Literature DB >> 25501596

PARP-2 sustains erythropoiesis in mice by limiting replicative stress in erythroid progenitors.

J Farrés1, L Llacuna1, J Martin-Caballero2, C Martínez3, J J Lozano3, C Ampurdanés1, A J López-Contreras4, L Florensa5, J Navarro1, E Ottina6, F Dantzer7, V Schreiber7, A Villunger6, O Fernández-Capetillo4, J Yélamos8.   

Abstract

Erythropoiesis is a tightly regulated process in which multipotential hematopoietic stem cells produce mature red blood cells. Here we show that deletion of poly(ADP-ribose) polymerase-2 (PARP-2) in mice leads to chronic anemia at steady state, despite increased erythropoietin plasma levels, a phenomenon not observed in mice lacking PARP-1. Loss of PARP-2 causes shortened lifespan of erythrocytes and impaired differentiation of erythroid progenitors. In erythroblasts, PARP-2 deficiency triggers replicative stress, as indicated by the presence of micronuclei, the accumulation of γ-H2AX (phospho-histone H2AX) in S-phase cells and constitutive CHK1 and replication protein A phosphorylation. Transcriptome analyses revealed the activation of the p53-dependent DNA-damage response pathways in PARP-2-deficient cells, culminating in the upregulation of cell-cycle and cell death regulators, concomitant with G2/M arrest and apoptosis. Strikingly, while loss of the proapoptotic p53 target gene Puma restored hematocrit levels in the PARP-2-deficient mice, loss of the cell-cycle regulator and CDK inhibitor p21 leads to perinatal death by exacerbating impaired fetal liver erythropoiesis in PARP-2-deficient embryos. Although the anemia displayed by PARP-2-deficient mice is compatible with life, mice die rapidly when exposed to stress-induced enhanced hemolysis. Our results pinpoint an essential role for PARP-2 in erythropoiesis by limiting replicative stress that becomes essential in the absence of p21 and in the context of enhanced hemolysis, highlighting the potential effect that might arise from the design and use of PARP inhibitors that specifically inactivate PARP proteins.

Entities:  

Mesh:

Substances:

Year:  2014        PMID: 25501596      PMCID: PMC4568570          DOI: 10.1038/cdd.2014.202

Source DB:  PubMed          Journal:  Cell Death Differ        ISSN: 1350-9047            Impact factor:   15.828


  70 in total

1.  Global DNA demethylation during mouse erythropoiesis in vivo.

Authors:  Jeffrey R Shearstone; Ramona Pop; Christoph Bock; Patrick Boyle; Alexander Meissner; Merav Socolovsky
Journal:  Science       Date:  2011-11-11       Impact factor: 47.728

2.  Poly(ADP-ribose) polymerase 3 (PARP3), a newcomer in cellular response to DNA damage and mitotic progression.

Authors:  Christian Boehler; Laurent R Gauthier; Oliver Mortusewicz; Denis S Biard; Jean-Michel Saliou; Anne Bresson; Sarah Sanglier-Cianferani; Susan Smith; Valérie Schreiber; François Boussin; Françoise Dantzer
Journal:  Proc Natl Acad Sci U S A       Date:  2011-01-26       Impact factor: 11.205

3.  Anaemia in low-income and middle-income countries.

Authors:  Yarlini Balarajan; Usha Ramakrishnan; Emre Ozaltin; Anuraj H Shankar; S V Subramanian
Journal:  Lancet       Date:  2011-08-01       Impact factor: 79.321

4.  Topoisomerase I poisoning results in PARP-mediated replication fork reversal.

Authors:  Arnab Ray Chaudhuri; Yoshitami Hashimoto; Raquel Herrador; Kai J Neelsen; Daniele Fachinetti; Rodrigo Bermejo; Andrea Cocito; Vincenzo Costanzo; Massimo Lopes
Journal:  Nat Struct Mol Biol       Date:  2012-03-04       Impact factor: 15.369

5.  Poly(ADP-ribose) binding to Chk1 at stalled replication forks is required for S-phase checkpoint activation.

Authors:  WooKee Min; Christopher Bruhn; Paulius Grigaravicius; Zhong-Wei Zhou; Fu Li; Anja Krüger; Bénazir Siddeek; Karl-Otto Greulich; Oliver Popp; Chris Meisezahl; Cornelis F Calkhoven; Alexander Bürkle; Xingzhi Xu; Zhao-Qi Wang
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

Review 6.  Stress erythropoiesis: new signals and new stress progenitor cells.

Authors:  Robert F Paulson; Lei Shi; Dai-Chen Wu
Journal:  Curr Opin Hematol       Date:  2011-05       Impact factor: 3.284

7.  Gene set enrichment analysis: a knowledge-based approach for interpreting genome-wide expression profiles.

Authors:  Aravind Subramanian; Pablo Tamayo; Vamsi K Mootha; Sayan Mukherjee; Benjamin L Ebert; Michael A Gillette; Amanda Paulovich; Scott L Pomeroy; Todd R Golub; Eric S Lander; Jill P Mesirov
Journal:  Proc Natl Acad Sci U S A       Date:  2005-09-30       Impact factor: 11.205

8.  PARP-3 and APLF function together to accelerate nonhomologous end-joining.

Authors:  Stuart L Rulten; Anna E O Fisher; Isabelle Robert; Maria C Zuma; Michele Rouleau; Limei Ju; Guy Poirier; Bernardo Reina-San-Martin; Keith W Caldecott
Journal:  Mol Cell       Date:  2011-01-07       Impact factor: 17.970

9.  Cyclin D3 coordinates the cell cycle during differentiation to regulate erythrocyte size and number.

Authors:  Vijay G Sankaran; Leif S Ludwig; Ewa Sicinska; Jian Xu; Daniel E Bauer; Jennifer C Eng; Heide Christine Patterson; Ryan A Metcalf; Yasodha Natkunam; Stuart H Orkin; Piotr Sicinski; Eric S Lander; Harvey F Lodish
Journal:  Genes Dev       Date:  2012-08-28       Impact factor: 11.361

10.  Replication stress links structural and numerical cancer chromosomal instability.

Authors:  Rebecca A Burrell; Sarah E McClelland; David Endesfelder; Petra Groth; Marie-Christine Weller; Nadeem Shaikh; Enric Domingo; Nnennaya Kanu; Sally M Dewhurst; Eva Gronroos; Su Kit Chew; Andrew J Rowan; Arne Schenk; Michal Sheffer; Michael Howell; Maik Kschischo; Axel Behrens; Thomas Helleday; Jiri Bartek; Ian P Tomlinson; Charles Swanton
Journal:  Nature       Date:  2013-02-28       Impact factor: 49.962

View more
  32 in total

1.  Coordinated signals from PARP-1 and PARP-2 are required to establish a proper T cell immune response to breast tumors in mice.

Authors:  Lucia Moreno-Lama; Miguel A Galindo-Campos; Carlos Martínez; Laura Comerma; Ivonne Vazquez; María Vernet-Tomas; Coral Ampurdanés; Nura Lutfi; Juan Martin-Caballero; Françoise Dantzer; Miguel Quintela-Fandino; Syed O Ali; Jaime Jimeno; José Yélamos
Journal:  Oncogene       Date:  2020-01-30       Impact factor: 9.867

2.  Free energy calculation provides insight into the action mechanism of selective PARP-1 inhibitor.

Authors:  Ran Cao
Journal:  J Mol Model       Date:  2016-03-12       Impact factor: 1.810

Review 3.  Exploring and comparing adverse events between PARP inhibitors.

Authors:  Christopher J LaFargue; Graziela Z Dal Molin; Anil K Sood; Robert L Coleman
Journal:  Lancet Oncol       Date:  2019-01       Impact factor: 41.316

Review 4.  Understanding specific functions of PARP-2: new lessons for cancer therapy.

Authors:  Syed O Ali; Farhaan A Khan; Miguel A Galindo-Campos; José Yélamos
Journal:  Am J Cancer Res       Date:  2016-09-01       Impact factor: 6.166

5.  Pamiparib Induces Neurodevelopmental Defects and Cerebral Haemorrhage in Zebrafish Embryos via Inhibiting Notch Signalling.

Authors:  Dou Yang; Fasheng Liu; Mengqi Wan; Jieping Liu; Ling Huang; Chao Chen; Xue Li; Li Zhang; Xiaobing Ding; Xinjun Liao; Guanghua Xiong; Huiqiang Lu; Juhua Xiao; Zigang Cao
Journal:  Mol Neurobiol       Date:  2022-08-19       Impact factor: 5.682

6.  PARI Regulates Stalled Replication Fork Processing To Maintain Genome Stability upon Replication Stress in Mice.

Authors:  Ayako L Mochizuki; Ami Katanaya; Eri Hayashi; Mihoko Hosokawa; Emiko Moribe; Akira Motegi; Masamichi Ishiai; Minoru Takata; Gen Kondoh; Hitomi Watanabe; Norio Nakatsuji; Shinichiro Chuma
Journal:  Mol Cell Biol       Date:  2017-11-13       Impact factor: 4.272

Review 7.  Veliparib in ovarian cancer: a new synthetically lethal therapeutic approach.

Authors:  Stergios Boussios; Peeter Karihtala; Michele Moschetta; Charlotte Abson; Afroditi Karathanasi; Nikolaos Zakynthinakis-Kyriakou; Jake Edward Ryan; Matin Sheriff; Elie Rassy; Nicholas Pavlidis
Journal:  Invest New Drugs       Date:  2019-10-24       Impact factor: 3.850

Review 8.  Rucaparib in ovarian cancer: extending the use of PARP inhibitors in the recurrent disease.

Authors:  Graziela Z Dal Molin; Shannon N Westin; Robert L Coleman
Journal:  Future Oncol       Date:  2018-08-14       Impact factor: 3.404

9.  Coordinated signals from the DNA repair enzymes PARP-1 and PARP-2 promotes B-cell development and function.

Authors:  Ludovic Deriano; José Yélamos; Miguel A Galindo-Campos; Marie Bedora-Faure; Jordi Farrés; Chloé Lescale; Lucia Moreno-Lama; Carlos Martínez; Juan Martín-Caballero; Coral Ampurdanés; Pedro Aparicio; Françoise Dantzer; Andrea Cerutti
Journal:  Cell Death Differ       Date:  2019-04-17       Impact factor: 15.828

10.  Targeting the kinase activities of ATR and ATM exhibits antitumoral activity in mouse models of MLL-rearranged AML.

Authors:  Isabel Morgado-Palacin; Amanda Day; Matilde Murga; Vanesa Lafarga; Marta Elena Anton; Anthony Tubbs; Hua Tang Chen; Aysegul Ergan; Rhonda Anderson; Avinash Bhandoola; Kurt G Pike; Bernard Barlaam; Elaine Cadogan; Xi Wang; Andrew J Pierce; Chad Hubbard; Scott A Armstrong; André Nussenzweig; Oscar Fernandez-Capetillo
Journal:  Sci Signal       Date:  2016-09-13       Impact factor: 8.192

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.