Literature DB >> 28119452

MicroRNA-375 Is Induced in Cisplatin Nephrotoxicity to Repress Hepatocyte Nuclear Factor 1-β.

Jielu Hao1,2, Qiang Lou2,3, Qingqing Wei2, Shuqin Mei1,2, Lin Li1,2, Guangyu Wu4, Qing-Sheng Mi5, Changlin Mei6, Zheng Dong7,8.   

Abstract

Nephrotoxicity is a major adverse effect of cisplatin-mediated chemotherapy in cancer patients. The pathogenesis of cisplatin-induced nephrotoxicity remains largely unclear, making it difficult to design effective renoprotective approaches. Here, we have examined the role of microRNAs (miRNAs) in cisplatin-induced nephrotoxicity. We show that cisplatin nephrotoxicity was not affected by overall depletion of both beneficial and detrimental miRNAs from kidney proximal tubular cells in mice in which the miRNA-generating enzyme Dicer had been conditionally knocked out. To identify miRNAs involved in cisplatin nephrotoxicity, we used microarray analysis to profile miRNA expression and identified 47 up-regulated microRNAs and 20 down-regulated microRNAs in kidney cortical tissues. One up-regulated miRNA was miR-375, whose expression was also induced in cisplatin-treated renal tubular cells. Interestingly, inhibition of miR-375 decreased cisplatin-induced apoptosis, suggesting that miR-375 is a cell-damaging or pro-apoptotic agent. Blockade of P53 or NF-κB attenuated cisplatin-induced miR-375 expression, supporting a role of P53 and NF-κB in miR-375 induction. We also identified hepatocyte nuclear factor 1 homeobox B (HNF-1β) as a key downstream target of miR-375. Of note, we further demonstrated that HNF-1β protected renal cells against cisplatin-induced apoptosis. Together, these results suggest that upon cisplatin exposure, P53 and NF-κB collaboratively induce miR-375 expression, which, in turn, represses HNF-1β activity, resulting in renal tubular cell apoptosis and nephrotoxicity.
© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  NF-κB; P53; apoptosis; cisplatin; gene regulation; kidney; microRNA (miRNA); nephrotoxicity

Mesh:

Substances:

Year:  2017        PMID: 28119452      PMCID: PMC5377773          DOI: 10.1074/jbc.M116.754929

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  47 in total

1.  An integrative transcriptomic analysis reveals p53 regulated miRNA, mRNA, and lncRNA networks in nasopharyngeal carcinoma.

Authors:  Zhaojian Gong; Qian Yang; Zhaoyang Zeng; Wenling Zhang; Xiayu Li; Xuyu Zu; Hao Deng; Pan Chen; Qianjin Liao; Bo Xiang; Ming Zhou; Xiaoling Li; Yong Li; Wei Xiong; Guiyuan Li
Journal:  Tumour Biol       Date:  2015-10-13

Review 2.  Nuclear factor-kappaB in cancer development and progression.

Authors:  Michael Karin
Journal:  Nature       Date:  2006-05-25       Impact factor: 49.962

Review 3.  MicroRNAs in stress signaling and human disease.

Authors:  Joshua T Mendell; Eric N Olson
Journal:  Cell       Date:  2012-03-16       Impact factor: 41.582

Review 4.  MicroRNAs and their applications in kidney diseases.

Authors:  Shawn S Badal; Farhad R Danesh
Journal:  Pediatr Nephrol       Date:  2014-06-14       Impact factor: 3.714

5.  Attenuation of murine collagen-induced arthritis by a novel, potent, selective small molecule inhibitor of IkappaB Kinase 2, TPCA-1 (2-[(aminocarbonyl)amino]-5-(4-fluorophenyl)-3-thiophenecarboxamide), occurs via reduction of proinflammatory cytokines and antigen-induced T cell Proliferation.

Authors:  Patricia L Podolin; James F Callahan; Brian J Bolognese; Yue H Li; Karey Carlson; T Gregg Davis; Geoff W Mellor; Christopher Evans; Amy K Roshak
Journal:  J Pharmacol Exp Ther       Date:  2004-08-17       Impact factor: 4.030

Review 6.  Cisplatin nephrotoxicity: mechanisms and renoprotective strategies.

Authors:  N Pabla; Z Dong
Journal:  Kidney Int       Date:  2008-02-13       Impact factor: 10.612

7.  Cisplatinum nephrotoxicity in oncology therapeutics: retrospective review of patients treated between 2005 and 2012.

Authors:  Morgan Finkel; Adam Goldstein; Yael Steinberg; Linda Granowetter; Howard Trachtman
Journal:  Pediatr Nephrol       Date:  2014-08-30       Impact factor: 3.714

8.  Regulation of PUMA-alpha by p53 in cisplatin-induced renal cell apoptosis.

Authors:  M Jiang; Q Wei; J Wang; Q Du; J Yu; L Zhang; Z Dong
Journal:  Oncogene       Date:  2006-02-20       Impact factor: 9.867

9.  NF-κB transcriptional inhibition ameliorates cisplatin-induced acute kidney injury (AKI).

Authors:  Abdullah Ozkok; Kameswaran Ravichandran; Qian Wang; Danica Ljubanovic; Charles L Edelstein
Journal:  Toxicol Lett       Date:  2015-11-03       Impact factor: 4.372

10.  miR-23a binds to p53 and enhances its association with miR-128 promoter.

Authors:  Jincheng Li; Lynn Htet Htet Aung; Bo Long; Danian Qin; Shejuan An; Peifeng Li
Journal:  Sci Rep       Date:  2015-11-10       Impact factor: 4.379

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  17 in total

1.  RNA interference may suppress stress granule formation by preventing argonaute 2 recruitment.

Authors:  Qiang Lou; Yanzhong Hu; Yanfang Ma; Zheng Dong
Journal:  Am J Physiol Cell Physiol       Date:  2018-11-07       Impact factor: 4.249

2.  MicroRNA-668 represses MTP18 to preserve mitochondrial dynamics in ischemic acute kidney injury.

Authors:  Qingqing Wei; Haipeng Sun; Shuwei Song; Yong Liu; Pengyuan Liu; Man Jiang Livingston; Jianwen Wang; Mingyu Liang; Qing-Sheng Mi; Yuqing Huo; Norris Stanley Nahman; Changlin Mei; Zheng Dong
Journal:  J Clin Invest       Date:  2018-11-12       Impact factor: 14.808

Review 3.  Emerging role of tumor suppressor p53 in acute and chronic kidney diseases.

Authors:  Jessica M Overstreet; Cody C Gifford; Jiaqi Tang; Paul J Higgins; Rohan Samarakoon
Journal:  Cell Mol Life Sci       Date:  2022-08-09       Impact factor: 9.207

Review 4.  MicroRNAs in kidney injury and disease.

Authors:  Nassim Mahtal; Olivia Lenoir; Claire Tinel; Dany Anglicheau; Pierre-Louis Tharaux
Journal:  Nat Rev Nephrol       Date:  2022-08-16       Impact factor: 42.439

Review 5.  Cisplatin nephrotoxicity: new insights and therapeutic implications.

Authors:  Chengyuan Tang; Man J Livingston; Robert Safirstein; Zheng Dong
Journal:  Nat Rev Nephrol       Date:  2022-10-13       Impact factor: 42.439

6.  Dicer deficiency in proximal tubules exacerbates renal injury and tubulointerstitial fibrosis and upregulates Smad2/3.

Authors:  Zhengwei Ma; Qingqing Wei; Ming Zhang; Jian-Kang Chen; Zheng Dong
Journal:  Am J Physiol Renal Physiol       Date:  2018-10-03

7.  Endothelial-Derived miR-17∼92 Promotes Angiogenesis to Protect against Renal Ischemia-Reperfusion Injury.

Authors:  Takuto Chiba; Débora M Cerqueira; Yao Li; Andrew J Bodnar; Elina Mukherjee; Katherine Pfister; Yu Leng Phua; Kai Shaikh; Brandon T Sanders; Shelby L Hemker; Patrick J Pagano; Yijen L Wu; Jacqueline Ho; Sunder Sims-Lucas
Journal:  J Am Soc Nephrol       Date:  2021-01-29       Impact factor: 10.121

8.  MiR-3168, miR-6125, and miR-4718 as potential predictors of cisplatin-induced nephrotoxicity in patients with head and neck cancer.

Authors:  Julia C F Quintanilha; Maria A Cursino; Jessica B Borges; Nadine G Torso; Larissa B Bastos; Juliana M Oliveira; Thiago S Cobaxo; Eder C Pincinato; Mario H Hirata; Murilo V Geraldo; Carmen S P Lima; Patricia Moriel
Journal:  BMC Cancer       Date:  2021-05-19       Impact factor: 4.430

Review 9.  Molecular mechanisms of cisplatin-induced nephrotoxicity: a balance on the knife edge between renoprotection and tumor toxicity.

Authors:  Vladislav Volarevic; Bojana Djokovic; Marina Gazdic Jankovic; C Randall Harrell; Crissy Fellabaum; Valentin Djonov; Nebojsa Arsenijevic
Journal:  J Biomed Sci       Date:  2019-03-13       Impact factor: 8.410

Review 10.  Epigenetic Mechanisms Involved in Cisplatin-Induced Nephrotoxicity: An Update.

Authors:  Pía Loren; Nicolás Saavedra; Kathleen Saavedra; Tomás Zambrano; Patricia Moriel; Luis A Salazar
Journal:  Pharmaceuticals (Basel)       Date:  2021-05-21
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