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1.
Nature ; 627(8002): 212-220, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38355801

ABSTRACT

Circular RNAs (circRNAs), which are increasingly being implicated in a variety of functions in normal and cancerous cells1-5, are formed by back-splicing of precursor mRNAs in the nucleus6-10. circRNAs are predominantly localized in the cytoplasm, indicating that they must be exported from the nucleus. Here we identify a pathway that is specific for the nuclear export of circular RNA. This pathway requires Ran-GTP, exportin-2 and IGF2BP1. Enhancing the nuclear Ran-GTP gradient by depletion or chemical inhibition of the major protein exporter CRM1 selectively increases the nuclear export of circRNAs, while reducing the nuclear Ran-GTP gradient selectively blocks circRNA export. Depletion or knockout of exportin-2 specifically inhibits nuclear export of circRNA. Analysis of nuclear circRNA-binding proteins reveals that interaction between IGF2BP1 and circRNA is enhanced by Ran-GTP. The formation of circRNA export complexes in the nucleus is promoted by Ran-GTP through its interactions with exportin-2, circRNA and IGF2BP1. Our findings demonstrate that adaptors such as IGF2BP1 that bind directly to circular RNAs recruit Ran-GTP and exportin-2 to export circRNAs in a mechanism that is analogous to protein export, rather than mRNA export.


Subject(s)
Active Transport, Cell Nucleus , Cell Nucleus , RNA Transport , RNA, Circular , Active Transport, Cell Nucleus/physiology , Cell Nucleus/metabolism , Guanosine Triphosphate/metabolism , Karyopherins/antagonists & inhibitors , Karyopherins/deficiency , Karyopherins/genetics , Karyopherins/metabolism , Nuclear Proteins/metabolism , ran GTP-Binding Protein/metabolism , RNA, Circular/metabolism , RNA Precursors/genetics , RNA Precursors/metabolism , RNA-Binding Proteins/metabolism , Exportin 1 Protein/metabolism , Protein Transport
2.
Mol Cell ; 81(11): 2278-2289, 2021 06 03.
Article in English | MEDLINE | ID: mdl-33984284

ABSTRACT

Agents that induce DNA damage can cure some cancers. However, the side effects of chemotherapy are severe because of the indiscriminate action of DNA-damaging agents on both healthy and cancerous cells. DNA repair pathway inhibition provides a less toxic and targeted alternative to chemotherapy. A compelling DNA repair target is the Fanconi anemia (FA) E3 ligase core complex due to its critical-and likely singular-role in the efficient removal of specific DNA lesions. FA pathway inactivation has been demonstrated to specifically kill some types of cancer cells without the addition of exogenous DNA damage, including cells that lack BRCA1, BRCA2, ATM, or functionally related genes. In this perspective, we discuss the genetic and biochemical evidence in support of the FA core complex as a compelling drug target for cancer therapy. In particular, we discuss the genetic, biochemical, and structural data that could rapidly advance our capacity to identify and implement the use of FA core complex inhibitors in the clinic.


Subject(s)
Ataxia Telangiectasia Mutated Proteins/genetics , BRCA1 Protein/genetics , BRCA2 Protein/genetics , DNA Repair/drug effects , Fanconi Anemia Complementation Group Proteins/genetics , Fanconi Anemia/drug therapy , Ubiquitin-Protein Ligases/genetics , Ataxia Telangiectasia Mutated Proteins/antagonists & inhibitors , Ataxia Telangiectasia Mutated Proteins/deficiency , BRCA1 Protein/deficiency , BRCA2 Protein/deficiency , DNA Damage , Enzyme Inhibitors/chemical synthesis , Enzyme Inhibitors/therapeutic use , Fanconi Anemia/genetics , Fanconi Anemia/metabolism , Fanconi Anemia/pathology , Fanconi Anemia Complementation Group Proteins/antagonists & inhibitors , Fanconi Anemia Complementation Group Proteins/metabolism , Gene Expression Regulation, Neoplastic , Humans , Molecular Targeted Therapy/methods , Morpholines/therapeutic use , Pyrones/therapeutic use , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism , Signal Transduction , Synthetic Lethal Mutations , Ubiquitin-Protein Ligases/antagonists & inhibitors , Ubiquitin-Protein Ligases/metabolism , Ubiquitins/antagonists & inhibitors , Ubiquitins/genetics , Ubiquitins/metabolism
3.
Mol Cell ; 80(6): 935-937, 2020 12 17.
Article in English | MEDLINE | ID: mdl-33338408

ABSTRACT

Two new studies in this issue of Molecular Cell demonstrate that bone marrow failure, in mice and humans, can be induced by formaldehyde generated either from defective metabolism (Dingler et al., 2020) or during the process of transcriptional reprogramming (Shen et al., 2020).


Subject(s)
Aldehydes , Bone Marrow Failure Disorders , Animals , Formaldehyde/toxicity , Humans , Mice
4.
Cell ; 142(1): 65-76, 2010 Jul 09.
Article in English | MEDLINE | ID: mdl-20603015

ABSTRACT

DNA interstrand crosslinks (ICLs) are highly toxic because they block the progression of replisomes. The Fanconi Anemia (FA) proteins, encoded by genes that are mutated in FA, are important for repair of ICLs. The FA core complex catalyzes the monoubiquitination of FANCD2, and this event is essential for several steps of ICL repair. However, how monoubiquitination of FANCD2 promotes ICL repair at the molecular level is unknown. Here, we describe a highly conserved protein, KIAA1018/MTMR15/FAN1, that interacts with, and is recruited to sites of DNA damage by, the monoubiquitinated form of FANCD2. FAN1 exhibits endonuclease activity toward 5' flaps and has 5' exonuclease activity, and these activities are mediated by an ancient VRR_nuc domain. Depletion of FAN1 from human cells causes hypersensitivity to ICLs, defects in ICL repair, and genome instability. These data at least partly explain how ubiquitination of FANCD2 promotes DNA repair.


Subject(s)
DNA Repair , Exodeoxyribonucleases/metabolism , Fanconi Anemia Complementation Group D2 Protein/metabolism , Amino Acid Sequence , Apoptosis Regulatory Proteins , BRCA2 Protein/metabolism , Cell Line , Cross-Linking Reagents/pharmacology , DNA Damage/drug effects , Endodeoxyribonucleases , Endonucleases/chemistry , Endonucleases/metabolism , Exodeoxyribonucleases/chemistry , Humans , Molecular Sequence Data , Multifunctional Enzymes , Protein Structure, Tertiary , Sequence Alignment , Ubiquitination
6.
Mol Cell ; 65(2): 247-259, 2017 Jan 19.
Article in English | MEDLINE | ID: mdl-27986371

ABSTRACT

Monoubiquitination and deubiquitination of FANCD2:FANCI heterodimer is central to DNA repair in a pathway that is defective in the cancer predisposition syndrome Fanconi anemia (FA). The "FA core complex" contains the RING-E3 ligase FANCL and seven other essential proteins that are mutated in various FA subtypes. Here, we purified recombinant FA core complex to reveal the function of these other proteins. The complex contains two spatially separate FANCL molecules that are dimerized by FANCB and FAAP100. FANCC and FANCE act as substrate receptors and restrict monoubiquitination to the FANCD2:FANCI heterodimer in only a DNA-bound form. FANCA and FANCG are dispensable for maximal in vitro ubiquitination. Finally, we show that the reversal of this reaction by the USP1:UAF1 deubiquitinase only occurs when DNA is disengaged. Our work reveals the mechanistic basis for temporal and spatial control of FANCD2:FANCI monoubiquitination that is critical for chemotherapy responses and prevention of Fanconi anemia.


Subject(s)
Fanconi Anemia Complementation Group D2 Protein/metabolism , Fanconi Anemia Complementation Group Proteins/metabolism , Fanconi Anemia/metabolism , Ubiquitination , Cell Line , DNA/genetics , DNA/metabolism , DNA-Binding Proteins/metabolism , Fanconi Anemia/genetics , Fanconi Anemia Complementation Group A Protein/metabolism , Fanconi Anemia Complementation Group C Protein/metabolism , Fanconi Anemia Complementation Group D2 Protein/genetics , Fanconi Anemia Complementation Group E Protein/metabolism , Fanconi Anemia Complementation Group G Protein/metabolism , Fanconi Anemia Complementation Group L Protein/metabolism , Fanconi Anemia Complementation Group Proteins/genetics , Humans , Inhibitor of Differentiation Protein 2/metabolism , Multiprotein Complexes , Nuclear Proteins/metabolism , Protein Binding , Protein Multimerization , Recombinant Proteins/metabolism , Substrate Specificity , Time Factors , Transfection , Ubiquitin-Specific Proteases/metabolism
7.
Proc Natl Acad Sci U S A ; 119(6)2022 02 08.
Article in English | MEDLINE | ID: mdl-35115399

ABSTRACT

The RecQ-like helicase BLM cooperates with topoisomerase IIIα, RMI1, and RMI2 in a heterotetrameric complex (the "Bloom syndrome complex") for dissolution of double Holliday junctions, key intermediates in homologous recombination. Mutations in any component of the Bloom syndrome complex can cause genome instability and a highly cancer-prone disorder called Bloom syndrome. Some heterozygous carriers are also predisposed to breast cancer. To understand how the activities of BLM helicase and topoisomerase IIIα are coupled, we purified the active four-subunit complex. Chemical cross-linking and mass spectrometry revealed a unique architecture that links the helicase and topoisomerase domains. Using biochemical experiments, we demonstrated dimerization mediated by the N terminus of BLM with a 2:2:2:2 stoichiometry within the Bloom syndrome complex. We identified mutations that independently abrogate dimerization or association of BLM with RMI1, and we show that both are dysfunctional for dissolution using in vitro assays and cause genome instability and synthetic lethal interactions with GEN1/MUS81 in cells. Truncated BLM can also inhibit the activity of full-length BLM in mixed dimers, suggesting a putative mechanism of dominant-negative action in carriers of BLM truncation alleles. Our results identify critical molecular determinants of Bloom syndrome complex assembly required for double Holliday junction dissolution and maintenance of genome stability.


Subject(s)
Bloom Syndrome/genetics , DNA, Cruciform/genetics , Genomic Instability/genetics , Alleles , Carrier Proteins/genetics , Cell Line , DNA Topoisomerases, Type I/genetics , Humans , Mutation/genetics , Protein Binding/genetics , RecQ Helicases/genetics , Recombination, Genetic/genetics , Solubility
8.
Mol Cell ; 60(3): 351-61, 2015 Nov 05.
Article in English | MEDLINE | ID: mdl-26593718

ABSTRACT

DNA replication stress can cause chromosomal instability and tumor progression. One key pathway that counteracts replication stress and promotes faithful DNA replication consists of the Fanconi anemia (FA) proteins. However, how these proteins limit replication stress remains largely elusive. Here we show that conflicts between replication and transcription activate the FA pathway. Inhibition of transcription or enzymatic degradation of transcription-associated R-loops (DNA:RNA hybrids) suppresses replication fork arrest and DNA damage occurring in the absence of a functional FA pathway. Furthermore, we show that simple aldehydes, known to cause leukemia in FA-deficient mice, induce DNA:RNA hybrids in FA-depleted cells. Finally, we demonstrate that the molecular mechanism by which the FA pathway limits R-loop accumulation requires FANCM translocase activity. Failure to activate a response to physiologically occurring DNA:RNA hybrids may critically contribute to the heightened cancer predisposition and bone marrow failure of individuals with mutated FA proteins.


Subject(s)
DNA Damage , DNA Helicases/metabolism , DNA Replication , Fanconi Anemia Complementation Group Proteins/metabolism , Genomic Instability , Nucleic Acid Heteroduplexes/metabolism , Animals , DNA Helicases/genetics , Fanconi Anemia Complementation Group Proteins/genetics , HeLa Cells , Humans , Leukemia/genetics , Leukemia/metabolism , Leukemia/pathology , Mice , Mice, Knockout , Mutation , Nucleic Acid Heteroduplexes/genetics
9.
Blood ; 135(18): 1588-1602, 2020 04 30.
Article in English | MEDLINE | ID: mdl-32106311

ABSTRACT

Fanconi anemia (FA) is the most common genetic cause of bone marrow failure and is caused by inherited pathogenic variants in any of 22 genes. Of these, only FANCB is X-linked. We describe a cohort of 19 children with FANCB variants, from 16 families of the International Fanconi Anemia Registry. Those with FANCB deletion or truncation demonstrate earlier-than-average onset of bone marrow failure and more severe congenital abnormalities compared with a large series of FA individuals in published reports. This reflects the indispensable role of FANCB protein in the enzymatic activation of FANCD2 monoubiquitination, an essential step in the repair of DNA interstrand crosslinks. For FANCB missense variants, more variable severity is associated with the extent of residual FANCD2 monoubiquitination activity. We used transcript analysis, genetic complementation, and biochemical reconstitution of FANCD2 monoubiquitination to determine the pathogenicity of each variant. Aberrant splicing and transcript destabilization were associated with 2 missense variants. Individuals carrying missense variants with drastically reduced FANCD2 monoubiquitination in biochemical and/or cell-based assays tended to show earlier onset of hematologic disease and shorter survival. Conversely, variants with near-normal FANCD2 monoubiquitination were associated with more favorable outcome. Our study reveals a genotype-phenotype correlation within the FA-B complementation group of FA, where severity is associated with level of residual FANCD2 monoubiquitination.


Subject(s)
Fanconi Anemia Complementation Group Proteins/genetics , Fanconi Anemia/diagnosis , Fanconi Anemia/genetics , Genetic Association Studies , Genetic Predisposition to Disease , Genetic Variation , Alleles , Alternative Splicing , Cell Line, Tumor , Fibroblasts/metabolism , Genetic Loci , Humans , Models, Biological , Mutation , Phenotype , RNA Stability , Severity of Illness Index , Ubiquitination
10.
PLoS Genet ; 15(7): e1008266, 2019 07.
Article in English | MEDLINE | ID: mdl-31276497

ABSTRACT

Rothmund-Thomson syndrome (RTS) is a rare autosomal recessive disorder characterized by skin rash (poikiloderma), skeletal dysplasia, small stature, juvenile cataracts, sparse or absent hair, and predisposition to specific malignancies such as osteosarcoma and hematological neoplasms. RTS is caused by germ-line mutations in RECQL4, a RecQ helicase family member. In vitro studies have identified functions for the ATP-dependent helicase of RECQL4. However, its specific role in vivo remains unclear. To determine the physiological requirement and the biological functions of Recql4 helicase activity, we generated mice with an ATP-binding-deficient knock-in mutation (Recql4K525A). Recql4K525A/K525A mice were strikingly normal in terms of embryonic development, body weight, hematopoiesis, B and T cell development, and physiological DNA damage repair. However, mice bearing two distinct truncating mutations Recql4G522Efs and Recql4R347*, that abolished not only the helicase but also the C-terminal domain, developed a profound bone marrow failure and decrease in survival similar to a Recql4 null allele. These results demonstrate that the ATP-dependent helicase activity of Recql4 is not essential for its physiological functions and that other domains might contribute to this phenotype. Future studies need to be performed to elucidate the complex interactions of RECQL4 domains and its contribution to the development of RTS.


Subject(s)
Adenosine Triphosphate/metabolism , RecQ Helicases/genetics , RecQ Helicases/metabolism , Rothmund-Thomson Syndrome/genetics , Animals , B-Lymphocytes/metabolism , Binding Sites , Body Weight , DNA Damage , Disease Models, Animal , Embryonic Development , Gene Knock-In Techniques , Hematopoiesis , Humans , Mice , Phenotype , Protein Domains , RecQ Helicases/chemistry , T-Lymphocytes/metabolism
11.
Blood ; 137(3): 286-288, 2021 01 21.
Article in English | MEDLINE | ID: mdl-33475742
13.
Mol Cell ; 36(6): 943-53, 2009 Dec 25.
Article in English | MEDLINE | ID: mdl-20064461

ABSTRACT

Fanconi Anemia (FA) and Bloom's Syndrome (BS) are genetic disorders characterized by overlapping phenotypes, including aberrant DNA repair and cancer predisposition. Here, we show that the FANCM gene product, FANCM protein, links FA and BS by acting as a protein anchor and bridge that targets key components of the FA and BS pathways to stalled replication forks, thus linking multiple components that are necessary for efficient DNA repair. Two highly conserved protein:protein interaction motifs in FANCM, designated MM1 and MM2, were identified. MM1 interacts with the FA core complex by binding to FANCF, whereas MM2 interacts with RM1 and topoisomerase IIIalpha, components of the BS complex. The MM1 and MM2 motifs were independently required to activate the FA and BS pathways. Moreover, a common phenotype of BS and FA cells-an elevated frequency of sister chromatid exchanges-was due to a loss of interaction of the two complexes through FANCM.


Subject(s)
Bloom Syndrome , DNA Helicases/metabolism , Fanconi Anemia , Genomic Instability , Amino Acid Sequence , Animals , Bloom Syndrome/genetics , Bloom Syndrome/metabolism , Cell Line , DNA Damage , DNA Helicases/genetics , DNA Repair , DNA Replication/physiology , DNA Replication/radiation effects , DNA Topoisomerases, Type I/genetics , DNA Topoisomerases, Type I/metabolism , Fanconi Anemia/genetics , Fanconi Anemia/metabolism , Humans , Multiprotein Complexes/genetics , Multiprotein Complexes/metabolism , Phenotype , Protein Structure, Tertiary , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism , RecQ Helicases/genetics , RecQ Helicases/metabolism , Sister Chromatid Exchange
14.
Mol Cell ; 32(3): 313-24, 2008 Nov 07.
Article in English | MEDLINE | ID: mdl-18995830

ABSTRACT

The Fanconi anemia (FA) pathway is implicated in DNA repair and cancer predisposition. Central to this pathway is the FA core complex, which is targeted to chromatin by FANCM and FAAP24 following replication stress. Here we show that FANCM and FAAP24 interact with the checkpoint protein HCLK2 independently of the FA core complex. In addition to defects in FA pathway activation, downregulation of FANCM or FAAP24 also compromises ATR/Chk1-mediated checkpoint signaling, leading to defective Chk1, p53, and FANCE phosphorylation; 53BP1 focus formation; and Cdc25A degradation. As a result, FANCM and FAAP24 deficiency results in increased endogenous DNA damage and a failure to efficiently invoke cell-cycle checkpoint responses. Moreover, we find that the DNA translocase activity of FANCM, which is dispensable for FA pathway activation, is required for its role in ATR/Chk1 signaling. Our data suggest that DNA damage recognition and remodeling activities of FANCM and FAAP24 cooperate with ATR/Chk1 to promote efficient activation of DNA damage checkpoints.


Subject(s)
DNA Damage , DNA Helicases/genetics , DNA Repair , DNA Replication , DNA-Binding Proteins/genetics , Fanconi Anemia/genetics , Cell Line , DNA Helicases/deficiency , DNA Helicases/isolation & purification , DNA Helicases/metabolism , DNA, Single-Stranded/genetics , DNA-Binding Proteins/deficiency , DNA-Binding Proteins/isolation & purification , DNA-Binding Proteins/metabolism , Fanconi Anemia/metabolism , Fanconi Anemia Complementation Group Proteins , Genome , HeLa Cells , Humans , Kidney , Mitosis , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/isolation & purification , Protein Serine-Threonine Kinases/metabolism , Protein-Tyrosine Kinases/genetics , Protein-Tyrosine Kinases/isolation & purification , Protein-Tyrosine Kinases/metabolism , S Phase , Signal Transduction/genetics , Signal Transduction/physiology
15.
Hum Mol Genet ; 21(9): 2005-16, 2012 May 01.
Article in English | MEDLINE | ID: mdl-22279085

ABSTRACT

FANCM is the most highly conserved protein within the Fanconi anaemia (FA) tumour suppressor pathway. However, although FANCM contains a helicase domain with translocase activity, this is not required for its role in activating the FA pathway. Instead, we show here that FANCM translocaseactivity is essential for promoting replication fork stability. We demonstrate that cells expressing translocase-defective FANCM show altered global replication dynamics due to increased accumulation of stalled forks that subsequently degenerate into DNA double-strand breaks, leading to ATM activation, CTBP-interacting protein (CTIP)-dependent end resection and homologous recombination repair. Accordingly, abrogation of ATM or CTIP function in FANCM-deficient cells results in decreased cell survival. We also found that FANCM translocase activity protects cells from accumulating 53BP1-OPT domains, which mark lesions resulting from problems arising during replication. Taken together, these data show that FANCM plays an essential role in maintaining chromosomal integrity by promoting the recovery of stalled replication forks and hence preventing tumourigenesis.


Subject(s)
DNA Helicases/metabolism , DNA Replication/physiology , Nucleotide Transport Proteins/metabolism , Animals , Ataxia Telangiectasia Mutated Proteins , Cell Cycle Proteins/metabolism , Cell Line , DNA Breaks, Double-Stranded , DNA Helicases/antagonists & inhibitors , DNA Helicases/genetics , DNA Repair , DNA Replication/genetics , DNA-Binding Proteins/metabolism , Fanconi Anemia/genetics , Fanconi Anemia/metabolism , Gene Knockout Techniques , HEK293 Cells , HeLa Cells , Homologous Recombination , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Models, Biological , Nucleotide Transport Proteins/antagonists & inhibitors , Nucleotide Transport Proteins/genetics , Protein Serine-Threonine Kinases/metabolism , RNA, Small Interfering/genetics , Tumor Suppressor Proteins/metabolism , Tumor Suppressor p53-Binding Protein 1
16.
DNA Repair (Amst) ; 140: 103701, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38878565

ABSTRACT

FANCM is a multifunctional DNA repair enzyme that acts as a sensor and coordinator of replication stress responses, especially interstrand crosslink (ICL) repair mediated by the Fanconi anaemia (FA) pathway. Its specialised ability to bind and remodel branched DNA structures enables diverse genome maintenance activities. Through ATP-powered "branchpoint translocation", FANCM can promote fork reversal, facilitate replication traverse of ICLs, resolve deleterious R-loop structures, and restrain recombination. These remodelling functions also support a role as sensor of perturbed replication, eliciting checkpoint signalling and recruitment of downstream repair factors like the Fanconi anaemia FANCI:FANCD2 complex. Accordingly, FANCM deficiency causes chromosome fragility and cancer susceptibility. Other recent advances link FANCM to roles in gene editing efficiency and meiotic recombination, along with emerging synthetic lethal relationships, and targeting opportunities in ALT-positive cancers. Here we review key properties of FANCM's biochemical activities, with a particular focus on branchpoint translocation as a distinguishing characteristic.


Subject(s)
DNA Repair , Humans , DNA Helicases/metabolism , DNA Helicases/genetics , Animals , DNA Replication , Fanconi Anemia Complementation Group Proteins/metabolism , Fanconi Anemia Complementation Group Proteins/genetics , Neoplasms/genetics , Neoplasms/metabolism , Neoplasms/enzymology , DNA/metabolism
17.
Nat Commun ; 15(1): 2210, 2024 Mar 12.
Article in English | MEDLINE | ID: mdl-38472229

ABSTRACT

The ATR-CHK1 DNA damage response pathway becomes activated by the exposure of RPA-coated single-stranded DNA (ssDNA) that forms as an intermediate during DNA damage and repair, and as a part of the replication stress response. Here, we identify ZNF827 as a component of the ATR-CHK1 kinase pathway. We demonstrate that ZNF827 is a ssDNA binding protein that associates with RPA through concurrent binding to ssDNA intermediates. These interactions are dependent on two clusters of C2H2 zinc finger motifs within ZNF827. We find that ZNF827 accumulates at stalled forks and DNA damage sites, where it activates ATR and promotes the engagement of homologous recombination-mediated DNA repair. Additionally, we demonstrate that ZNF827 depletion inhibits replication initiation and sensitizes cancer cells to the topoisomerase inhibitor topotecan, revealing ZNF827 as a therapeutic target within the DNA damage response pathway.


Subject(s)
Protein Kinases , Signal Transduction , Protein Kinases/metabolism , Phosphorylation , Replication Protein A/metabolism , Ataxia Telangiectasia Mutated Proteins/metabolism , DNA-Binding Proteins/metabolism , DNA Replication , DNA Damage , DNA, Single-Stranded , DNA Repair
18.
Cell Genom ; 3(8): 100349, 2023 Aug 09.
Article in English | MEDLINE | ID: mdl-37601968

ABSTRACT

Meiotic crossovers are required for accurate chromosome segregation and producing new allelic combinations. Meiotic crossover numbers are tightly regulated within a narrow range, despite an excess of initiating DNA double-strand breaks. Here, we reveal the tumor suppressor FANCM as a meiotic anti-crossover factor in mammals. We use unique large-scale crossover analyses with both single-gamete sequencing and pedigree-based bulk-sequencing datasets to identify a genome-wide increase in crossover frequencies in Fancm-deficient mice. Gametogenesis is heavily perturbed in Fancm loss-of-function mice, which is consistent with the reproductive defects reported in humans with biallelic FANCM mutations. A portion of the gametogenesis defects can be attributed to the cGAS-STING pathway after birth. Despite the gametogenesis phenotypes in Fancm mutants, both sexes are capable of producing offspring. We propose that the anti-crossover function and role in gametogenesis of Fancm are separable and will inform diagnostic pathways for human genomic instability disorders.

19.
Cell Rep ; 41(10): 111749, 2022 12 06.
Article in English | MEDLINE | ID: mdl-36476850

ABSTRACT

Co-transcriptional R loops arise from stalling of RNA polymerase, leading to the formation of stable DNA:RNA hybrids. Unresolved R loops promote genome instability but are counteracted by helicases and nucleases. Here, we show that branchpoint translocases are a third class of R-loop-displacing enzyme in vitro. In cells, deficiency in the Fanconi-anemia-associated branchpoint translocase FANCM causes R-loop accumulation, particularly after treatment with DNA:RNA-hybrid-stabilizing agents. This correlates with FANCM localization at R-loop-prone regions of the genome. Moreover, other branchpoint translocases associated with human disease, such as SMARCAL1 and ZRANB3, and those from lower organisms can also remove R loops in vitro. Branchpoint translocases are more potent than helicases in resolving R loops, indicating their evolutionary important role in R-loop suppression. In human cells, FANCM, SMARCAL1, and ZRANB3 depletion causes additive effects on R-loop accumulation and DNA damage. Our work reveals a mechanistic basis for R-loop displacement that is linked to genome stability.


Subject(s)
R-Loop Structures , RNA , Humans , DNA Helicases/genetics
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