitors is hindered by the lack of robust, high-throughput cellular assays to measure target engagement and off-target binding in living cells. To address this gap, we developed a modular platform of cell lines that stably express synthetic chromatin reader constructs, termed Acyl-eCRs, containing various bromodomains fused to eGFP. We demonstrate that these Acyl-eCRs recapitulate the same response to bromodomain inhibitors and PROTACs as endogenous proteins, allowing for the quantitative assessment of drug effects. We introduce two complementary flow cytometry-based assays to evaluate inhibitor-target engagement: a competitive binding assay leveraging PROTAC-induced degradation, and a nuclear retention assay that directly measures the displacement of bromodomains from chromatin. Our approach circumvents the need for laborious protein purification and in vitro characterization, providing a scalable and physiologically relevant method for assessing inhibitor potency and specificity. This platform represents a versatile tool for chemical biology, enabling the functional evaluation of chromatin-targeting drugs in a native cellular context.

molecular biology↗

Megabase-scale detachment of genome-nuclear lamina interactions is required for efficient repair of double stranded breaks

Lamina-associated domains (LADs) are large genomic regions that contact the nuclear lamina (NL). Double-strand breaks (DSBs) in LADs are known to be repaired more slowly and with different pathway preferences compared to other chromatin contexts. However, little is known about the chromatin changes at LADs that occur during DSB repair. Here, we report that a single DSB inside a LAD can cause detachment from the NL over several megabases. This profound spatial rearrangement is transient and reverts within 48 hours. Preventing this detachment slows down repair kinetics and renders repair incomplete, indicating that NL detachment is required for efficient repair of DSBs in LADs. NL detachment is dependent on {psi}H2AX and ATM, while it is antagonized by DNAPKcs activity. Remarkably, {psi}H2AX also antagonizes NL interactions at chromosome ends. Taken together, our data indicate that {psi}H2AX accumulation in LADs induces large scale rewiring of genome-NL interactions, allowing for efficient repair of DSBs.

cell biology↗

Probing DNA damage sites reveals context-dependent and novel DNA damage response factors

DNA damage is a constant threat to genome integrity and function. Diminished capacity for DNA repair is linked to many human diseases, therefore understanding the molecular pathways responding to DNA damage is key for developing novel therapies. Lack of unbiased probes to report DNA damage dynamics and the associated proteins in living cells and animals limit our current efforts to completely understand DNA repair processes. In this study we overcome these limitations by engineering protein probes containing the tandem-BRCT domain of MCPH1, which we show to have a specific affinity for the DNA-damage-associated histone mark {gamma}H2AX. We employ these probes to track DNA damage dynamics in living cells exposed to a panel of different genotoxic insults and to visualize programmed double strand breaks during gametogenesis in living animals. We further utilize the binding selectivity of our probe to tether TurboID biotin ligases to chromatin and identify the DNA damage-associated proteome via proximity ligation. By comparing five different DNA damaging agents, we reveal the proteome associated with specific lesions, and identify multiple novel proteins with potential implications in damage response and repair. Among these novel proteins, we characterize the ubiquitin ligase UBE3A, the methyl-binding and proteasome-recruiting protein L3MBTL3, and the spliceosomal factor U2SURP, as previously uncharacterized effectors of DNA damage response. These functional datasets reveal the DNA damage-dependent proteomes and reveal novel insights into DNA damage response.

molecular biology↗

Active transcription and Orc1 drive chromatin association of the AAA+ ATPase Pch2 during meiotic G2/prophase

Pch2 is an AAA+ protein that controls DNA break formation, recombination and checkpoint signaling during meiotic G2/prophase. Chromosomal association of Pch2 is linked to these processes, and several factors influence the association of Pch2 to euchromatin and the specialized chromatin of the ribosomal (r)DNA array of budding yeast. Here, we describe a comprehensive mapping of Pch2 localization across the budding yeast genome during meiotic G2/prophase. Within non-rDNA chromatin, Pch2 associates with a subset of actively RNA Polymerase II (RNAPII)-dependent transcribed genes. Chromatin immunoprecipitation (ChIP)- and microscopy-based analysis reveals that active transcription is required for chromosomal recruitment of Pch2. Similar to what was previously established for association of Pch2 with rDNA chromatin, we find that Orc1, a component of the Origin Recognition Complex (ORC), is required for the association of Pch2 to these euchromatic, transcribed regions, revealing a broad connection between chromosomal association of Pch2 and Orc1/ORC function. Ectopic mitotic expression is insufficient to drive recruitment of Pch2, despite the presence of active transcription and Orc1/ORC in mitotic cells. This suggests meiosis-specific licensing of Pch2 recruitment to sites of transcription, and accordingly, we find that the synaptonemal complex (SC) component Zip1 is required for the recruitment of Pch2 to transcription-associated binding regions. Interestingly, Pch2 binding patterns are distinct from meiotic axis enrichment sites (as defined by Red1, Hop1 and Rec8). This suggests that although Pch2 is linked to axis/SC-directed recruitment and function, the chromosomal population of Pch2 described here is not directly associated with chromosomal axis sites. In line with this observation, interfering with the pool of Pch2 that associates with active RNAPII transcription does not lead to effects on the chromosomal abundance of Hop1, a known axial client of Pch2. We thus report characteristics and dependencies for Pch2 recruitment to meiotic chromosomes, and reveal an unexpected link between Pch2, SC formation, chromatin and active transcription.

genetics↗