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Impact of homologous recombination repair gene mutations on survival in metastatic prostate cancer: A real-world analysis from an observational database.

The prognostic significance of homologous recombination repair gene (HRRg) mutations across the different metastatic prostate cancer stages remains unclear. This retrospective real-world study analyzed 162 metastatic castration-sensitive (mCSPC) and 126 castration-resistant (mCRPC) patients from the ProGène database, stratified by HRRg mutational status. Mutation prevalence was similar in both groups (16.0% in mCSPC vs. 13.5% in mCRPC). HRR-positive mCSPC patients had significantly shorter median overall survival (OS) (24.0months; 95% confidence interval [CI]: 16.0-41.0) compared to HRR-negative patients (45.0months; 95% CI: 34.0-69.0; P=0.04). Notably, BRCA2-mutated patients exhibited a reduced median OS of 24.0months (95% CI: 9.0-40.0; P=0.036) and a faster progression-free survival compared to HRR-negative patients (median PFS=8.0months; 95% CI: 0.0-14.0 vs. 17.0months; 95% CI: 12.0-20.0; P=0.006). These findings suggest that HRRg mutations - especially BRCA2 - are associated with worse prognosis in mCSPC, supporting the value of early genomic screening to guide personalized treatment strategies.

Humans

SelectRepair Knockout: Efficient PTC-Free Gene Knockout Through Selectable Homology-Directed DNA Repair.

Generating nonessential gene knockouts using CRISPR/Cas9 technology is becoming increasingly common in biological research. In a typical workflow, the Cas9 endonuclease is used to induce a DNA double-strand break that relies on nonhomologous end-joining (NHEJ) to introduce a premature termination codon (PTC) in the target gene. The goal is to isolate clones in which the gene produces PTC-containing mRNA transcripts that are degraded via nonsense-mediated mRNA decay (NMD) to cause loss of gene function. Unfortunately, this approach is laborious, and not all PTCs trigger NMD. More importantly, mounting evidence suggest that PTC mutations can also result in a transcriptional adaptation response that can mask the effects of a PTC-mediated gene knockout. In this chapter, we present a PTC-free gene knockout strategy that implements homology-directed DNA repair (HDR) with selectable markers to substantially reduce the complexity of the screening and validation of genome edits in cells containing more than one gene copy as in the case of the commonly used hypotriploid HEK293 cell line. We describe how to obtain a complete knockout of the Ligase IV protein (LIG4) and provide considerations for the application of this SelectRepair Knockout method to other genes.

Humans

Repair by genetic recombination in bacteria: overview.

DNA molecules that have been damaged in both strands at the same level are not subject to repair by excision but instead can be repaired through recombination with homologous molecules. Examples of two-strand damage include postreplication gaps opposite pyrimidine dimers, two-strand breaks produced by X-rays, and chemically induced interstrand cross-links. In ultraviolet-irradiated bacteria, the newly synthesized DNA is of length equal to the interdimer spacing. With continued incubation, this low-molecular-weight DNA is joined into high-molecular-weight chains (postreplication repair), a process associated with sister exchanges in bacteria. Recombination is initiated by pyrimidine dimers opposite postreplication gaps and by interstrand cross-links that have been cut by excision enzymes. The free ends at the resulting gaps presumably initiate the exchanges. Postreplication repair in Escherichia coli occurs in recB- AND RECC but is greatly slowed in recF- mutants. RecB and recC are the structural genes for exonuclease V, which digests two-stranded DNA by releasing oligonucleotides first from one strand and then from the other. The postreplication sister exchanges in ultra-violet-irradiated bacteria result in the distribution of pyrimidine dimers between parental and daughter strands, indicating that long exchanges involving both strands of each duplex occur. The R1 restriction endonuclease from E. COli has been used to cut the DNA of a bacterial drug-resistance transfer factor with one nuclease-sensitive site, and also DNA from the frog Xenopus enriched for ribosomal 18S and 28S genes. The fragments were annealed with the cut plasmid DNA and ligated, producing a new larger plasmid carrying the eukaryotic rDNA and able to infect and replicate in E. coli.

DNA Repair

Transgenerational chromosome repair in the asexual bdelloid rotifer Adineta vaga.

Homologous recombination is an essential DNA repair mechanism that also promotes chromosome pairing and ensures allele segregation during meiosis in sexual organisms. Here, we explore the dual function of homologous recombination in the bdelloid rotifer Adineta vaga, an asexual species known for its remarkable resilience to extreme genotoxic stresses. Genomic analyses reveal that A. vaga uses meiotic recombination to promote spontaneous crossovers and gene conversion during oogenesis and to repair the genome in response to DNA damage. The data also support a model of transgenerational DNA repair, termed break-induced homologous extension repair (BIHER), in which broken chromosomes are progressively restored over multiple generations. Our findings suggest that meiotic BIHER, coupled with the holocentric structure of chromosomes, may represent a key adaptation of life in extreme environments.

Animals

Cohesin promotes genomic stability by suppressing unequal sister chromatid exchange.

The protein complex cohesin plays critical roles in genomic stability by tethering together sister chromatids at their pericentric regions and along their arms from S phase until anaphase. Cohesin-mediated pericentric cohesion prevents aneuploidy by ensuring bipolar attachment of sister kinetochores. Arm cohesion prevents loss of heterozygosity by biasing DNA repair via recombination between sister chromatids rather than between homologs. Here, we investigate in yeast whether cohesin also enhances genomic stability by suppressing unequal sister chromatid exchange (USCE) between repetitive sequences. In wild-type cells, the USCE rate between repeats 4kb apart (proximal) was 15X higher than repeats 68kb apart (distal). The USCE between distal repeats but not proximal repeats increased 4 to 7-fold in mutants with altered cohesin subunits or auxiliary factors. The level of increased distal USCE corresponded with reduced arm cohesion, reduced density of cohesion arm sites, and higher sister loci mobility. Our results suggest that high density of arm cohesion sites confines repair of DNA damage to local sequences. When the density of cohesion sites decreases, sister chromatid sequences are less confined, thereby enhancing distal repeat interactions and USCE. Another set of mutations disrupted both DNA replication and cohesin loading at the replication fork during S phase. Remarkably, distal USCE in these mutants increased approximately 100-fold and was 6-fold more likely than proximal USCE. This preferential hyperdistal USCE can be explained by an aberrant sister-chromatid structure that is normally prevented by proper coupling of cohesin function and replication.

Journal Article

Homologous recombination defects and how they affect replication fork maintenance.

Homologous recombination (HR) repairs DNA double strand breaks (DSBs) and stabilizes replication forks (RFs). RAD51 is the recombinase for the HR pathway. To preserve genomic integrity, RAD51 forms a filament on the 3' end of a DSB and on a single-stranded DNA (ssDNA) gap. But unregulated HR results in undesirable chromosomal rearrangements. This review describes the multiple mechanisms that regulate HR with a focus on those mechanisms that promote and contain RAD51 filaments to limit chromosomal rearrangements. If any of these pathways break down and HR becomes unregulated then disease, primarily cancer, can result.

RAD51 filaments

Functions and mechanisms of BRCA1 in early embryonic development.

Breast Cancer Gene 1 (BRCA1) is a critical regulator of genome integrity whose dysfunction greatly increases lifetime risk of breast and ovarian cancers. While BRCA1 has been extensively studied in the contexts of adult biology and cancer, its diverse functions, including homologous recombination-mediated DNA repair, cell cycle checkpoint activation, protein ubiquitination, and transcriptional regulation, have many underexplored implications. In early embryonic development, the maternal-to-zygotic transition (MZT) and subsequent developmental processes place extraordinary demands on DNA replication fidelity, cell cycle regulation, transcriptional activation, and chromatin remodeling. These critical processes overlap strikingly with canonical functions of BRCA1, yet its function in early development is poorly characterized. In this review, we investigate BRCA1 conservation across species and connect its well-established functions to findings from developmental studies to assess its role in development. We highlight evidence of BRCA1 mitigating genome integrity loss from diverse sources, maintaining the proliferative activity needed for successful germ layer formation and early tissue morphogenesis, and regulating transcription and epigenetic modifications. Together, this synthesis supports a model where BRCA1 acts as a multi-functional and dynamic regulator of early embryogenesis. Building on this, we propose outstanding questions that could further illuminate these developmental roles. Characterization of BRCA1 in early development may not only provide important insight into the origin and progression of cancer susceptibility but may also elucidate fundamental mechanisms shaping early development.

BRCA1 Protein

Cohesin cofactor dosage sets the rate of loop extrusion, rendering genome folding tunable yet vulnerable to genetic disruption.

Genome folding is not static but emerges from dynamic processes that control transcription, replication, recombination, and repair. DNA loop extrusion by cohesin is central to genome organization, yet it remains unclear how cells can tune extrusion kinetics to achieve precise and functional chromosome folding patterns. Here, we show that extrusion rate acts as a tunable biophysical parameter in cells, quantitatively dialed by the respective dosage of the cohesin cofactors NIPBL and PDS5. Modulation of extrusion rate can offset changes in cohesin lifetime to buffer steady-state chromosome structure and transcriptional states, even in the face of abnormal extrusion dynamics. These findings provide a long-sought mechanistic basis for the genetic interactions between cohesin cofactors and for the molecular origin of haploinsufficiency in cohesinopathies, such as Cornelia de Lange syndrome.

Cell Cycle Proteins

Complete nucleotide sequence of an influenza virus haemagglutinin gene from cloned DNA.

A synthetic fowl plague virus (FPV) haemagglutinin gene has been cloned in bacteria and the complete sequence of the RNA gene deduced. It is 1,742 nucleotides long and the mRNA codes for 56.3 amino acids in an uninterrupted sequence. The nature of some of the important domains in the haemagglutinin has been established, and their structure is discussed in relation to their function. Extensive amino acid sequence homologies exist between FPV and human influenza haemagglutinins.

Amino Acid Sequence

Identification of the lexA gene product of Escherichia coli K-12.

The Escherichia coli lexA gene encodes a product important in induction of the recA gene and the expression of various cellular functions, including mutagenesis and prophage induction. As a start in a biochemical analysis of the lexA function, a family of lambda transducing phages carrying lexA+, lexA3, lexA3 spr-54, and lexA3 spr-55 alleles of the lexA gene was isolated and characterized. Polypeptides synthesized by these phages were examined. lambdalexA+ made a distinctive protein 24 kilodaltons (kd) in size. Lambda lexA3, which encodes an active mutant form of the protein dominant to wild-type function, made a slightly larger protein 25 kd in size. The latter protein was shown to be the mutant lexA3 gene product by the fact that lambda lexA3 spr-55, which carries an amber mutation in lexA3, made the 25-kd protein in hosts with an amber suppressor but not in a suppressor-free host. In hosts carrying a multicopy lexA3 plasmid, neither the 25-kd nor the 24-kd protein was made. This result suggests that lexA is autoregulated and that expression of the 24-kd protein made by lambda lexA+ is subject to the same controls. This and other evidence argues that the 24-kd protein is the product of the wild-type lexA+ gene.

Bacterial Proteins

Dosage sensitivity of the loop extrusion rate confers tunability to genome folding while creating vulnerability to genetic disruption.

Genome folding is not static, but emerges from dynamic processes that control transcription, replication, recombination, and repair. DNA loop extrusion by cohesin is central to genome organization, yet it remains unclear how cells can tune extrusion kinetics to achieve precise and functional chromosome folding patterns. Here we discover extrusion rate acts as a tunable biophysical parameter in cells, quantitatively dialed by the respective dosage of the cohesin cofactors NIPBL and PDS5. Modulation of extrusion rate can offset changes in cohesin lifetime to buffer steady-state chromosome structure and transcriptional states, even in the face of abnormal extrusion dynamics. These findings provide a long-sought mechanistic basis for the genetic interactions between cohesin cofactors and the molecular origin of haploinsufficiency in cohesinopathies, such as Cornelia de Lange syndrome.

Journal Article

Genetics.

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DNA Repair

The dynamics of RAD51 foci formation and elongation in living human cells.

Homologous recombination is a DNA repair process that requires binding of RAD51 to ssDNA at the break site. This facilitates the search for a homologous repair template on the sister chromatid, or on the homologous chromosome. How broken DNA ends loaded with RAD51 filaments are brought toward their repair template in the crowded 3D genome is currently poorly understood. This is largely due to a lack of tools to visualize homology search in living human cells. Here, we show that RAD51 and MND1, two proteins operating in homology search, become visible in long, extended structures several hours after double-stranded break formation. Using GFP-MND1 we capture these elongated foci in living human cells and reveal their highly dynamic nature as they traverse the nuclear space and gradually disassemble. We show that resolution of these structures depends on RAD54L, known for its role in RAD51-driven homology search. In addition, we find that loss of cohesin inhibits their resolution, in accordance with a role for cohesin in homology search. Thus, our data suggest that these elongated foci are visible intermediates of an active DNA repair process, and that GFP-MND1 is a powerful tool to study the dynamics of homology search in living human cells.

Humans

Repair of MMS-induced DNA double-strand breaks in haploid cells of Saccharomyces cerevisiae, which requires the presence of a duplicate genome.

The formation and repair of double-strand breaks induced in DNA by MMS was studied in haploid wild type and MMS-sensitive rad6 mutant strains of Saccharomyces cerevisiae with the use of the neutral and alkaline sucrose sedimentation technique. A similar decrease in average molecular weight of double-stranded DNA from 5--6 X 10(8) to 1--0.7 X 10(8) daltons was observed following treatment with 0.5% MMS in wild type and mutant strains. Incubation of cells after MMS treatment in a fresh drug-free growing medium resulted in repair of double-strand breaks in the wild type stain, but only in the exponential phase of growth. No repair of double-strand breaks was found when cells of the wild type strain were synchronized in G-1 phase by treatment with alpha factor, although DNA single-strand breaks were still efficiently repaired. Mutant rad6 which has a very low ability to repair MMS-induced single-strand breaks, did not repair double-strand breaks regardless of the phase of growth. These results suggest that (1) repair of double-strand breaks requires the ability for single-strand breaks repair, (2) rejoining of double-strand breaks requires the availability of two homologous DNA molecules, this strongly supports the recombinational model of DNA repair.

DNA Repair

The1H, 15N and13C backbone resonance assignments of an intrinsically disordered region (124-270) of BRCA1 associated RING domain 1 (BARD1).

The BRCA1-associated RING domain protein 1 (BARD1) is the obligate binding partner of the tumor suppressor breast cancer type 1 susceptibility protein (BRCA1) and plays a critical role in maintaining genome integrity. BARD1 contains structured N- and C-terminal domains that mediate heterodimerization with BRCA1, recognition of chromatin marks, and DNA repair functions. Approximately 40% of BARD1 is intrinsically disordered, particularly in the central region of the protein. This intrinsically disordered region (IDR) engages DNA and key repair proteins such as RAD51, BLM, and WRN. DNA binding through the BARD1 IDR facilitates H2A ubiquitination by the BRCA1-BARD1 complex and is essential for stimulating long-range DNA end resection during homologous recombination, underscoring its role in accurate DNA repair. Despite these insights, structural characterization of the IDR remains limited, leaving questions regarding its functional interplay with BRCA1 and other repair factors unresolved. Here, we report the backbone resonance assignments of a BARD1 IDR construct spanning residues 124-270, providing a foundation for future studies aimed at understanding how the disordered regions of BARD1 interact with various binding partners, and cooperates with itself and BRCA1 to regulate genome stability.

Nuclear Magnetic Resonance, Biomolecular

Navigating nuclear space: How Rad51 filaments promote long-range homology search during homologous recombination - Lessons from budding yeast.

DNA double-strand breaks (DSBs) threaten genomic integrity, with erroneous repair leading to chromosomal rearrangements and pathologies. In eukaryotes, DSBs are primarily repaired via non-homologous end-joining (NHEJ) or homologous recombination (HR). HR restores genetic information by using an undamaged homologous sequence as a template, a process dependent on Rad51-mediated homology search. This review synthesizes recent advances in our understanding of HR, with a focus on the homology search process in mitotic cells, primarily using Saccharomyces cerevisiae as a model organism. We explore factors that limit recombination efficiency and discuss how Rad51 filament dynamics overcome spatial and temporal challenges imposed by nuclear architecture and chromatin dynamics, to ensure efficient HR. Key insights include the dynamic behavior of Rad51 filaments, which undergo cycles of compaction and extension, thereby optimizing exploration of the nuclear volume and increasing the likelihood of encountering distant homologous sequences. The interplay between long-range resection, filament elongation, and nuclear constraints further shapes the search process, balancing the need for extensive exploration with the risks of excessive DNA degradation and ectopic recombination. Collectively, these findings support an integrated model in which the efficiency and accuracy of homologous recombination are governed by regulated Rad51 filament dynamics and the constraints imposed by nuclear architecture.

Rad51 Recombinase

Properties of the nonlethal recombinational repair x and y mutants of bacteriophage T4. II. DNA synthesis.

The bacteriophage T4 recombination-deficient mutants x and y exhibited decreased rates of DNA synthesis as compared to wild-type T4. Mutant-induced DNA synthesis was more sensitive to mitomycin C than was wild-type synthesis. However, DNA synthesis in mutant- and wild-type-infected cells exhibited the same sensitivity to UV light and X-irradiation. When high-specific-activity label was administered at various times postinfection, mutant DNA synthesis resembled that of wild type for 12 min. after which time mutant-induced incorporation was greatly decreased and sensitive to mitomycin C as compared to that of the wild type. Rifampin and chloramphenicol studies indicated that the gene products necessary for synthesis measured at 15 min postinfection, including those of x+ and y+ were transcribed within 2 min and translated within 8 min postinfection. Administration of chloramphenicol to mutant x- or mutant y-infected cells exactly 8 min postinfection, however, allowed for increased synthesis at 15 min that was sensitive to mitomycin C. Cells coinfected with T4+ and T4x or T4x and T4y retained a reduced mutant-type synthesis, whereas cells coinfected with T4+ and T4y exhibited a synthesis more closely resembling that of wild type.

Chloramphenicol