2033 - REPLICATION STRESS MEDIATED CHECKPOINT ACTIVATION DURING PHYSIOLOGIC HSC EXPANSION IN THE FETAL LIVER LEADS TO HEMATOPOIETIC DEFICITS IN FANCONI ANEMIA

2019 ◽  
Vol 76 ◽  
pp. S50
Author(s):  
Peter Kurre ◽  
Makiko Mochizuki-Kashio ◽  
Young meYoo
Blood ◽  
2019 ◽  
Vol 134 (Supplement_1) ◽  
pp. 107-107
Author(s):  
Makiko Mochizuki-Kashio ◽  
Young Me Yoon ◽  
Theresa N Menna ◽  
Markus Grompe ◽  
Peter Kurre

Bone marrow (BM) failure is the principal source of morbidity and mortality in Fanconi Anemia (FA) patients. Recessively inherited germline mutations in one of 25 genes lead to deficits by in a pathway central to DNA crosslink repair. Functionally, FA proteins protect adult hematopoietic stem cells (HSC) from p53 mediated apoptosis elicited by alkylating agents, a range of experimental inflammatory cues or aldehyde exposure. However, these mechanisms do not seem to account for depleted hematopoietic stem and progenitor cell pools in very young FA patients, or the spontaneous, non-apoptotic and p53-independent fetal HSC deficits observed in murine models. Building on our previous observation of a quantitatively constrained fetal HSC pool in FA mice (Fancd2-/-), the current experiments reveal the specific developmental timeframe for the onset of stem cell deficits during HSC expansion in the fetal liver (FL). Cell cycle studies using an EdU/BrdU pulse chase protocol reveal delays in S-phase entry and progression at E13.5. Building on the role of FA proteins (FANCM, FANCI and FANCD2) in countering experimental replication stress (RS) in cell line models, we reasoned that rapid rates of proliferation required during expansion in the FL may similarly confer RS on the FA HSC pool. Experiments in E13.5 FL HSC confirmed the predicted increase in single stranded DNA and accumulation of nuclear replication associated protein (pRpa), along with activation of pChk1, a critical cell cycle checkpoint in cells under RS. For comparison, pChk1 in unperturbed adult cells was no different between Fancd2-/- and WT. The data are also consistent with gains in RAD51 and alkaline comet assays we previously published (Yoon et al., Stem Cell Reports 2016). The cell cycle regulator Cdkn1a (p21) is considered a canonical downstream component of the p53 response in adult FA HSC, but it also performs p53 independent functions in the RS response that coincide with its role in the nucleus. Here, we observed an increase in nuclear localization of p21 in Fancd2-/- FL HSC. TGF-β is a critical developmental morphogen that regulates p21 activity, and TGF-β inhibitors can partially reverse adult FA HSC function along with suppression of NHEJ mediated DNA repair. To test regulation of p21 in fetal HSC under RS, we first treated WT FL HSC with aphidicolin to experimentally simulate RS and found that SD208, a small molecule TGF-β-R1 inhibitor, completely rescued the p21 nuclear localization. We then went on to demonstrate that pharmacological inhibition of TGF-β signaling also reversed the nuclear p21 translocation in FA FL HSC (under physiological RS) and functionally rescued the primitive myeloid progenitor colony formation (CFU-GEMM) in vitro. Altogether, our data show that HSC deficits in FA first emerge in the fetal liver, where rapid fetal expansion causes RS that elicits pChk1 activation and nuclear p21 translocation, which restrain cell cycle progression and act as principal mechanisms limiting fetal HSC pool size in FA. Our experiments suggest a central and p53-independent role for p21 in fetal FA HSC regulation. Detailed knowledge of the physiological role of FA proteins in fetal phenotype HSC has the potential to lead to new therapies that delay or rescue hematopoietic failure in FA patients. Disclosures No relevant conflicts of interest to declare.


2018 ◽  
Author(s):  
Hyun-Min Kim ◽  
Sara E. Beese-Sims ◽  
Monica P. Colaiácovo

ABSTRACTThe histone demethylase LSD1 was originally discovered as removing methyl groups from di- and monomethylated histone H3 lysine 4 (H3K4me2/1), and several studies suggest it plays roles in meiosis as well as epigenetic sterility given that in its absence there is evidence of a progressive accumulation of H3K4me2 through generations. In addition to transgenerational sterility, growing evidence for the importance of histone methylation in the regulation of DNA damage repair has attracted more attention to the field in recent years. However, we are still far from understanding the mechanisms by which histone methylation is involved in DNA damage repair and only a few studies have been focused on the roles of histone demethylases in germline maintenance. Here, we show that the histone demethylase LSD1/CeSPR-5 is interacting with the Fanconi Anemia (FA) protein FANCM/CeFNCM-1 based on biochemical, cytological and genetic analyses. LSD1/CeSPR-5 is required for replication stress-induced S-phase checkpoint activation and its absence suppresses the embryonic lethality and larval arrest observed in fncm-1 mutants. FANCM/CeFNCM-1 re-localizes upon hydroxyurea exposure and co-localizes with FANCD2/CeFCD-2 and LSD1/CeSPR-5 suggesting coordination between this histone demethylase and FA components to resolve replication stress. Surprisingly, the FA pathway is required for H3K4me2 maintenance regardless of the presence of replication stress. Our study reveals a connection between Fanconi Anemia and epigenetic maintenance, therefore providing new mechanistic insight into the regulation of histone methylation in DNA repair.


2021 ◽  
Vol 22 (8) ◽  
pp. 3984
Author(s):  
Jessica J. R. Hudson ◽  
Ulrich Rass

The conserved nuclease-helicase DNA2 has been linked to mitochondrial myopathy, Seckel syndrome, and cancer. Across species, the protein is indispensable for cell proliferation. On the molecular level, DNA2 has been implicated in DNA double-strand break (DSB) repair, checkpoint activation, Okazaki fragment processing (OFP), and telomere homeostasis. More recently, a critical contribution of DNA2 to the replication stress response and recovery of stalled DNA replication forks (RFs) has emerged. Here, we review the available functional and phenotypic data and propose that the major cellular defects associated with DNA2 dysfunction, and the links that exist with human disease, can be rationalized through the fundamental importance of DNA2-dependent RF recovery to genome duplication. Being a crucial player at stalled RFs, DNA2 is a promising target for anti-cancer therapy aimed at eliminating cancer cells by replication-stress overload.


Genes ◽  
2019 ◽  
Vol 10 (2) ◽  
pp. 170 ◽  
Author(s):  
Arindam Datta ◽  
Robert M. Brosh Jr.

Fanconi anemia (FA) is a hereditary chromosomal instability disorder often displaying congenital abnormalities and characterized by a predisposition to progressive bone marrow failure (BMF) and cancer. Over the last 25 years since the discovery of the first linkage of genetic mutations to FA, its molecular genetic landscape has expanded tremendously as it became apparent that FA is a disease characterized by a defect in a specific DNA repair pathway responsible for the correction of covalent cross-links between the two complementary strands of the DNA double helix. This pathway has become increasingly complex, with the discovery of now over 20 FA-linked genes implicated in interstrand cross-link (ICL) repair. Moreover, gene products known to be involved in double-strand break (DSB) repair, mismatch repair (MMR), and nucleotide excision repair (NER) play roles in the ICL response and repair of associated DNA damage. While ICL repair is predominantly coupled with DNA replication, it also can occur in non-replicating cells. DNA damage accumulation and hematopoietic stem cell failure are thought to contribute to the increased inflammation and oxidative stress prevalent in FA. Adding to its confounding nature, certain FA gene products are also engaged in the response to replication stress, caused endogenously or by agents other than ICL-inducing drugs. In this review, we discuss the mechanistic aspects of the FA pathway and the molecular defects leading to elevated replication stress believed to underlie the cellular phenotypes and clinical features of FA.


Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 1334-1334
Author(s):  
Ashley N. Kamimae-Lanning ◽  
Tae H. Ha ◽  
Amy M. Skinner ◽  
Thomas B. Russell ◽  
Peter Kurre

Abstract Abstract 1334 Bone marrow failure is the most common cause of morbidity and mortality from Fanconi anemia (FA), a recessively inherited disorder resulting from mutations in one of 15 known genes that cooperate in a DNA repair pathway. The underlying etiology is thought to reflect an accelerated postnatal exhaustion of the hematopoietic stem and progenitor cell (HSPC) pool. However, laboratory evidence of compromised hematopoietic function in patients generally precedes symptoms of cytopenia, and several other mesodermal-derived organ systems show defects with prenatal onset, including the skeletal system, heart, kidneys, and others. Further, recent experimental evidence in human embryonic stem cell lines suggested that RNA interference-mediated knock-down of FANCD2 and FANCA impairs development of hematopoietic cells. The fetal liver provides a unique microenvironment for development of definitive hematopoietic function and serves as a site of massive HSPC expansion. However, neither the potential developmental onset of bone marrow failure or non-stem cell-autonomous contributions in FA have been systematically clarified to-date. We relied on a murine model of FA with a transgenic disruption of Fancc to test the hypothesis that hematopoietic failure for this disease may have developmental origins. Although spontaneous bone marrow failure does not occur in this FA mouse model, animals recapitulate impaired repopulating ability, characteristic cell cycle abnormalities, and impaired cytokine responses. To determine whether number and function of fetal liver (FL) HSPCs affect postnatal hematopoietic function in FA mice, we plated unfractionated cells from 14.5 days post coitum (dpc) FL in methylcellulose and undertook a chronologic assessment of postnatal bone marrow progenitor clonogenicity. These studies showed that, compared with wild-type (wt) littermates, Fancc−/− animals demonstrate a progressive deficiency in progenitor number and function that increases with age, suggesting that HSPC attrition is developmentally programmed. Fancc−/−fetal mice revealed a 10% reduction in body mass and 33% lower total liver cell count compared with wt littermates. Cytogenetic analysis shows Fancc−/−FL cells exhibit mitomycin-c hypersensitivity characteristic of FA, with increased chromosomal breakage and radial formation. Livers of 14.5±.5 dpc Fancc−/−fetuses contain approximately 43% fewer c-Kit+Sca-1+ progenitor-enriched cells, compared with wt littermates. Cell cycle status of fetal livers revealed a characteristically increased proportion of Fancc−/− fetal liver progenitor-enriched (c-Kit+ Sca-1+) cells in G2-M phase of cell cycle, compared to wt littermate liver. When plated in methylcellulose assays, Fancc−/−FL showed an approximately 20% reduction in progenitor frequency, compared to wt littermates, and plating in mitomycin-c resulted in outgrowth of fewer colonies. Further, studies to determine the relative in vivo repopulating cell frequency were performed using CD45-isotype mismatched, submyeloablatively irradiated (750 cGy) animals. Recipients receiving unfractionated 14.5±.5 dpc Fancc−/−liver cells showed a slight, but consistent reduction in peripheral blood chimerism at serial timepoints (1–5 months) and bone marrow chimerism at sacrifice. We also found a 21% reduction in total Fancc−/−clonogenic bone marrow progenitor frequency by methylcellulose assay in primary recipients, compared to wt-transplanted controls. In sum, these studies suggest a developmental origin of hematopoietic failure in FA, whereby the prenatal onset potentially contributes to disease progression. Results contrast with a conventional model of postnatal stem cell attrition and may impact the development of preemptive therapies for FA patients. Disclosures: No relevant conflicts of interest to declare.


2018 ◽  
Author(s):  
Emily Yun-chia Chang ◽  
James P. Wells ◽  
Shu-Huei Tsai ◽  
Yan Coulombe ◽  
Yujia A. Chan ◽  
...  

SUMMARYEctopic R-loop accumulation causes DNA replication stress and genome instability. To avoid these outcomes, cells possess a range of anti-R-loop mechanisms, including RNaseH that degrades the RNA moiety in R-loops. To comprehensively identify anti-R-loop mechanisms, we performed a genome-wide trigenic interaction screen in yeast lacking RNH1 and RNH201. We identified >100 genes critical for fitness in the absence of RNaseH, which were enriched for DNA replication fork maintenance factors such as RAD50. We show in yeast and human cells that R-loops accumulate during RAD50 depletion. In human cancer cell models, we find that RAD50 and its partners in the MRE11-RAD50-NBS1 complex regulate R-loop-associated DNA damage and replication stress. We show that a non-nucleolytic function of MRE11 is important for R-loop suppression via activation of PCNA-ubiquitination by RAD18 and recruiting anti-R-loop helicases in the Fanconi Anemia pathway. This work establishes a novel role for MRE11-RAD50-NBS1 in directing tolerance mechanisms of transcription-replication conflicts.


2020 ◽  
Author(s):  
Makiko Mochizuki-Kashio ◽  
Young me Yoon ◽  
Theresa Menna ◽  
Markus Grompe ◽  
Peter Kurre

ABSTRACTBone marrow failure (BMF) in Fanconi Anemia (FA) results from exhaustion of hematopoietic stem cells (HSC), but the physiological role of FA proteins in HSC pool integrity remains unknown. Herein we demonstrate that FANCD2, a core component of the FA pathway, counters replication stress during developmental HSC expansion in the fetal liver (FL). Rapid rates of proliferation and FANCD2 deficient result in excess RPA-coated ssDNA, and provoke pChk1 activation and Cdkn1a(p21) nuclear localization in fetal Fancd2−/− HSC. Checkpoint mediated S-phase delays induced by Cdkn1a(p21) are rescued by Tgf-β inhibition, but pChk1 activation is further aggravated. Our observations reveal the mechanism and physiological context by which FANCD2 safeguards HSC pool formation during development.


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