Literature DB >> 30062059

Phenotypic screening identifies a new oxazolone inhibitor of necroptosis and neuroinflammation.

Sara R Oliveira1, Pedro A Dionísio1, Hugo Brito1, Lídia Franco1, Catarina A B Rodrigues1, Rita C Guedes1, Carlos A M Afonso1, Joana D Amaral1, Cecília M P Rodrigues1.   

Abstract

Necroptosis is a regulated form of necrosis, which may be critical in the pathogenesis of neurodegenerative diseases. Neuroinflammation, characterized by the activation of glial cells such as microglia, is closely linked with neurodegenerative pathways and constitutes a major mechanism of neural damage and disease progression. Importantly, inhibition of necroptosis results in disease improvement, unveiling an alternative approach for therapeutic intervention. In the present study, we screened a small library of new molecules, potentially inhibitors of necroptosis, using two cellular models of necroptosis. A new oxazolone, Oxa12, reduced tumour necrosis factor α (TNF-α)-induced necroptosis in mouse L929 fibrosarcoma cells. Notably, Oxa12 strongly inhibited zVAD-fmk-induced necroptosis in murine BV2 microglial cells. Moreover, Oxa12 blocked phosphorylation of mixed-lineage kinase domain-like protein (MLKL), and interfered with necrosome complex formation, indicating that Oxa12 targets components upstream of MLKL. In fact, in silico molecular docking studies revealed that Oxa12 is occupying a region similar to the 1-aminoisoquinoline type II kinase inhibitor inside the receptor-interacting protein 1 (RIP1) kinase domain. Finally, in microglial cells, Oxa12 attenuated zVAD-fmk- and lipopolysaccharide (LPS)-induced inflammatory processes, as revealed by a marked decrease of TNF-α and/or IL-1β expression. More specifically, Oxa12 negatively targeted c-Jun N-terminal kinase (JNK) and p38 mitogen-activated protein kinase (MAPK) pathways, as well as NF-κB activation. Overall, we identified a strong lead inhibitor of necroptosis that is also effective at reducing inflammation-associated events. Oxa12 is a promising candidate molecule for further development to target disease states dependent on RIP kinase activity.

Entities:  

Year:  2018        PMID: 30062059      PMCID: PMC6060125          DOI: 10.1038/s41420-018-0067-0

Source DB:  PubMed          Journal:  Cell Death Discov        ISSN: 2058-7716


  50 in total

1.  zVAD-induced necroptosis in L929 cells depends on autocrine production of TNFα mediated by the PKC-MAPKs-AP-1 pathway.

Authors:  Y-T Wu; H-L Tan; Q Huang; X-J Sun; X Zhu; H-M Shen
Journal:  Cell Death Differ       Date:  2010-06-11       Impact factor: 15.828

2.  The adaptor protein FADD protects epidermal keratinocytes from necroptosis in vivo and prevents skin inflammation.

Authors:  Marion C Bonnet; Daniela Preukschat; Patrick-Simon Welz; Geert van Loo; Maria A Ermolaeva; Wilhelm Bloch; Ingo Haase; Manolis Pasparakis
Journal:  Immunity       Date:  2011-10-13       Impact factor: 31.745

3.  Mixed lineage kinase domain-like protein mediates necrosis signaling downstream of RIP3 kinase.

Authors:  Liming Sun; Huayi Wang; Zhigao Wang; Sudan He; She Chen; Daohong Liao; Lai Wang; Jiacong Yan; Weilong Liu; Xiaoguang Lei; Xiaodong Wang
Journal:  Cell       Date:  2012-01-20       Impact factor: 41.582

4.  Discovery of Small Molecule RIP1 Kinase Inhibitors for the Treatment of Pathologies Associated with Necroptosis.

Authors:  Philip A Harris; Deepak Bandyopadhyay; Scott B Berger; Nino Campobasso; Carol A Capriotti; Julie A Cox; Lauren Dare; Joshua N Finger; Sandra J Hoffman; Kirsten M Kahler; Ruth Lehr; John D Lich; Rakesh Nagilla; Robert T Nolte; Michael T Ouellette; Christina S Pao; Michelle C Schaeffer; Angela Smallwood; Helen H Sun; Barbara A Swift; Rachel D Totoritis; Paris Ward; Robert W Marquis; John Bertin; Peter J Gough
Journal:  ACS Med Chem Lett       Date:  2013-11-04       Impact factor: 4.345

5.  TNFα-induced necroptosis and autophagy via supression of the p38-NF-κB survival pathway in L929 cells.

Authors:  Yuan-Chao Ye; Lu Yu; Hong-Ju Wang; Shin-ichi Tashiro; Satoshi Onodera; Takashi Ikejima
Journal:  J Pharmacol Sci       Date:  2011-10-25       Impact factor: 3.337

Review 6.  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

7.  Necroptosis is a key pathogenic event in human and experimental murine models of non-alcoholic steatohepatitis.

Authors:  Marta B Afonso; Pedro M Rodrigues; Tânia Carvalho; Marta Caridade; Paula Borralho; Helena Cortez-Pinto; Rui E Castro; Cecília M P Rodrigues
Journal:  Clin Sci (Lond)       Date:  2015-06-15       Impact factor: 6.124

8.  MLKL compromises plasma membrane integrity by binding to phosphatidylinositol phosphates.

Authors:  Yves Dondelinger; Wim Declercq; Sylvie Montessuit; Ria Roelandt; Amanda Goncalves; Inge Bruggeman; Paco Hulpiau; Kathrin Weber; Clark A Sehon; Robert W Marquis; John Bertin; Peter J Gough; Savvas Savvides; Jean-Claude Martinou; Mathieu J M Bertrand; Peter Vandenabeele
Journal:  Cell Rep       Date:  2014-05-09       Impact factor: 9.423

9.  Akt Regulates TNFα synthesis downstream of RIP1 kinase activation during necroptosis.

Authors:  Colleen R McNamara; Ruchita Ahuja; Awo D Osafo-Addo; Douglas Barrows; Arminja Kettenbach; Igor Skidan; Xin Teng; Gregory D Cuny; Scott Gerber; Alexei Degterev
Journal:  PLoS One       Date:  2013-03-01       Impact factor: 3.240

10.  Translocation of mixed lineage kinase domain-like protein to plasma membrane leads to necrotic cell death.

Authors:  Xin Chen; Wenjuan Li; Junming Ren; Deli Huang; Wan-Ting He; Yunlong Song; Chao Yang; Wanyun Li; Xinru Zheng; Pengda Chen; Jiahuai Han
Journal:  Cell Res       Date:  2013-12-24       Impact factor: 25.617

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  5 in total

Review 1.  The regulation of necroptosis and perspectives for the development of new drugs preventing ischemic/reperfusion of cardiac injury.

Authors:  Leonid N Maslov; Sergey V Popov; Natalia V Naryzhnaya; Alexandr V Mukhomedzyanov; Boris K Kurbatov; Ivan A Derkachev; Alla A Boshchenko; Igor Khaliulin; N Rajendra Prasad; Nirmal Singh; Alexei Degterev; Evgenia A Tomilova; Ekaterina V Sapozhenkova
Journal:  Apoptosis       Date:  2022-08-20       Impact factor: 5.561

Review 2.  Necroptosis in inflammatory bowel disease and other intestinal diseases.

Authors:  Sha Li; Long-Gui Ning; Xin-He Lou; Guo-Qiang Xu
Journal:  World J Clin Cases       Date:  2018-11-26       Impact factor: 1.337

3.  Phenotypic high-throughput screening platform identifies novel chemotypes for necroptosis inhibition.

Authors:  Hugo Brito; Vanda Marques; Marta B Afonso; Dean G Brown; Ulf Börjesson; Nidhal Selmi; David M Smith; Ieuan O Roberts; Martina Fitzek; Natália Aniceto; Rita C Guedes; Rui Moreira; Cecília M P Rodrigues
Journal:  Cell Death Discov       Date:  2020-02-11

4.  Discovery of a Necroptosis Inhibitor Improving Dopaminergic Neuronal Loss after MPTP Exposure in Mice.

Authors:  Sara R Oliveira; Pedro A Dionísio; Maria M Gaspar; Maria B T Ferreira; Catarina A B Rodrigues; Rita G Pereira; Mónica S Estevão; Maria J Perry; Rui Moreira; Carlos A M Afonso; Joana D Amaral; Cecília M P Rodrigues
Journal:  Int J Mol Sci       Date:  2021-05-18       Impact factor: 5.923

5.  Mechanism and disease implications of necroptosis and neuronal inflammation.

Authors:  Sara R Oliveira; Joana D Amaral; Cecília M P Rodrigues
Journal:  Cell Death Dis       Date:  2018-09-05       Impact factor: 8.469

  5 in total

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