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Navigating the base excision repair pathway in chromatin-focus on oxidative DNA damage.

Chromatin environment influences all nuclear processes, including DNA repair. Conversely, DNA damage itself triggers chromatin modifications and remodeling, which are essential for efficient DNA repair and its coordination with transcription, replication, and epigenetic regulation to preserve genome function. While chromatin dynamics associated with double-strand break repair and nucleotide excision repair are well understood, those accompanying base excision repair (BER) remain comparatively poorly characterized. Yet, BER is responsible for eliminating a wide spectrum of chemically diverse and non-helix-distorting base modifications, arising from both endogenous and exogenous sources, and is implicated in numerous pathologies. This review examines how BER operates in the context of chromatin, with a focus on its interplay with other repair factors, chromatin modifications, and remodeling. It also explores the diversity of BER substrates, the blurred distinction between base lesions and programmed modifications, and the intricate link between BER, transcriptional regulation, and epigenetic reprogramming. Together, these insights highlight BER's pivotal role in maintaining genome stability, shaping transcriptional programs, and preventing disease.

Excision Repair

Repair of DNA double-strand breaks after low radiation doses in childhood cancer survivors and matched cancer-free individuals.

DNA double-strand breaks (DSBs) which arise in G1- or G0-phase normal human cells are repaired by nonhomologous end-joining (NHEJ), a pathway which is important for cell survival but can cause mutations at the break sites. DSB repair by NHEJ is very efficient at high damage levels of 1 or more DSBs per cell, much less efficient at lower damage levels and almost absent if only ~0.05 DSBs per cell are induced. Here, we have analyzed the repair of high and low levels of radiation-induced DSBs in primary fibroblasts from 136 childhood cancer survivors, half of whom developed a second independent tumor later in life, and compared it to the response of primary fibroblasts from 68 individually matched cancer-free individuals. We measured the DSB repair efficiency by quantifying residual γH2AX foci with an automated scoring system at 24 h after irradiation with doses of 2.5, 5, 10, and 100 mGy, which induce about 0.0625, 0.125, 0.25, and 2.5 DSBs per cell, respectively. Although childhood cancer survivors and cancer-free individuals repaired DSBs after 10 and 100 mGy equally efficiently, their response to lower doses differed drastically. While repair in cancer-free individuals was inefficient after 2.5 mGy, childhood cancer survivors repaired DSBs after this dose as efficiently as after higher doses. These results indicate that most of the childhood cancer survivors analyzed here may harbor a genetic alteration that affects their response to low levels of DSBs. We suggest that such alterations may be either inherited or caused by previous tumor treatments.

Humans

Cohesin variants associated with human reproductive and developmental disorders.

The cohesin complex is an evolutionarily conserved multi-subunit protein assembly essential for sister chromatid cohesion, meiotic recombination, DNA double-strand break repair, and transcriptional regulation. Pathogenic variants in its subunits are implicated in a spectrum of reproductive and developmental disorders, including non-obstructive azoospermia, premature ovarian insufficiency, reproductive aging, aneuploidy, Cornelia de Lange syndrome, Roberts syndrome, cancer, and neuropsychiatric disease. Consequently, identifying cohesin mutations is a priority for precision diagnostics and personalized medicine. This review systematically summarizes the cohesin variants linked to these pathologies, exploring their molecular mechanisms and clinical manifestations. A deeper understanding of these variants is crucial not only for deciphering disease etiology but also for guiding the development of targeted diagnostic strategies and therapeutic interventions, ultimately improving patient management and outcomes.

Humans

Distinct functions of mammalian RAD51 paralogs in genome maintenance.

RAD51 paralogs (RAD51B, RAD51C, RAD51D, XRCC2, and XRCC3) are evolutionarily conserved essential proteins for cell survival and genome maintenance. RAD51 paralogs were originally identified to play a role in homologous recombination-mediated repair of DNA double-strand breaks (DSBs). However, investigations over the last decade have uncovered new roles of RAD51 paralogs beyond DSB repair in replication stress responses, including replication fork progression, fork stability, and its restart. Recent structural studies have not only uncovered the molecular architecture of previously known RAD51 paralog complexes but also identified novel paralog complex assemblies, providing mechanistic insights into their various genome-maintenance functions. Additionally, a role for RAD51 paralogs in resolving R-loops has been identified, and studies with cancer-associated variants suggest that RAD51 paralogs are potential determinants of cancer susceptibility and therapeutic responses. In the present review, we highlight the recently deciphered structures and novel functions of RAD51 paralog complexes and discuss the clinical and therapeutic implications.

Rad51 Recombinase

Base editing reversal of radiation sensitivity in NHEJ1 immunodeficiency.

Inherited defects of DNA double-stranded break (DSB) repair can result in radiosensitive/radiation-sensitive (RS) SCID (RS-SCID). We applied base editing to reverse NHEJ1 mutations in patient fibroblasts, exemplifying how this technology can help interrogate RS sequence variants.

Journal Article

Alternative End Joining Dependency Imposed by miR-21-5p Defines Radiation Resistance and a Targetable Vulnerability in Oral Squamous Cell Carcinoma.

PURPOSE: Clinical control of oral squamous cell carcinoma (OSCC) is constrained by heterogeneous radiosensitivity driven by divergent DNA damage response programs. The architecture and functional contribution of alternative end joining (Alt-EJ), an error-prone DNA double-strand break (DSB) repair pathway frequently upregulated in cancer, to radiation resistance remains poorly defined. METHODS AND MATERIALS: We profiled microRNAs in radioresistant OSCC clones and performed multiomic integration across an institutional OSCC cohort, an external OSCC cohort from the Gene Expression Omnibus, The Cancer Genome Atlas pan-cancer tumors, and cell lines characterized by Sanger Genomics of Drug Sensitivity in Cancer to infer DNA damage response characteristics, genomic scar features, drug sensitivity, and radiation therapy outcomes. DSB repair capacity and pathway usage were validated using functional assays, including Alt-EJ reporters and droplet digital PCR quantification of microhomology-mediated repair events. Core Alt-EJ effectors such as PARP1 and POLQ were perturbed genetically and pharmacologically. Therapeutic efficacy of PARP or POLQ inhibition with or without irradiation was tested in a syngeneic OSCC model, followed by bulk tumor transcriptomics to assess pathway engagement. RESULTS: Upregulation of miR-21-5p was not only selectively detected in radioresistant OSCC, but also modulated radiosensitivity in vitro and in vivo, and was associated with inferior postradiation therapy survival. A calibrated miR-21-5p target-gene signature tracked Alt-EJ activity across patient and mouse tumors and cancer cell lines, correlated with microhomology-mediated indels and broader genomic scarring, and predicted sensitivity to clinically available PARP inhibitors. Functionally, enforced miR-21-5p expression increased Alt-EJ usage and accelerated DSB repair, whereas inhibition or depletion of key Alt-EJ effectors reduced repair efficiency and restored radiosensitivity. In vivo, Alt-EJ targeting with PARP or POLQ inhibitor abrogated miR-21-5p-driven radiation resistance; transcriptomic profiling supported suppression of Alt-EJ programs as the operative mechanism. CONCLUSIONS: These findings establish a mechanistic link between miR-21-5p activity and Alt-EJ dependence, provide a clinically deployable signature to identify Alt-EJ-dependent OSCC, and support rational combinations of Alt-EJ targeting agents with radiation therapy to overcome treatment failure and advance precision radiation oncology.

MicroRNAs

Homologous recombination mutants cause differing lethality between h- and h+ Schizosaccharomyces pombe strains due to mat1 heterochromatin.

Homologous recombination (HR) is generally considered dispensable in yeast and vertebrates, yet mounting evidence indicates that its essentiality depends on cellular context. Here, we dissect the basis of this context dependency in Schizosaccharomyces pombe. In the homothallic h90 strain, regarded as wild type, mating-type switching (MTS) occurs every other cell division and requires HR to repair programmed double-strand breaks (DSBs) at the mat1 locus. We show that the widely used heterothallic h-S strain is likewise dependent on HR for viability. HR-deficient h-S mutants (rad51Δ, rad52Δ, or rad54Δ), still frequently employed in the literature, survive only when carrying secondary suppressor mutations that abolish mat1 DSB formation, such as smt-0, swi1Δ, or fml1Δ. In contrast, HR is dispensable in the h+N strain, where duplication of the mat2/3 region into mat1 introduces the cenH and REIII elements. These elements nucleate H3K9 methylation and heterochromatin spreading across the imprint site, blocking imprintosome recruitment and thereby preventing both imprinting and DSB formation. Disruption of this heterochromatin, via deletion of cenH or key chromatin modifiers, restores DSB formation in h+N cells and reinstates HR essentiality in the absence of the Clr4 methyltransferase. Collectively, our findings demonstrate that HR is indispensable for S. pombe survival due to its critical role in repairing mat1 DSBs, except under genetic or epigenetic conditions that suppress their formation.

Homologous Recombination

Transketolase promotes RNF20-dependent H2BK120 ubiquitination and DNA repair through a non-enzymatic adaptor function.

Efficient repair of DNA double-strand breaks (DSBs) is essential for maintaining genome stability and conferring tumor radioresistance. Histone H2B monoubiquitination at lysine 120 (H2BK120ub), catalyzed by the RNF20/RNF40 E3 ligase complex, promotes DSB repair by coordinating chromatin remodeling and repair factor recruitment. Here we identify transketolase (TKT) as a non-enzymatic regulator of DNA damage repair in colorectal cancer cells. TKT enhances DNA repair efficiency and radioresistance independently of its catalytic activity by facilitating RNF20-dependent H2BK120ub. Mechanistically, TKT interacts with both the RNF20/RNF40 complex and the FACT chromatin remodeling complex, functioning as a non-enzymatic adaptor that facilitates FACT-RNF20 association and RNF20 foci formation following DNA damage. Disruption of this TKT-FACT-RNF20 axis impairs RNF20 foci formation and H2BK120ub induction, increases DNA damage, and enhances radiosensitivity. These findings reveal a previously unrecognized non-enzymatic adaptor function of TKT in DNA damage repair and highlight a potential vulnerability in radioresistant tumors.

DNA repair

Mechanisms of Hexavalent Chromium-Induced Reproductive Toxicity: A Focus on the Ovary and Placenta.

Hexavalent Chromium (Cr(VI)) is a Group A carcinogen, mutagen, and teratogen. Cr(VI) has been used by more than 50 industries, and its contamination of drinking water is widespread across the United States (U.S.). Epidemiological data of women who lived in Willits, California, U.S., indicate that environmental exposure to Cr(VI) adversely affects pregnancy outcomes and the health of their immediate offspring, resulting in a low birth rate, pregnancy loss, and spontaneous abortion, and their children (F1 offspring) experienced birth defects. However, the molecular mechanisms behind Cr(VI)-induced reproductive and developmental toxicity are poorly understood. Cr(VI) enters cells through anion transporters and is rapidly reduced to Cr(III) by endogenous antioxidants within the cell. Cr(III) forms adducts with DNA, which can block DNA replication and transcription; abnormal repair can lead to DNA double-strand breaks, mutations, micronucleus formation, chromosomal abnormalities, and increased genomic instability. Cr(VI) induces oxidative stress via the Fenton reaction, generating free radicals, and depleting antioxidants, thereby promoting apoptosis via p53-dependent and independent pathways, resulting in follicular atresia and accelerated reproductive aging. Antioxidant supplementation with resveratrol, vitamin C, and edaravone mitigates Cr(VI) toxicity in the ovary. Cr(VI) disrupts meiosis in metaphase II oocytes by causing DNA strand breaks, altering F-actin dynamics, disturbing microtubules, and leading to chromosome missegregation. Gestational exposure to Cr(VI) also disrupts placental function through multiple mechanisms by targeting trophoblast lineages. The current review focuses on genotoxicity, oxidative stress, and other mechanisms by which Cr(VI) disrupts the female reproductive and endocrine systems, with particular emphasis on the ovary and placenta.

Hexavalent chromium

An Update on Inborn Errors of V(D)J Recombination.

V(D)J recombination is the fundamental process by which developing T and B lymphocytes generate diverse antigen receptors, enabling adaptive immunity. This tightly regulated program operates exclusively in lymphoid precursors during G1 phase and depends on the lymphocyte-specific RAG1-RAG2 recombinase to introduce programmed DNA double-strand breaks at recombination signal sequences, followed by repair through the classical nonhomologous end joining (c-NHEJ) pathway. Disruption of any step in this molecular choreography compromises antigen receptor diversity and underlies a spectrum of inborn errors of immunity (IEIs), ranging from severe combined immunodeficiency (SCID) to immune dysregulation with autoimmunity and granulomatous disease. In this review, we place disorders of V(D)J recombination within the broader framework of T-cell development, detailing the temporal waves of recombinase activity, chromatin accessibility, and DNA damage responses that guide thymocyte differentiation. We discuss pathogenic variants affecting the cleavage phase [RAG1, RAG2, and the recently identified RAG cochaperone NudC domain-containing 3 (NUDCD3)], end processing (ARTEMIS), ligation and repair (LIG4, XLF, XRCC4, PRKDC), and genome surveillance pathways (ATM, MRN complex, RNF168), highlighting genotype-phenotype correlations and mechanisms driving immune deficiency and dysregulation. We briefly review recent diagnostic advances, including newborn screening using T-cell receptor excision circles, repertoire sequencing, and functional assays, alongside current therapeutic strategies. Finally, we outline key unanswered questions and argue that continued integration of clinical observation with molecular discovery is essential to improve outcomes and deepen understanding of adaptive immune development.

Humans

RAD54L coordinates the nucleolar DNA damage response to maintain rDNA stability.

The nucleolus is organized around actively transcribed ribosomal RNA genes (rDNA), where high RNA polymerase I (Pol I) activity creates intrinsic susceptibility to replication stress and DNA damage. Here, we identify the DNA translocase RAD54L as a critical regulator of the nucleolar DNA damage response (nDDR) to rDNA double-strand breaks (DSBs) and replication stress. We show that RAD54L localizes to the nucleolus under basal conditions and is recruited to nucleolar caps following CRISPR-Cas9-induced rDNA-DSBs to promote repair. RAD54L loss results in persistent RAD51 foci, increased nucleolar γH2AX, and micronuclei formation, indicating defective resolution of rDNA lesions and genome instability. Under baseline conditions and replication stress induced by the Pol I transcription inhibitor CX-5461, RAD54L limits the accumulation of ssDNA and coordinates nDDR signaling. We further show that rDNA-DSBs induce RNA polymerase II-dependent RNA-DNA hybrids (R-loops) at intergenic rDNA regions, which facilitate nucleolar reorganization and cap formation and repair factor recruitment. Together, these findings establish RAD54L as a key regulator that coordinates replication stress response and rDNA repair, maintaining rDNA stability and genome integrity.

DNA, Ribosomal

SET domain bifurcated histone lysine methyltransferase 1 regulates histone modification and DNA damage response during zygotic genome activation in pigs.

SET domain bifurcated histone lysine methyltransferase 1 (SETDB1) is a key epigenetic regulator that catalyzes histone H3 lysine 9 trimethylation (H3K9me3), a mark essential for transcriptional repression and heterochromatin formation. Here, we investigated the role of SETDB1 during zygotic genome activation (ZGA) in porcine embryos. SETDB1 knockdown (KD) was induced by microinjecting double-stranded RNA (dsRNA), and its impact on early embryonic development was evaluated. SETDB1 KD decreased H3K9me3 levels, markedly increased H3K9ac, and downregulated ZGA-associated genes. These epigenetic alterations were accompanied by impaired cleavage, reduced blastocyst formation, and a lower total cell number. Upon etoposide-induced DNA double-strand breaks, SETDB1 KD embryos showed reduced expression of key DNA repair proteins, failed to efficiently restore DNA integrity, and exhibited increased apoptosis, indicating a compromised DNA damage response and repair process. SETDB1 KD also reduced HDAC3 expression, suggesting that SETDB1 may regulate HDAC3 to maintain histone acetylation balance. Consistently, HDAC3 inhibition increased H3K9ac, decreased H3K9me3, and reduced SETDB1 protein levels, supporting a reciprocal regulatory relationship. Together, these findings indicate that SETDB1 is important for porcine embryonic development by coordinating histone modifications and safeguarding genomic integrity during ZGA, and they suggest that the interplay between SETDB1 and HDAC3 constitutes a potentially important epigenetic axis for proper histone modification dynamics and developmental competence.

Animals

MRE11 suppresses germline mutagenesis at meiotic double-strand breaks in mice.

SPO11 forms hundreds of double-strand breaks (DSBs) to initiate meiotic recombination that is normally error-free. However, SPO11 activity can be mutagenic when one chromatid incurs closely spaced DSBs (double cuts), especially when DSBs are dysregulated by loss of the ATM kinase. De novo indels and structural variants can arise via end joining at double cuts within a single hotspot (microdeletions) or at adjacent hotspots separated by at least 30 kb, as we now show, sometimes accompanied by ectopic insertions of double-cut fragments. Here, we investigate how meiotic DSB end processing influences end joining. In MRE11-deficient mouse spermatocytes, which do not resect their DSBs, deletions at double cuts occur readily, with end-joining breakpoint profiles closely matching SPO11 DSB profiles. Microdeletions suggest that two DSBs can be as close as ∼21 bp. The tyrosyl-DNA phosphodiesterase TDP2 contributes to both deletion formation and ectopic insertion of double-cut fragments, presumably by removing SPO11 from DNA ends prior to joining. Finally, observations suggest a cooperative role for MRE11 and ATM in locally regulating DSB distributions. Our findings provide insight into the mechanism of de novo mutation origin, emphasizing the role of meiotic DSBs in shaping genome evolution.

Animals

Maternal DNA repair safeguards genome stability during the oocyte-to-embryo transition.

De novo mutations are a major source of genetic variation and disease risk, yet the developmental timing and mechanisms underlying their origin require further investigation. While germ cells have traditionally been considered the primary source of these mutations, increasing evidence suggests that a substantial fraction arise after fertilization. Here, we investigated the role of maternal DNA repair in shaping mutagenesis during this critical window by using a mouse model with oocyte-specific disruption of the homologous recombination factor RAD51 and a combination of cellular and molecular analyses. Loss of maternal RAD51 led to the accumulation of DNA double-strand breaks in oocytes without impairing their growth, meiotic maturation, or fertilization competence. In contrast, embryos derived from RAD51-deficient oocytes exhibited increased DNA damage and developmental delay during early cleavage stages. Whole-genome sequencing revealed a significant increase in de novo variants in offspring, the majority displaying intermediate allele frequencies consistent with post-zygotic mosaic mutations. These findings confirm that maternal DNA repair safeguards genome stability across the oocyte-to-embryo transition and identify early embryogenesis as a major source of de novo mutations, with implications for reproductive biology and the origins of genetic diseases.

DNA

A dual-dimensional CRISPR toolkit enables one-step high-efficiency multiplex genome editing in Komagataella phaffii.

Against the backdrop of green biomanufacturing, engineering methanol-utilizing Komagataella phaffii (K. phaffii) represents an effective strategy to expand the one carbon (C1) product profile and speed up the industrialization of C1-based bioeconomy. To address the technical challenges of low efficiency and cumbersome experimental procedures for multiplex gene editing and precise large-fragment integration during the reconstruction of complex metabolic pathways in K. phaffii, this study established a CRISPR toolkit - Efficient Multi-Gene Editing System 3.0 (EMGES 3.0) - which enabled one-step large-fragment integration coupled with multiplex gene knockout. EMGES 3.0 was constructed through the synergistic optimization of a repair-engineered chassis and an episomal CRISPR vector. For chassis engineering, five DNA repair modules: Δlig4 (DNA Ligase IV, non-homologous end joining end ligation), ppMRE11(The endogenous MRE11 gene from Pichia pastoris) overexpression (The Meiotic Recombination 11, DNA double-strand break end resection), Δrad9 (Radiation-Sensitive 9, DNA damage checkpoint regulation), Δmph1 (Mutator Phenotype Helicase 1, improvement of homologous recombinant strand extension), and PapRecT-PaSSB co-expression (stabilization of recombination intermediates) were integrated to generate the highly recombinogenic strain Y09. For vector engineering, cenARS was replaced by panARS and the endogenous promoter PGAP was employed to drive the double hammerhead ribozyme-single guide RNA-hepatitis delta virus ribozyme (double HH-sgRNA-HDV: dHgH)-mediated sgRNA expression, yielding the optimized vector Nov_pGAP_panARS_pLAT1_Cas9. These two features on K. phaffii together enhanced the EMGES 3.0 to a higher standard of transformation rate and editing efficiency. According to our results, EMGES 3.0 achieved dual-functional gene knockout efficiencies between 76.6% and 100%. For insertion of medium-long fragments (>4.5 kb), the efficiency achieved 93.3%. In addition, the one-step integration of ultra-long fragments (>16 kb) achieved 14.8%, which was reported for the first time. Furthermore, the efficiency of simultaneous long-fragment integration at three neutral loci reached 38.4% (>15 kb). We applied the system for one-step production of free fatty acids (FFAs, yield: 5.82 ∼ 7.30 mg/L/OD600) and resveratrol (yield: 1.14 ∼ 1.28 mg/L) using methanol as the sole carbon source. EMGES 3.0 provides a robust technical foundation for complex compounds biosynthesis and high-yield industrial strains, while also advancing K. phaffii as an industrial synthetic biology chassis for efficient C1 utilization.

CRISPR-Cas Systems

Dynamic chromatin tethering of MDC1 regulates genome stability.

DNA double-strand breaks (DSBs) are highly cytotoxic DNA lesions because they disrupt the connectivity of the DNA strand. Homologous recombination (HR) is a high-fidelity DSB repair pathway that copies the sequence spanning the break from a homologous template, but how DNA ends are held together during HR remains unclear. Here we demonstrate that the proline-serine-threonine (PST) repeat region of Mediator of DNA Damage Checkpoint 1 (MDC1) is a multivalent nucleosome-binding domain, sufficient to tether chromatin in multiple contexts. In interphase, the constitutive chromatin association of MDC1 is critical for RAD51 loading and efficient HR. In mitosis, PST-mediated chromatin binding is attenuated by phosphorylation, preventing aberrant chromosomal interactions while preserving DNA tethering by the MDC1-TOPBP1-CIP2A complex. In total, this work demonstrates that the PST repeat region of MDC1 is a multivalent nucleosome-binding domain with tunable affinity that supports DSB repair by HR and maintains genome stability during mitosis.

Genomic Instability

Linker Histone H1 Phosphorylation Promotes DNA Damage Repair during Replication Stress.

DNA replication fidelity depends on the integrity of the replication fork to prevent DNA damage and preserve genome stability. Disruptions to this process can trigger replication stress, leading to the accumulation of single-strand DNA (ssDNA) and double-strand breaks (DSBs), which drive mutagenesis and ultimately contribute to disease. While the roles of core histones and their post-translational modifications in this context have been more well-studied, far less is known about how linker histones regulate the replication stress response. Here, we demonstrate that the S-phase-phosphorylated form of the linker histone H1 (pH1) plays a key role in DNA damage repair at collapsed replication forks, both in vitro and in cells. Using phosphomimic and phosphonull H1 mutants, we show that phosphorylation enhances H1 assembly with ssDNA. Utilizing intein chemistry for the site-specific incorporation of a photocrosslinker to the C-terminus of H1, we map the direct interactors of H1. We identify phosphorylated H1 at replication forks, where it engages replication machinery and DNA damage response factors, including Histone PARylation Factor 1 (HPF1). We further demonstrate that ssDNA induces pH1-HPF1 interactions that promote liquid-like assemblies, correlating with reduced DNA damage and histone PARylation. Consistent with this role, reduction of total H1 increases cellular sensitivity to DNA damage, a phenotype that is partially rescued by reintroduction of H1.4. Together, these findings establish pH1 as a new regulator of DNA damage repair at collapsed replication forks through the controlled sequestration of repair factors.

Journal Article

Isolation of region-specific factors driving antibody class-switch recombination from the immunoglobulin heavy chain locus.

Activation-Induced Cytidine Deaminase (AID) induces DNA double-strand breaks (DSBs) at the switch (S) regions of the Immunoglobulin heavy chain (IgH) locus, which are essential for class switch recombination (CSR) and somatic hypermutation (SHM), key processes for effective antibody production. While AID activity is critical, its off-target effects, such as DSBs at the Myc locus, can cause chromosomal translocations like IgH-Myc fusions, contributing to B-cell lymphomas. The factors assembled on the IgH locus that help restrict AID-induced DSBs and subsequently CSR, remain unknown. To address this, we developed a method to isolate CSR-specific factors by inserting a 5×-GAL4-UAS sequence at the switch-mu (Sμ) region in CH12 cells. This engineered site enables recruitment of a 3-FLAG-GAL4 DNA-binding protein (3F-GAL4-DBD), allowing specific pulldown of proteins enriched at the Sμ region. Successful recovery of the known CSR regulator BRD2 from the Sμ region, along with enrichment of the DNA repair factors 53BP1 and gH2AX, validated this approach. Identification and characterization of IgH-enriched factors establish a validated methodological framework to facilitate future proteomic discovery of CSR regulators and highlight mechanisms that balance antibody diversification with genomic integrity in B cells.

Immunoglobulin Class Switching