Literature DB >> 27932417

Molecular Pathways: The Necrosome-A Target for Cancer Therapy.

Lena Seifert1, George Miller2,3.   

Abstract

Necroptosis is a caspase-8-independent cell death that requires coactivation of receptor-interacting protein 1 (RIP1) and receptor-interacting protein 3 (RIP3) kinases. The necrosome is a complex consisting of RIP1, RIP3, and Fas-associated protein with death domain leading to activation of the pseudokinase mixed lineage kinase like followed by a rapid plasma membrane rupture and inflammatory response through the release of damage-associated molecular patterns and cytokines. The necrosome has been shown to be relevant in multiple tumor types, including pancreatic adenocarcinoma, melanoma, and several hematologic malignancies. Preclinical data suggest that targeting this complex can have differential impact on tumor progression and that the effect of necroptosis on oncogenesis is cell-type and context dependent. The emerging data suggest that targeting the necrosome may lead to immunogenic reprogramming in the tumor microenvironment in multiple tumors and that combining therapies targeting the necrosome with either conventional chemotherapy or immunotherapy may have beneficial effects. Thus, understanding the interplay of necroptotic cell death, transformed cells, and the immune system may enable the development of novel therapeutic approaches. Clin Cancer Res; 23(5); 1132-6. ©2016 AACR. ©2016 American Association for Cancer Research.

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Year:  2016        PMID: 27932417      PMCID: PMC5334358          DOI: 10.1158/1078-0432.CCR-16-0968

Source DB:  PubMed          Journal:  Clin Cancer Res        ISSN: 1078-0432            Impact factor:   12.531


  55 in total

1.  Reversal of the TCR stop signal by CTLA-4.

Authors:  Helga Schneider; Jos Downey; Andrew Smith; Bernd H Zinselmeyer; Catherine Rush; James M Brewer; Bin Wei; Nancy Hogg; Paul Garside; Christopher E Rudd
Journal:  Science       Date:  2006-08-24       Impact factor: 47.728

Review 2.  At the crossroads of necrosis and apoptosis: signaling to multiple cellular targets by HMGB1.

Authors:  Michael Bustin
Journal:  Sci STKE       Date:  2002-09-24

3.  RIPK1 maintains epithelial homeostasis by inhibiting apoptosis and necroptosis.

Authors:  Marius Dannappel; Katerina Vlantis; Snehlata Kumari; Apostolos Polykratis; Chun Kim; Laurens Wachsmuth; Christina Eftychi; Juan Lin; Teresa Corona; Nicole Hermance; Matija Zelic; Petra Kirsch; Marijana Basic; Andre Bleich; Michelle Kelliher; Manolis Pasparakis
Journal:  Nature       Date:  2014-08-17       Impact factor: 49.962

Review 4.  Overview how adenocarcinoma cancer cells avoid immune- and chemotherapy-induced apoptosis.

Authors:  B Pajak; A Orzechowski
Journal:  Adv Med Sci       Date:  2006       Impact factor: 3.287

Review 5.  Molecular mechanisms of necroptosis: an ordered cellular explosion.

Authors:  Peter Vandenabeele; Lorenzo Galluzzi; Tom Vanden Berghe; Guido Kroemer
Journal:  Nat Rev Mol Cell Biol       Date:  2010-09-08       Impact factor: 94.444

6.  Nivolumab plus ipilimumab in advanced melanoma.

Authors:  Jedd D Wolchok; Harriet Kluger; Margaret K Callahan; Michael A Postow; Naiyer A Rizvi; Alexander M Lesokhin; Neil H Segal; Charlotte E Ariyan; Ruth-Ann Gordon; Kathleen Reed; Matthew M Burke; Anne Caldwell; Stephanie A Kronenberg; Blessing U Agunwamba; Xiaoling Zhang; Israel Lowy; Hector David Inzunza; William Feely; Christine E Horak; Quan Hong; Alan J Korman; Jon M Wigginton; Ashok Gupta; Mario Sznol
Journal:  N Engl J Med       Date:  2013-06-02       Impact factor: 91.245

7.  Tipping the balance between necrosis and apoptosis in human and murine cells treated with interferon and dsRNA.

Authors:  M Kalai; G Van Loo; T Vanden Berghe; A Meeus; W Burm; X Saelens; P Vandenabeele
Journal:  Cell Death Differ       Date:  2002-09       Impact factor: 15.828

8.  Phosphorylation-driven assembly of the RIP1-RIP3 complex regulates programmed necrosis and virus-induced inflammation.

Authors:  Young Sik Cho; Sreerupa Challa; David Moquin; Ryan Genga; Tathagat Dutta Ray; Melissa Guildford; Francis Ka-Ming Chan
Journal:  Cell       Date:  2009-06-12       Impact factor: 41.582

9.  Divergent effects of RIP1 or RIP3 blockade in murine models of acute liver injury.

Authors:  M Deutsch; C S Graffeo; R Rokosh; M Pansari; A Ochi; E M Levie; E Van Heerden; D M Tippens; S Greco; R Barilla; L Tomkötter; C P Zambirinis; N Avanzi; R Gulati; H L Pachter; A Torres-Hernandez; A Eisenthal; D Daley; G Miller
Journal:  Cell Death Dis       Date:  2015-05-07       Impact factor: 8.469

10.  CXCR2 Inhibition Profoundly Suppresses Metastases and Augments Immunotherapy in Pancreatic Ductal Adenocarcinoma.

Authors:  Colin W Steele; Saadia A Karim; Joshua D G Leach; Peter Bailey; Rosanna Upstill-Goddard; Loveena Rishi; Mona Foth; Sheila Bryson; Karen McDaid; Zena Wilson; Catherine Eberlein; Juliana B Candido; Mairi Clarke; Colin Nixon; John Connelly; Nigel Jamieson; C Ross Carter; Frances Balkwill; David K Chang; T R Jeffry Evans; Douglas Strathdee; Andrew V Biankin; Robert J B Nibbs; Simon T Barry; Owen J Sansom; Jennifer P Morton
Journal:  Cancer Cell       Date:  2016-06-02       Impact factor: 38.585

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  16 in total

1.  2,7-Diazaspiro[4,4]nonanes for the Treatment or Prevention of Cancers and Diabetes.

Authors:  Robert B Kargbo
Journal:  ACS Med Chem Lett       Date:  2018-04-13       Impact factor: 4.345

2.  RIP3 Translocation into Mitochondria Promotes Mitofilin Degradation to Increase Inflammation and Kidney Injury after Renal Ischemia-Reperfusion.

Authors:  Yansheng Feng; Abdulhafiz Imam Aliagan; Nathalie Tombo; Derrick Draeger; Jean C Bopassa
Journal:  Cells       Date:  2022-06-11       Impact factor: 7.666

3.  SAP130 released by damaged tubule drives necroinflammation via miRNA-219c/Mincle signaling in acute kidney injury.

Authors:  Lin-Li Lv; Cui Wang; Zuo-Lin Li; Jing-Yuan Cao; Xin Zhong; Ye Feng; Jun Chen; Tao-Tao Tang; Hai-Feng Ni; Qiu-Li Wu; Bin Wang; Hui-Yao Lan; Bi-Cheng Liu
Journal:  Cell Death Dis       Date:  2021-09-23       Impact factor: 9.685

4.  Inhibition of Aurora Kinase A Induces Necroptosis in Pancreatic Carcinoma.

Authors:  Yangchun Xie; Shan Zhu; Meizuo Zhong; Manhua Yang; Xiaofan Sun; Jinbao Liu; Guido Kroemer; Michael Lotze; Herbert J Zeh; Rui Kang; Daolin Tang
Journal:  Gastroenterology       Date:  2017-07-29       Impact factor: 22.682

Review 5.  MLKL in cancer: more than a necroptosis regulator.

Authors:  Peter Vandenabeele; Nozomi Takahashi; Sofie Martens; Jolien Bridelance; Ria Roelandt
Journal:  Cell Death Differ       Date:  2021-05-05       Impact factor: 12.067

Review 6.  Susceptibility and Resistance Mechanisms During Photodynamic Therapy of Melanoma.

Authors:  Xin-Ying Li; Liu-Chang Tan; Li-Wen Dong; Wan-Qi Zhang; Xiao-Xiao Shen; Xiao Lu; Hong Zheng; Yuan-Gang Lu
Journal:  Front Oncol       Date:  2020-05-12       Impact factor: 6.244

Review 7.  Interleukin-33 in Malignancies: Friends or Foes?

Authors:  Jia-Xin Shen; Jing Liu; Guo-Jun Zhang
Journal:  Front Immunol       Date:  2018-12-20       Impact factor: 7.561

Review 8.  Non-Apoptotic Cell Death Signaling Pathways in Melanoma.

Authors:  Mariusz L Hartman
Journal:  Int J Mol Sci       Date:  2020-04-23       Impact factor: 5.923

Review 9.  Differences of Key Proteins between Apoptosis and Necroptosis.

Authors:  Min Yeong Park; Sang Eun Ha; Preethi Vetrivel; Hun Hwan Kim; Pritam Bhangwan Bhosale; Abuyaseer Abusaliya; Gon Sup Kim
Journal:  Biomed Res Int       Date:  2021-12-12       Impact factor: 3.411

10.  miR-210 Regulates Apoptotic Cell Death during Cellular Hypoxia and Reoxygenation in a Diametrically Opposite Manner.

Authors:  Gurdeep Marwarha; Øystein Røsand; Nathan Scrimgeour; Katrine Hordnes Slagsvold; Morten Andre Høydal
Journal:  Biomedicines       Date:  2021-12-25
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