Literature DB >> 24248351

Loss of caspase-2 augments lymphomagenesis and enhances genomic instability in Atm-deficient mice.

Joseph Puccini1, Sonia Shalini, Anne K Voss, Magtouf Gatei, Claire H Wilson, Devendra K Hiwase, Martin F Lavin, Loretta Dorstyn, Sharad Kumar.   

Abstract

Caspase-2, the most evolutionarily conserved member of the caspase family, has been shown to be involved in apoptosis induced by various stimuli. Our recent work indicates that caspase-2 has putative functions in tumor suppression and protection against cellular stress. As such, the loss of caspase-2 enhances lymphomagenesis in Eµ-Myc transgenic mice, and caspase-2 KO (Casp2(-/-)) mice show characteristics of premature aging. However, the extent and specificity of caspase-2 function in tumor suppression is currently unclear. To further investigate this, ataxia telangiectasia mutated KO (Atm(-/-)) mice, which develop spontaneous thymic lymphomas, were used to generate Atm(-/-)Casp2(-/-) mice. Initial characterization revealed that caspase-2 deficiency enhanced growth retardation and caused synthetic perinatal lethality in Atm(-/-) mice. A comparison of tumor susceptibility demonstrated that Atm(-/-)Casp2(-/-) mice developed tumors with a dramatically increased incidence compared with Atm(-/-) mice. Atm(-/-)Casp2(-/-) tumor cells displayed an increased proliferative capacity and extensive aneuploidy that coincided with elevated oxidative damage. Furthermore, splenic and thymic T cells derived from premalignant Atm(-/-)Casp2(-/-) mice also showed increased levels of aneuploidy. These observations suggest that the tumor suppressor activity of caspase-2 is linked to its function in the maintenance of genomic stability and suppression of oxidative damage. Given that ATM and caspase-2 are important components of the DNA damage and antioxidant defense systems, which are essential for the maintenance of genomic stability, these proteins may synergistically function in tumor suppression by regulating these processes.

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Year:  2013        PMID: 24248351      PMCID: PMC3856814          DOI: 10.1073/pnas.1311947110

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

1.  Identification of a set of genes with developmentally down-regulated expression in the mouse brain.

Authors:  S Kumar; Y Tomooka; M Noda
Journal:  Biochem Biophys Res Commun       Date:  1992-06-30       Impact factor: 3.575

2.  Synthetic lethality between mutation in Atm and DNA-PK(cs) during murine embryogenesis.

Authors:  K E Gurley; C J Kemp
Journal:  Curr Biol       Date:  2001-02-06       Impact factor: 10.834

3.  Early embryonic lethality in PARP-1 Atm double-mutant mice suggests a functional synergy in cell proliferation during development.

Authors:  J Ménisser-de Murcia; M Mark; O Wendling; A Wynshaw-Boris; G de Murcia
Journal:  Mol Cell Biol       Date:  2001-03       Impact factor: 4.272

4.  Abnormal rearrangement within the alpha/delta T-cell receptor locus in lymphomas from Atm-deficient mice.

Authors:  M Liyanage; Z Weaver; C Barlow; A Coleman; D G Pankratz; S Anderson; A Wynshaw-Boris; T Ried
Journal:  Blood       Date:  2000-09-01       Impact factor: 22.113

5.  Increased oxidative stress in ataxia telangiectasia evidenced by alterations in redox state of brains from Atm-deficient mice.

Authors:  A Kamsler; D Daily; A Hochman; N Stern; Y Shiloh; G Rotman; A Barzilai
Journal:  Cancer Res       Date:  2001-03-01       Impact factor: 12.701

6.  Caspase-2 is not required for thymocyte or neuronal apoptosis even though cleavage of caspase-2 is dependent on both Apaf-1 and caspase-9.

Authors:  L A O'Reilly; P Ekert; N Harvey; V Marsden; L Cullen; D L Vaux; G Hacker; C Magnusson; M Pakusch; F Cecconi; K Kuida; A Strasser; D C S Huang; S Kumar
Journal:  Cell Death Differ       Date:  2002-08       Impact factor: 15.828

7.  Ich-1, an Ice/ced-3-related gene, encodes both positive and negative regulators of programmed cell death.

Authors:  L Wang; M Miura; L Bergeron; H Zhu; J Yuan
Journal:  Cell       Date:  1994-09-09       Impact factor: 41.582

Review 8.  Oxidation of biological systems: oxidative stress phenomena, antioxidants, redox reactions, and methods for their quantification.

Authors:  Ron Kohen; Abraham Nyska
Journal:  Toxicol Pathol       Date:  2002 Nov-Dec       Impact factor: 1.902

Review 9.  Caspase-2 as a tumour suppressor.

Authors:  J Puccini; L Dorstyn; S Kumar
Journal:  Cell Death Differ       Date:  2013-06-28       Impact factor: 15.828

10.  Induction of apoptosis by the mouse Nedd2 gene, which encodes a protein similar to the product of the Caenorhabditis elegans cell death gene ced-3 and the mammalian IL-1 beta-converting enzyme.

Authors:  S Kumar; M Kinoshita; M Noda; N G Copeland; N A Jenkins
Journal:  Genes Dev       Date:  1994-07-15       Impact factor: 11.361

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  36 in total

1.  An Inhibitor of PIDDosome Formation.

Authors:  Ruth Thompson; Richa B Shah; Peter H Liu; Yogesh K Gupta; Kiyohiro Ando; Aneel K Aggarwal; Samuel Sidi
Journal:  Mol Cell       Date:  2015-04-30       Impact factor: 17.970

2.  NADPH oxidase 4 is a critical mediator in Ataxia telangiectasia disease.

Authors:  Urbain Weyemi; Christophe E Redon; Towqir Aziz; Rohini Choudhuri; Daisuke Maeda; Palak R Parekh; Michael Y Bonner; Jack L Arbiser; William M Bonner
Journal:  Proc Natl Acad Sci U S A       Date:  2015-02-02       Impact factor: 11.205

Review 3.  Old, new and emerging functions of caspases.

Authors:  S Shalini; L Dorstyn; S Dawar; S Kumar
Journal:  Cell Death Differ       Date:  2014-12-19       Impact factor: 15.828

4.  Caspase-2 protects against oxidative stress in vivo.

Authors:  S Shalini; J Puccini; C H Wilson; J Finnie; L Dorstyn; S Kumar
Journal:  Oncogene       Date:  2014-12-22       Impact factor: 9.867

5.  ATM may be a protective factor in endometrial carcinogenesis with the progesterone pathway.

Authors:  Weiwei Shan; Chao Wang; Zhenbo Zhang; Xuezhen Luo; Chengcheng Ning; Yinhua Yu; Youji Feng; Chao Gu; Xiaojun Chen
Journal:  Tumour Biol       Date:  2015-01-22

Review 6.  Targeting apoptotic caspases in cancer.

Authors:  Ashley Boice; Lisa Bouchier-Hayes
Journal:  Biochim Biophys Acta Mol Cell Res       Date:  2020-02-19       Impact factor: 4.739

7.  Caspase-2 deficiency accelerates chemically induced liver cancer in mice.

Authors:  S Shalini; A Nikolic; C H Wilson; J Puccini; N Sladojevic; J Finnie; L Dorstyn; S Kumar
Journal:  Cell Death Differ       Date:  2016-08-12       Impact factor: 15.828

Review 8.  Cell-Cycle Cross Talk with Caspases and Their Substrates.

Authors:  Patrick Connolly; Irmina Garcia-Carpio; Andreas Villunger
Journal:  Cold Spring Harb Perspect Biol       Date:  2020-06-01       Impact factor: 9.708

Review 9.  Molecular mechanisms of cell death: recommendations of the Nomenclature Committee on Cell Death 2018.

Authors:  Lorenzo Galluzzi; Ilio Vitale; Stuart A Aaronson; John M Abrams; Dieter Adam; Patrizia Agostinis; Emad S Alnemri; Lucia Altucci; Ivano Amelio; David W Andrews; Margherita Annicchiarico-Petruzzelli; Alexey V Antonov; Eli Arama; Eric H Baehrecke; Nickolai A Barlev; Nicolas G Bazan; Francesca Bernassola; Mathieu J M Bertrand; Katiuscia Bianchi; Mikhail V Blagosklonny; Klas Blomgren; Christoph Borner; Patricia Boya; Catherine Brenner; Michelangelo Campanella; Eleonora Candi; Didac Carmona-Gutierrez; Francesco Cecconi; Francis K-M Chan; Navdeep S Chandel; Emily H Cheng; Jerry E Chipuk; John A Cidlowski; Aaron Ciechanover; Gerald M Cohen; Marcus Conrad; Juan R Cubillos-Ruiz; Peter E Czabotar; Vincenzo D'Angiolella; Ted M Dawson; Valina L Dawson; Vincenzo De Laurenzi; Ruggero De Maria; Klaus-Michael Debatin; Ralph J DeBerardinis; Mohanish Deshmukh; Nicola Di Daniele; Francesco Di Virgilio; Vishva M Dixit; Scott J Dixon; Colin S Duckett; Brian D Dynlacht; Wafik S El-Deiry; John W Elrod; Gian Maria Fimia; Simone Fulda; Ana J García-Sáez; Abhishek D Garg; Carmen Garrido; Evripidis Gavathiotis; Pierre Golstein; Eyal Gottlieb; Douglas R Green; Lloyd A Greene; Hinrich Gronemeyer; Atan Gross; Gyorgy Hajnoczky; J Marie Hardwick; Isaac S Harris; Michael O Hengartner; Claudio Hetz; Hidenori Ichijo; Marja Jäättelä; Bertrand Joseph; Philipp J Jost; Philippe P Juin; William J Kaiser; Michael Karin; Thomas Kaufmann; Oliver Kepp; Adi Kimchi; Richard N Kitsis; Daniel J Klionsky; Richard A Knight; Sharad Kumar; Sam W Lee; John J Lemasters; Beth Levine; Andreas Linkermann; Stuart A Lipton; Richard A Lockshin; Carlos López-Otín; Scott W Lowe; Tom Luedde; Enrico Lugli; Marion MacFarlane; Frank Madeo; Michal Malewicz; Walter Malorni; Gwenola Manic; Jean-Christophe Marine; Seamus J Martin; Jean-Claude Martinou; Jan Paul Medema; Patrick Mehlen; Pascal Meier; Sonia Melino; Edward A Miao; Jeffery D Molkentin; Ute M Moll; Cristina Muñoz-Pinedo; Shigekazu Nagata; Gabriel Nuñez; Andrew Oberst; Moshe Oren; Michael Overholtzer; Michele Pagano; Theocharis Panaretakis; Manolis Pasparakis; Josef M Penninger; David M Pereira; Shazib Pervaiz; Marcus E Peter; Mauro Piacentini; Paolo Pinton; Jochen H M Prehn; Hamsa Puthalakath; Gabriel A Rabinovich; Markus Rehm; Rosario Rizzuto; Cecilia M P Rodrigues; David C Rubinsztein; Thomas Rudel; Kevin M Ryan; Emre Sayan; Luca Scorrano; Feng Shao; Yufang Shi; John Silke; Hans-Uwe Simon; Antonella Sistigu; Brent R Stockwell; Andreas Strasser; Gyorgy Szabadkai; Stephen W G Tait; Daolin Tang; Nektarios Tavernarakis; Andrew Thorburn; Yoshihide Tsujimoto; Boris Turk; Tom Vanden Berghe; Peter Vandenabeele; Matthew G Vander Heiden; Andreas Villunger; Herbert W Virgin; Karen H Vousden; Domagoj Vucic; Erwin F Wagner; Henning Walczak; David Wallach; Ying Wang; James A Wells; Will Wood; Junying Yuan; Zahra Zakeri; Boris Zhivotovsky; Laurence Zitvogel; Gerry Melino; Guido Kroemer
Journal:  Cell Death Differ       Date:  2018-01-23       Impact factor: 12.067

Review 10.  Acceleration or Brakes: Which Is Rational for Cell Cycle-Targeting Neuroblastoma Therapy?

Authors:  Kiyohiro Ando; Akira Nakagawara
Journal:  Biomolecules       Date:  2021-05-18
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