Literature DB >> 26924060

Autophagy in acute kidney injury.

Gur P Kaushal1, Sudhir V Shah2.   

Abstract

Autophagy is a conserved multistep pathway that degrades and recycles damaged organelles and macromolecules to maintain intracellular homeostasis. The autophagy pathway is upregulated under stress conditions including cell starvation, hypoxia, nutrient and growth-factor deprivation, endoplasmic reticulum stress, and oxidant injury, most of which are involved in the pathogenesis of acute kidney injury (AKI). Recent studies demonstrate that basal autophagy in the kidney is vital for the normal homeostasis of the proximal tubules. Deletion of key autophagy proteins impaired renal function and increased p62 levels and oxidative stress. In models of AKI, autophagy deletion in proximal tubules worsened tubular injury and renal function, highlighting that autophagy is renoprotective in models of AKI. In addition to nonselective sequestration of autophagic cargo, autophagy can facilitate selective degradation of damaged organelles, particularly mitochondrial degradation through the process of mitophagy. Damaged mitochondria accumulate in autophagy-deficient kidneys of mice subjected to ischemia-reperfusion injury, but the precise mechanisms of regulation of mitophagy in AKI are not yet elucidated. Recent progress in identifying the interplay of autophagy, apoptosis, and regulated necrosis has revived interest in examining shared pathways/molecules in this crosstalk during the pathogenesis of AKI. Autophagy and its associated pathways pose potentially unique targets for therapeutic interventions in AKI. Published by Elsevier Inc.

Entities:  

Keywords:  acute kidney injury; apoptosis; autophagy; cell death; cisplatin nephrotoxicity; ischemia reperfusion; mitophagy

Mesh:

Substances:

Year:  2016        PMID: 26924060      PMCID: PMC4801755          DOI: 10.1016/j.kint.2015.11.021

Source DB:  PubMed          Journal:  Kidney Int        ISSN: 0085-2538            Impact factor:   10.612


  188 in total

1.  Beclin 1 cleavage by caspase-3 inactivates autophagy and promotes apoptosis.

Authors:  Yushan Zhu; Lixia Zhao; Lei Liu; Ping Gao; Weili Tian; Xiaohui Wang; Haijing Jin; Haidong Xu; Quan Chen
Journal:  Protein Cell       Date:  2010-06-04       Impact factor: 14.870

2.  Autophagy plays a protective role during zVAD-induced necrotic cell death.

Authors:  You-Tong Wu; Hui-Ling Tan; Qing Huang; You-Sun Kim; Ning Pan; Wei-Yi Ong; Zheng-Gang Liu; Choon-Nam Ong; Han-Ming Shen
Journal:  Autophagy       Date:  2008-02-01       Impact factor: 16.016

Review 3.  Autophagy machinery in the context of mammalian mitophagy.

Authors:  Saori R Yoshii; Noboru Mizushima
Journal:  Biochim Biophys Acta       Date:  2015-01-26

4.  Autophagy guards against cisplatin-induced acute kidney injury.

Authors:  Atsushi Takahashi; Tomonori Kimura; Yoshitsugu Takabatake; Tomoko Namba; Junya Kaimori; Harumi Kitamura; Isao Matsui; Fumio Niimura; Taiji Matsusaka; Naonobu Fujita; Tamotsu Yoshimori; Yoshitaka Isaka; Hiromi Rakugi
Journal:  Am J Pathol       Date:  2012-02       Impact factor: 4.307

5.  zVAD-fmk prevents cisplatin-induced cleavage of autophagy proteins but impairs autophagic flux and worsens renal function.

Authors:  Christian Herzog; Cheng Yang; Alexandrea Holmes; Gur P Kaushal
Journal:  Am J Physiol Renal Physiol       Date:  2012-08-15

6.  JNK1-mediated phosphorylation of Bcl-2 regulates starvation-induced autophagy.

Authors:  Yongjie Wei; Sophie Pattingre; Sangita Sinha; Michael Bassik; Beth Levine
Journal:  Mol Cell       Date:  2008-06-20       Impact factor: 17.970

7.  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

8.  WIPI2 links LC3 conjugation with PI3P, autophagosome formation, and pathogen clearance by recruiting Atg12-5-16L1.

Authors:  Hannah C Dooley; Minoo Razi; Hannah E J Polson; Stephen E Girardin; Michael I Wilson; Sharon A Tooze
Journal:  Mol Cell       Date:  2014-06-19       Impact factor: 17.970

Review 9.  Mitochondrial dynamics: regulatory mechanisms and emerging role in renal pathophysiology.

Authors:  Ming Zhan; Craig Brooks; Fuyou Liu; Lin Sun; Zheng Dong
Journal:  Kidney Int       Date:  2013-01-16       Impact factor: 10.612

10.  Mitochondrial autophagy involving renal injury and aging is modulated by caloric intake in aged rat kidneys.

Authors:  Jing Cui; Suozhu Shi; Xuefeng Sun; Guangyan Cai; Shaoyuan Cui; Quan Hong; Xiangmei Chen; Xue-Yuan Bai
Journal:  PLoS One       Date:  2013-07-22       Impact factor: 3.240

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  117 in total

1.  Beclin 1/Bcl-2 complex-dependent autophagy activity modulates renal susceptibility to ischemia-reperfusion injury and mediates renoprotection by Klotho.

Authors:  Peng Li; Mingjun Shi; Jenny Maique; Joy Shaffer; Shirley Yan; Orson W Moe; Ming Chang Hu
Journal:  Am J Physiol Renal Physiol       Date:  2020-01-27

2.  Beclin-1 regulates cigarette smoke-induced kidney injury in a murine model of chronic obstructive pulmonary disease.

Authors:  Maria A Pabón; Edwin Patino; Divya Bhatia; Joselyn Rojas-Quintero; Kevin C Ma; Eli J Finkelsztein; Juan C Osorio; Faryal Malick; Francesca Polverino; Caroline A Owen; Stefan W Ryter; Augustine Mk Choi; Suzanne M Cloonan; Mary E Choi
Journal:  JCI Insight       Date:  2018-09-20

3.  PINK1-PRKN/PARK2 pathway of mitophagy is activated to protect against renal ischemia-reperfusion injury.

Authors:  Chengyuan Tang; Hailong Han; Mingjuan Yan; Shiyao Zhu; Jing Liu; Zhiwen Liu; Liyu He; Jieqiong Tan; Yu Liu; Hong Liu; Lin Sun; Shaobin Duan; Youming Peng; Fuyou Liu; Xiao-Ming Yin; Zhuohua Zhang; Zheng Dong
Journal:  Autophagy       Date:  2018-02-17       Impact factor: 16.016

Review 4.  The regulatory role of HIF-1 in tubular epithelial cells in response to kidney injury.

Authors:  Yumei Qiu; Xiaowen Huang; Weichun He
Journal:  Histol Histopathol       Date:  2019-11-06       Impact factor: 2.303

5.  Cutaneous exposure to lewisite causes acute kidney injury by invoking DNA damage and autophagic response.

Authors:  Ritesh K Srivastava; Amie M Traylor; Changzhao Li; Wenguang Feng; Lingling Guo; Veena B Antony; Trenton R Schoeb; Anupam Agarwal; Mohammad Athar
Journal:  Am J Physiol Renal Physiol       Date:  2018-01-17

6.  SOX9 promotes stress-responsive transcription of VGF nerve growth factor inducible gene in renal tubular epithelial cells.

Authors:  Ji Young Kim; Yuntao Bai; Laura A Jayne; Ferdos Abdulkader; Megha Gandhi; Tayla Perreau; Samir V Parikh; David S Gardner; Alan J Davidson; Veronika Sander; Min-Ae Song; Amandeep Bajwa; Navjot Singh Pabla
Journal:  J Biol Chem       Date:  2020-09-04       Impact factor: 5.157

Review 7.  Autophagy: A Lysosome-Dependent Process with Implications in Cellular Redox Homeostasis and Human Disease.

Authors:  Stefan W Ryter; Divya Bhatia; Mary E Choi
Journal:  Antioxid Redox Signal       Date:  2018-03-28       Impact factor: 8.401

8.  An intracellular matrix metalloproteinase-2 isoform induces tubular regulated necrosis: implications for acute kidney injury.

Authors:  Carla S Ceron; Celine Baligand; Sunil Joshi; Shaynah Wanga; Patrick M Cowley; Joy P Walker; Sang Heon Song; Rajeev Mahimkar; Anthony J Baker; Robert L Raffai; Zhen J Wang; David H Lovett
Journal:  Am J Physiol Renal Physiol       Date:  2017-03-22

9.  Heat shock factor 1 induces crystallin-αB to protect against cisplatin nephrotoxicity.

Authors:  Qiang Lou; Yanzhong Hu; Yuanfang Ma; Zheng Dong
Journal:  Am J Physiol Renal Physiol       Date:  2016-05-18

Review 10.  Chronic Kidney Disease: A Vicarious Relation to Premature Cell Senescence.

Authors:  Michael S Goligorsky
Journal:  Am J Pathol       Date:  2020-03-16       Impact factor: 4.307

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