Inhibition of calpain on oxygen glucose deprivation-induced RGC-5 necroptosis

Shuang Chen , Jie Yan , Hai-xiao Deng , Ling-ling Long , Yong-jun Hu , Mi Wang , Lei Shang , Dan Chen , Ju-fang Huang , Kun Xiong

Current Medical Science ›› 2016, Vol. 36 ›› Issue (5) : 639 -645.

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Current Medical Science ›› 2016, Vol. 36 ›› Issue (5) : 639 -645. DOI: 10.1007/s11596-016-1639-y
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Inhibition of calpain on oxygen glucose deprivation-induced RGC-5 necroptosis

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Abstract

The purpose of this study was to investigate the effect of inhibition of calpain on retinal ganglion cell-5 (RGC-5) necroptosis following oxygen glucose deprivation (OGD). RGC-5 cells were cultured in Dulbecco’s-modified essential medium and necroptosis was induced by 8-h OGD. PI staining and flow cytometry were performed to detect RGC-5 necrosis. The calpain expression was detected by Western blotting and immunofluorescence staining. The calpain activity was tested by activity detection kit. Flow cytometry was used to detect the effect of calpain on RGC-5 necroptosis following OGD with or without N-acetyl-leucyl-leucyl-norleucinal (ALLN) pre-treatment. Western blot was used to detect the protein level of truncated apoptosis inducing factor (tAIF) in RGC-5 cells following OGD. The results showed that there was an up-regulation of the calpain expression and activity following OGD. Upon adding ALLN, the calpain activity was inhibited and tAIF was reduced following OGD along with the decreased number of RGC-5 necroptosis. In conclusion, calpain was involved in OGD-induced RGC-5 necroptosis with the increased expression of its downstream molecule tAIF.

Keywords

oxygen glucose deprivation / necroptosis / calpain / retinal ganglion cell-5 / N-acetyl-leucyl-leucyl-norleucinal / truncated apoptosis inducing factor

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Shuang Chen, Jie Yan, Hai-xiao Deng, Ling-ling Long, Yong-jun Hu, Mi Wang, Lei Shang, Dan Chen, Ju-fang Huang, Kun Xiong. Inhibition of calpain on oxygen glucose deprivation-induced RGC-5 necroptosis. Current Medical Science, 2016, 36(5): 639-645 DOI:10.1007/s11596-016-1639-y

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References

[1]

YuanL, WangZ, LiuL, et al. . Inhibiting histone deacetylase 6 partly protects cultured rat cortical neurons from oxygen-glucose deprivation-induced necroptosis. Mol Med Rep, 2015, 12(2): 2661-2667 PMID: 25976407 PMCID: 4464447

[2]

KooMJ, RooneyKT, ChoiME, et al. . Impaired oxidative phosphorylation regulates necroptosis in human lung epithelial cells. Biochem Biophys Res Commun, 2015, 464(3): 875-880 PMID: 26187663

[3]

LiuT, ZhaoDX, CuiH, et al. . Therapeutic hypothermia attenuates tissue damage and cytokine expression after traumatic brain injury by inhibiting necroptosis in the rat. Sci Rep, 2016, 6: 24547 PMID: 27080932 PMCID: 4832230

[4]

LiuS, WangX, LiY, et al. . Necroptosis mediates TNF-induced toxicity of hippocampal neurons. Biomed Res Int, 2014, 2014: 290182 PMID: 25093162 PMCID: 4100394

[5]

ReD L, VercheV, YuC, et al. . Necroptosis drives motor neuron death in models of both sporadic and familial ALS. Neuron, 2014, 81(5): 1001-1008 PMID: 24508385 PMCID: 3951532

[6]

DvoriantchikovaG, DegterevA, IvanovD. Retinal ganglion cell (RGC) programmed necrosis contributes to ischemia-reperfusion-induced retinal damage. Exp Eye Res, 2014, 123: 1-7 PMID: 24751757 PMCID: 4059599

[7]

ChenWW, YuH, FanHB, et al. . RIP1 mediates the protection of geldanamycin on neuronal injury induced by oxygen-glucose deprivation combined with zVAD in primary cortical neurons. J Neurochem, 2012, 120(1): c70-77

[8]

WuHY, TomizawaK, MatsuiH. Calpain-calcineurin signaling in the pathogenesis of calcium-dependent disorder. Acta Med Okayama, 2007, 61(3): 123-137 PMID: 17593948

[9]

WangC, ShiD, SongX, et al. . Calpain inhibitor attenuates ER stress-induced apoptosis in injured spinal cord after bone mesenchymal stem cells transplantation. Neurochem Int, 2016, 97: 15-25 PMID: 27137651

[10]

ZhangX, HuY. Inhibitory effects of grape seed proanthocyanidin extract on selenite-induced cataract formation and possible mechanism. J Huazhong Univ Sci Technolog Med Sci, 2012, 32(4): 613-619 PMID: 22886980

[11]

AuthemanD, WyderM, PopoffM, et al. . Clostridium perfringens beta-toxin induces necrostatin-inhibitable, calpain-dependent necrosis in primary porcine endothelial cells. PLoS One, 2013, 8(5): 64

[12]

CabonL, Galan-MaloP, BouharrourA, et al. . BID regulates AIF-mediated caspase independent necroptosis by promoting BAX activation. Cell Death Differ, 2012, 19(2): 245-256 PMID: 21738214

[13]

SamantaK, KarP, ChakrabortiT, et al. . An overview of endoplasmic reticulum calpain system. Springer New York, 2013, 7: 3-19

[14]

Del Olmo-AguadoS, Núñez-ÁlvarezC, OsborneNN. Blue light action on mitochondria leads to cell death by necroptosis. Neurochem Res, 2016, 41(9): 2324-2335 PMID: 27216620

[15]

DelavalleeL, CabonL, Galan-MaloP, et al. . AIF-mediated caspase-independent necroptosis: a new chance for targeted therapeutics. IUBMB Life, 2011, 63(4): 221-232 PMID: 21438113

[16]

CaoG, XingJ, XiaoX, et al. . Critical role of calpain I in mitochondrial release of apoptosis-inducing factor in ischemic neuronal injury. J Neurosci, 2007, 27(35): 9278-9293 PMID: 17728442

[17]

ShangL, HuangJ F, DingW, et al. . Calpain: a molecule to induce AIF-mediated necroptosis in RGC-5 following elevated hydrostatic pressure. BMC Neurosci, 2014, 15: 63 PMID: 24884644 PMCID: 4023497

[18]

LiY, ChenY, SunM, et al. . Inhibition on apoptosis induced by elevated hydrostatic pressure in retinal ganglion cell-5 via laminin upregulating ß1-integrin/focal adhesion kinase/protein kinase B signaling pathway. Chin Med J, 2016, 129(8): 976-983 PMID: 27064044 PMCID: 4831534

[19]

QingGP, ZhangS, WangB, et al. . Functional MRI signal changes in primary visual cortex corresponding to the central normal visual field of patients with primary open-angle glaucoma. Invest Ophthalmol Vis Sci, 2010, 51(9): 4627-4634 PMID: 20357191

[20]

HuangJF, YuHM, ShangL, et al. . The correlation between rat retinal nerve fiber layer thickness around optic disc by using optical coherence tomography and histological measurements. Int J Ophthalmol, 2013, 6(4): 415-421 PMID: 23991370 PMCID: 3755295

[21]

CuiYH, HuangJF, ChengS, et al. . Study on establishment and mechanics application of finite element model of bovine eye. BMC Ophthalmol, 2015, 15(1): 101 PMID: 26268321 PMCID: 4535564

[22]

SappingtonRM, ChanM, CalkinsDJ. Interleukin-6 protects retinal ganglion cells from pressure-induced death. Invest Ophthalmol Vis Sci, 2006, 47(7): 2932-2942 PMID: 16799036

[23]

LiGY, LiT, FanB, et al. . The D1 dopamine receptor agonist, SKF83959, attenuates hydrogen peroxide-induced injury in RGC-5 cells involving the extracellular signal-regulated kinase/p38 pathways. Mol Vision, 2012, 18: 2882-2895

[24]

ChenRF, ZhangT, SunYY, et al. . Oxygen-glucose deprivation regulates BACE1 expression through induction of autophagy in Neuro-2a/APP695 cells. Neural Regen Res, 2015, 10(9): 1433-1440 PMID: 26604904 PMCID: 4625509

[25]

DuS, MaoG, ZhuT, et al. . TIMP1 in conditioned media of human adipose stromal cells protects neurons against oxygenglucose deprivation injury. Neurosci Lett, 2015, 584: 56-59 PMID: 25281791

[26]

LiN, ShangL, WangS, et al. . The toxic effect of ALLN on primary rat retinal neurons. Neurotox Res, 2016

[27]

DebiasiR L, SquierM K, PikeB, et al. . Reovirus-induced apoptosis is preceded by increased cellular calpain activity and is blocked by calpain inhibitors. J Virology, 1999, 73(1): 695-701 PMID: 9847375 PMCID: 103876

[28]

JiangSH, ShangL, XueLX, et al. . The effect and underlying mechanism of Timosaponin B-II on RGC-5 necroptosis induced by hydrogen peroxide. BMC Complement Altern Med, 2014, 14: 459 PMID: 25439561 PMCID: 4258277

[29]

KajiT, BolandB, et al. . Calpain mediates calcium-induced activation of the erk1, 2 MAPK pathway and cytoskeletal phosphorylation in neurons: relevance to Alzheimer’s disease. Am J Pathol, 2004, 165(3): 795-805 PMID: 15331404 PMCID: 1618589

[30]

YamashimaT. Reconsider Alzheimer’s disease by the ‘calpain-cathepsin hypothesis’—A perspective review. Prog Neurobiol, 2013, 105: 1-23 PMID: 23499711

[31]

FifreA, SponneI, KozielV, et al. . Microtubule-associated protein MAP1A, MAP1B, and MAP2 proteolysis during soluble amyloid beta-peptide-induced neuronal apoptosis. J Biol Chem, 2006, 281(1): 229-240 PMID: 16234245

[32]

MarcilhacA, RaynaudF, ClercI, et al. . Detection and localization of calpain 3-like protease in a neuronal cell line: possible regulation of apoptotic cell death through degradation of nuclear Ikappa Balpha. Int J Biochem Cell Biol, 2006, 38(12): 2128-2140 PMID: 16938483

[33]

ZhangDW, ShaoJ, LinJ, et al. . RIP3, an energy metabolism regulator that switches TNF-induced cell death from apoptosis to necrosis. Science, 2009, 325(5938): 332-336 PMID: 19498109

[34]

DongY, BaoC, YuJ, et al. . Receptor-interacting protein kinase 3-mediated programmed cell necrosis in rats subjected to focal cerebral ischemia-reperfusion injury. Mol Med Rep, 2016, 14(1): 728-736 PMID: 27220678 PMCID: 4918559

[35]

WangL, WangT, LiH, et al. . Receptor interacting protein 3-mediated necroptosis promotes lipopolysaccharide-induced inflammation and acute respiratory distress syndrome in mice. PLoS One, 2016, 11(5): 0155723

[36]

HuangJF, ShangL, ZhangMQ, et al. . Differential neuronal expression of receptor interacting protein 3 in rat retina: involvement in ischemic stress response. BMC Neurosci, 2013, 14: 16 PMID: 23374330 PMCID: 3570281

[37]

XiongK, LiaoHD, LongLL, et al. . Necroptosis contributes to methamphetamine-induced cytotoxicity in rat cortical neurons. Toxicol In Vitro, 2016, 35: 163-168 PMID: 27288563

[38]

WuJR, WangJ, ZhouSK, et al. . Necrostatin-1 protection of dopaminergic neurons. Neural Regen Res, 2015, 10(7): 1120-1124 PMID: 26330837 PMCID: 4541245

[39]

LiJ, McQuadeT, SiemerAB, et al. . The RIP1/RIP3 necrosome forms a functional amyloid signaling complex required for programmed necrosis. Cell, 2012, 150(2): 339-350 PMID: 22817896 PMCID: 3664196

[40]

DingW, ShangL, HuangJF, et al. . Receptor interacting protein 3-induced RGC-5 cell necroptosis following oxygen glucose deprivation. BMC Neurosci, 2015, 16: 49 PMID: 26238997 PMCID: 4524047

[41]

SosnaJ, VoigtS, MathieuS, et al. . The proteases HtrA2/Omi and UCH-L1 regulate TNF-induced necroptosis. Cell Commun Signal, 2013, 11: 76 PMID: 24090154 PMCID: 3850939

[42]

ZhaoXM, ChenZ, ZhaoJB, et al. . Hsp90 modulates the stability of MLKL and is required for TNF-induced necroptosis. Cell Death Dis, 2016, 7: e2089 PMID: 26866270 PMCID: 4849146

[43]

JacobsenAV, LowesKN, TanzerMC, et al. . HSP90 activity is required for MLKL oligomerisation and membrane translocation and the induction of necroptotic cell death. Cell Death Dis, 2016, 7: e2051 PMID: 26775703 PMCID: 4816171

[44]

LinkermannA D, ZenF, WeinbergJ, et al. . Programmed necrosis in acute kidney injury. Nephrol Dial Transplant, 2012, 27(9): 3412-3419 PMID: 22942173

[45]

SosnaJ, VoigtS, MathieuS, et al. . TNF-induced necroptosis and PARP-1-mediated necrosis represent distinct routes to programmed necrotic cell death. Cell Mol Life Sci, 2013, 71(2): 331-348 PMID: 23760205 PMCID: 3889832

[46]

AvernaM, StifaneseR, DeTR, et al. . Regulation of calpain activity in rat brain with altered Ca2+ homeostasis. J Biol Chem, 2007, 282(4): 2656-2665 PMID: 17135258

[47]

ShiodaN, MoriguchiS, ShrasakiY, et al. . Generation of constitutively active calcineurin by Calpain contributes to delayed neuronal death following mouse brain ischemia. J Neurochem, 2006, 98(1): 310-320 PMID: 16805817

[48]

DasA, WallaceGC, HolmesC, et al. . Hippocampal tissue of patients with refractory temporal lobe epilepsy is associated with astrocyte activation, inflammation, and altered expression of channels and receptors. Neuroscience, 2012, 220: 237-246 PMID: 22698689 PMCID: 3412889

[49]

MatsumotoM, BabaY. Role of STIM-dependent Ca2+ influx in regulatory B cells. Yakugaku Zasshi, 2013, 133(4): 419-425 PMID: 23546586

[50]

McKernanDP, GuerinM O, BrienCJ, et al. . A key role for calpains in retinal ganglion cell death. Invest Ophthalmol Vis Sci, 2007, 48(12): 5420-5430 PMID: 18055788

[51]

BollinoD, BalanI, AurelianL. Valproic acid induces neuronal cell death through a novel calpain-dependent necroptosis pathway. J Neurochem, 2015, 133(2): 174-186 PMID: 25581256 PMCID: 4393803

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