Literature DB >> 34363007

Identification of pimavanserin tartrate as a potent Ca2+-calcineurin-NFAT pathway inhibitor for glioblastoma therapy.

Zhen-Zhen Liu1, Xiao-Ning Liu1, Rui-Cheng Fan2, Yu-Ping Jia3, Qing-Ke Zhang4, Xin-Qing Gao1, Yu-Qing Wang1, Meng-Qing Yang1, Li-Zhen Ji5, Yong-Qing Zhou1, Hong-Li Li6, Ping Li7, Bo Tang8.   

Abstract

Glioblastoma multiforme (GBM) is the most common and malignant type of primary brain tumor, and 95% of patients die within 2 years after diagnosis. In this study, aiming to overcome chemoresistance to the first-line drug temozolomide (TMZ), we carried out research to discover a novel alternative drug targeting the oncogenic NFAT signaling pathway for GBM therapy. To accelerate the drug's clinical application, we took advantage of a drug repurposing strategy to identify novel NFAT signaling pathway inhibitors. After screening a set of 93 FDA-approved drugs with simple structures, we identified pimavanserin tartrate (PIM), an effective 5-HT2A receptor inverse agonist used for the treatment of Parkinson's disease-associated psychiatric symptoms, as having the most potent inhibitory activity against the NFAT signaling pathway. Further study revealed that PIM suppressed STIM1 puncta formation to inhibit store-operated calcium entry (SOCE) and subsequent NFAT activity. In cellula, PIM significantly suppressed the proliferation, migration, division, and motility of U87 glioblastoma cells, induced G1/S phase arrest and promoted apoptosis. In vivo, the growth of subcutaneous and orthotopic glioblastoma xenografts was markedly suppressed by PIM. Unbiased omics studies revealed the novel molecular mechanism of PIM's antitumor activity, which included suppression of the ATR/CDK2/E2F axis, MYC, and AuroraA/B signaling. Interestingly, the genes upregulated by PIM were largely associated with cholesterol homeostasis, which may contribute to PIM's side effects and should be given more attention. Our study identified store-operated calcium channels as novel targets of PIM and was the first to systematically highlight the therapeutic potential of pimavanserin tartrate for glioblastoma.
© 2021. The Author(s), under exclusive licence to CPS and SIMM.

Entities:  

Keywords:  NFAT signaling pathway; SOCE; drug repurposing; glioblastoma; pimavanserin tartrate

Mesh:

Substances:

Year:  2021        PMID: 34363007      PMCID: PMC8563877          DOI: 10.1038/s41401-021-00724-2

Source DB:  PubMed          Journal:  Acta Pharmacol Sin        ISSN: 1671-4083            Impact factor:   6.150


  48 in total

1.  Dual roles for NFAT transcription factor genes as oncogenes and tumor suppressors.

Authors:  Bruno K Robbs; Andre L S Cruz; Miriam B F Werneck; Giuliana P Mognol; João P B Viola
Journal:  Mol Cell Biol       Date:  2008-09-22       Impact factor: 4.272

Review 2.  NFAT as cancer target: mission possible?

Authors:  Jiang-Jiang Qin; Subhasree Nag; Wei Wang; Jianwei Zhou; Wei-Dong Zhang; Hui Wang; Ruiwen Zhang
Journal:  Biochim Biophys Acta       Date:  2014-07-26

3.  A role for NFAT signaling in ABC-DLBCL.

Authors:  Jagan R Muppidi
Journal:  Blood       Date:  2020-01-09       Impact factor: 22.113

4.  Receptor channel TRPC6 is a key mediator of Notch-driven glioblastoma growth and invasiveness.

Authors:  Srinivasulu Chigurupati; Rajarajeswari Venkataraman; Daniel Barrera; Anusha Naganathan; Meenu Madan; Leena Paul; Jogi V Pattisapu; George A Kyriazis; Kiminobu Sugaya; Sergey Bushnev; Justin D Lathia; Jeremy N Rich; Sic L Chan
Journal:  Cancer Res       Date:  2009-12-22       Impact factor: 12.701

5.  NFAT1 promotes intratumoral neutrophil infiltration by regulating IL8 expression in breast cancer.

Authors:  Aura Kaunisto; Whitney S Henry; Laleh Montaser-Kouhsari; Shou-Ching Jaminet; Eun-Yeong Oh; Li Zhao; Hongbo R Luo; Andrew H Beck; Alex Toker
Journal:  Mol Oncol       Date:  2015-02-19       Impact factor: 6.603

6.  Epigenetic Activation of WNT5A Drives Glioblastoma Stem Cell Differentiation and Invasive Growth.

Authors:  Baoli Hu; Qianghu Wang; Y Alan Wang; Sujun Hua; Charles-Etienne Gabriel Sauvé; Derrick Ong; Zheng D Lan; Qing Chang; Yan Wing Ho; Marta Moreno Monasterio; Xin Lu; Yi Zhong; Jianhua Zhang; Pingna Deng; Zhi Tan; Guocan Wang; Wen-Ting Liao; Lynda J Corley; Haiyan Yan; Junxia Zhang; Yongping You; Ning Liu; Linbo Cai; Gaetano Finocchiaro; Joanna J Phillips; Mitchel S Berger; Denise J Spring; Jian Hu; Erik P Sulman; Gregory N Fuller; Lynda Chin; Roeland G W Verhaak; Ronald A DePinho
Journal:  Cell       Date:  2016-11-17       Impact factor: 41.582

7.  An Integrative Model of Cellular States, Plasticity, and Genetics for Glioblastoma.

Authors:  Cyril Neftel; Julie Laffy; Mariella G Filbin; Toshiro Hara; Marni E Shore; Gilbert J Rahme; Alyssa R Richman; Dana Silverbush; McKenzie L Shaw; Christine M Hebert; John Dewitt; Simon Gritsch; Elizabeth M Perez; L Nicolas Gonzalez Castro; Xiaoyang Lan; Nicholas Druck; Christopher Rodman; Danielle Dionne; Alexander Kaplan; Mia S Bertalan; Julia Small; Kristine Pelton; Sarah Becker; Dennis Bonal; Quang-De Nguyen; Rachel L Servis; Jeremy M Fung; Ravindra Mylvaganam; Lisa Mayr; Johannes Gojo; Christine Haberler; Rene Geyeregger; Thomas Czech; Irene Slavc; Brian V Nahed; William T Curry; Bob S Carter; Hiroaki Wakimoto; Priscilla K Brastianos; Tracy T Batchelor; Anat Stemmer-Rachamimov; Maria Martinez-Lage; Matthew P Frosch; Ivan Stamenkovic; Nicolo Riggi; Esther Rheinbay; Michelle Monje; Orit Rozenblatt-Rosen; Daniel P Cahill; Anoop P Patel; Tony Hunter; Inder M Verma; Keith L Ligon; David N Louis; Aviv Regev; Bradley E Bernstein; Itay Tirosh; Mario L Suvà
Journal:  Cell       Date:  2019-07-18       Impact factor: 41.582

Review 8.  Drug repurposing: progress, challenges and recommendations.

Authors:  Sudeep Pushpakom; Francesco Iorio; Patrick A Eyers; K Jane Escott; Shirley Hopper; Andrew Wells; Andrew Doig; Tim Guilliams; Joanna Latimer; Christine McNamee; Alan Norris; Philippe Sanseau; David Cavalla; Munir Pirmohamed
Journal:  Nat Rev Drug Discov       Date:  2018-10-12       Impact factor: 84.694

9.  Acetyl-CoA promotes glioblastoma cell adhesion and migration through Ca2+-NFAT signaling.

Authors:  Joyce V Lee; Corbett T Berry; Karla Kim; Payel Sen; Taehyong Kim; Alessandro Carrer; Sophie Trefely; Steven Zhao; Sully Fernandez; Lauren E Barney; Alyssa D Schwartz; Shelly R Peyton; Nathaniel W Snyder; Shelley L Berger; Bruce D Freedman; Kathryn E Wellen
Journal:  Genes Dev       Date:  2018-04-19       Impact factor: 11.361

10.  NFAT1 is highly expressed in, and regulates the invasion of, glioblastoma multiforme cells.

Authors:  Xinxin Tie; Sheng Han; Lingxuan Meng; Yunjie Wang; Anhua Wu
Journal:  PLoS One       Date:  2013-06-06       Impact factor: 3.240

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  1 in total

Review 1.  Drug Repurposing, a Fast-Track Approach to Develop Effective Treatments for Glioblastoma.

Authors:  Ioannis Ntafoulis; Stijn L W Koolen; Sieger Leenstra; Martine L M Lamfers
Journal:  Cancers (Basel)       Date:  2022-07-29       Impact factor: 6.575

  1 in total

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