Mitochondrial DAMPs-dependent inflammasome activation during aging induces vascular smooth muscle cell dysfunction and aortic stiffness in low aerobic capacity rats

Chandrika Canugovi , Mark D. Stevenson , Aleksandr E. Vendrov , Andrey Lozhkin , Steven L. Britton , Lauren G. Koch , Marschall S. Runge , Nageswara R. Madamanchi

The Journal of Cardiovascular Aging ›› 2022, Vol. 2 ›› Issue (4) : 47

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The Journal of Cardiovascular Aging ›› 2022, Vol. 2 ›› Issue (4) :47 DOI: 10.20517/jca.2022.35
Original Research Article

Mitochondrial DAMPs-dependent inflammasome activation during aging induces vascular smooth muscle cell dysfunction and aortic stiffness in low aerobic capacity rats

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Abstract

Introduction: Low aerobic exercise capacity is an independent risk factor for cardiovascular disease (CVD) and a predictor of premature death. In combination with aging, low aerobic capacity lowers the threshold for CVD.

Aim: Since low aerobic capacity and aging have been linked to mitochondrial oxidative stress and dysfunction, we investigated whether aged Low-Capacity Runner (LCR) rats (27 months) had vascular dysfunction compared to High-Capacity Runner (HCR) rats.

Methods and Results: A significant decrease in aortic eNOS levels and vasodilation as well as an increase in aortic collagen and stiffness were observed in aged LCR rats compared to age and sex-matched HCR rats. There was a correlation between age-related vascular dysfunction and increased levels of ROS and DNA damage in aortas of LCR rats. Moreover, mitochondrial oxygen consumption, membrane potential, ATP levels, and mitophagy were lower in VSMCs of aged LCR rats. VSMCs from older LCR rats showed AIM2 inflammasome activation. VSMCs of young (4 months old) LCR rats treated with purified mitochondrial damage-associated molecular patterns (DAMP) recapitulated an inflammasome activation phenotype similar to that seen in aged rat VSMCs. Rapamycin, a potent immunosuppressant, induced mitophagy, stimulated electron transport chain activity, reduced inflammasome activity, mitochondrial ROS and DAMP levels in VSMCs from aged LCR rats. MitoTEMPO, a mitochondrial ROS scavenger, was similarly effective on VSMCs from aged rats.

Conclusion: The findings suggest that impaired mitophagy and inflammasome activation in the vasculature under conditions of low aerobic exercise capacity during aging results in arterial dysfunction and aortic stiffness. In older adults with reduced aerobic capacity, mitochondrial antioxidants, mitophagy induction, and inflammasome inhibition may be effective therapeutic strategies for enhancing vascular health.

Keywords

Oxidative stress / DNA damage / AIM2 inflammasome / mitophagy / mitochondrial bioenergetics / VSMC

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Chandrika Canugovi, Mark D. Stevenson, Aleksandr E. Vendrov, Andrey Lozhkin, Steven L. Britton, Lauren G. Koch, Marschall S. Runge, Nageswara R. Madamanchi. Mitochondrial DAMPs-dependent inflammasome activation during aging induces vascular smooth muscle cell dysfunction and aortic stiffness in low aerobic capacity rats. The Journal of Cardiovascular Aging, 2022, 2(4): 47 DOI:10.20517/jca.2022.35

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References

[1]

Blair SN,Kohl HW.Influences of cardiorespiratory fitness and other precursors on cardiovascular disease and all-cause mortality in men and women.JAMA1996;276:205-10

[2]

Church TS,Earnest CP.Exercise capacity and body composition as predictors of mortality among men with diabetes.Diabetes Care2004;27:83-8

[3]

Gulati M,Arnsdorf MF.Exercise capacity and the risk of death in women: the St James Women Take Heart Project.Circulation2003;108:1554-9

[4]

Ladenvall P,Mandalenakis Z.Low aerobic capacity in middle-aged men associated with increased mortality rates during 45 years of follow-up.Eur J Prev Cardiol2016;23:1557-64

[5]

Myers J,Froelicher V,Partington S.Exercise capacity and mortality among men referred for exercise testing.N Engl J Med2002;346:793-801

[6]

Fleg JL.Age-associated changes in cardiovascular structure and function: a fertile milieu for future disease.Heart Fail Rev2012;17:545-54

[7]

Britton SL.Animal genetic models for complex traits of physical capacity.Exerc Sport Sci Rev2001;29:7-14

[8]

Koch LG.Artificial selection for intrinsic aerobic endurance running capacity in rats.Physiol Genomics2001;5:45-52

[9]

Koch LG,Qi N.Intrinsic aerobic capacity sets a divide for aging and longevity.Circ Res2011;109:1162-72 PMCID:PMC3236084

[10]

Wisløff U,Ellingsen O.Cardiovascular risk factors emerge after artificial selection for low aerobic capacity.Science2005;307:418-20

[11]

Esposito LA,Panov A,Wallace DC.Mitochondrial disease in mouse results in increased oxidative stress.Proc Natl Acad Sci USA1999;96:4820-5 PMCID:PMC21775

[12]

Madamanchi NR.Mitochondrial dysfunction in atherosclerosis.Circ Res2007;100:460-73

[13]

Bonnard C,Peyrol S.Mitochondrial dysfunction results from oxidative stress in the skeletal muscle of diet-induced insulin-resistant mice.J Clin Invest2008;118:789-800 PMCID:PMC2176186

[14]

Yokota T,Hirabayashi K.Oxidative stress in skeletal muscle impairs mitochondrial respiration and limits exercise capacity in type 2 diabetic mice.Am J Physiol Heart Circ Physiol2009;297:H1069-77

[15]

Mercer JR,Figg N.DNA damage links mitochondrial dysfunction to atherosclerosis and the metabolic syndrome.Circ Res2010;107:1021-31 PMCID:PMC2982998

[16]

Canugovi C,Vendrov AE.Increased mitochondrial NADPH oxidase 4 (NOX4) expression in aging is a causative factor in aortic stiffening.Redox Biol2019;26:101288 PMCID:PMC6831838

[17]

Madamanchi NR,Runge MS.Oxidative stress in atherogenesis and arterial thrombosis: the disconnect between cellular studies and clinical outcomes.J Thromb Haemost2005;3:254-67

[18]

Maynard S,Scheibye-Knudsen M,Bohr VA.DNA damage, DNA repair, aging, and neurodegeneration.Cold Spring Harb Perspect Med2015;5:a025130 PMCID:PMC4588127

[19]

Moon SK,Madamanchi N.Aging, oxidative responses, and proliferative capacity in cultured mouse aortic smooth muscle cells.Am J Physiol Heart Circ Physiol2001;280:H2779-88

[20]

Vendrov AE,Alahari S.Attenuated superoxide dismutase 2 activity induces atherosclerotic plaque instability during aging in hyperlipidemic mice.J Am Heart Assoc2017;6:e006775 PMCID:PMC5721769

[21]

Lemasters JJ.Selective mitochondrial autophagy, or mitophagy, as a targeted defense against oxidative stress, mitochondrial dysfunction, and aging.Rejuvenation Res2005;8:3-5

[22]

Kubli DA.Mitochondria and mitophagy: the yin and yang of cell death control.Circ Res2012;111:1208-21 PMCID:PMC3538875

[23]

Caielli S,Domic B.Oxidized mitochondrial nucleoids released by neutrophils drive type I interferon production in human lupus.J Exp Med2016;213:697-713 PMCID:PMC4854735

[24]

Choudhuri S,Garg NJ.Mitochondrial regulation of macrophage response against pathogens.Front Immunol2020;11:622602 PMCID:PMC7925834

[25]

Picca A,Leeuwenburgh C.Circulating mitochondrial DNA at the crossroads of mitochondrial dysfunction and inflammation during aging and muscle wasting disorders.Rejuvenation Res2018;21:350-9 PMCID:PMC6103247

[26]

Picca A,Leeuwenburgh C.Fueling inflamm-aging through mitochondrial dysfunction: mechanisms and molecular targets.Int J Mol Sci2017;18:933 PMCID:PMC5454846

[27]

Kapetanovic R,Sweet MJ.Innate immune perturbations, accumulating DAMPs and inflammasome dysregulation: a ticking time bomb in ageing.Ageing Res Rev2015;24:40-53

[28]

Jheng HF,Guo SM.Mitochondrial fission contributes to mitochondrial dysfunction and insulin resistance in skeletal muscle.Mol Cell Biol2012;32:309-19 PMCID:PMC3255771

[29]

Marseglia L,D’Angelo G.Oxidative stress in obesity: a critical component in human diseases.Int J Mol Sci2014;16:378-400 PMCID:PMC4307252

[30]

LaRocca TJ,Henson GD.Mitochondrial quality control and age-associated arterial stiffening.Exp Gerontol2014;58:78-82 PMCID:PMC4252265

[31]

Zanoli L,Empana JP.Vascular consequences of inflammation: a position statement from the ESH Working Group on Vascular Structure and Function and the ARTERY Society.J Hypertens2020;38:1682-98 PMCID:PMC7610698

[32]

Lakatta EG.Arterial and cardiac aging: major shareholders in cardiovascular disease enterprises: part I: aging arteries: a “set up” for vascular disease.Circulation2003;107:139-46

[33]

Alves AJ,Lopes S.Arterial stiffness is related to impaired exercise capacity in patients with coronary artery disease and history of myocardial infarction.Heart Lung Circ2019;28:1614-21

[34]

Vaitkevicius PV,Engel JH.Effects of age and aerobic capacity on arterial stiffness in healthy adults.Circulation1993;88:1456-62

[35]

Aroor AR,Sowers JR.Cellular mechanisms underlying obesity-induced arterial stiffness.Am J Physiol Regul Integr Comp Physiol2018;314:R387-98 PMCID:PMC5899249

[36]

Bender SB,Garro M.Regional variation in arterial stiffening and dysfunction in Western diet-induced obesity.Am J Physiol Heart Circ Physiol2015;309:H574-82 PMCID:PMC4537938

[37]

Trapnell C,Salzberg SL.TopHat: discovering splice junctions with RNA-Seq.Bioinformatics2009;25:1105-11 PMCID:PMC2672628

[38]

Ge SX,Yao R.iDEP: an integrated web application for differential expression and pathway analysis of RNA-Seq data.BMC Bioinform2018;19:534 PMCID:PMC6299935

[39]

Raudvere U,Kuzmin I.g:Profiler: a web server for functional enrichment analysis and conversions of gene lists (2019 update).Nucleic Acids Res2019;47:W191-8 PMCID:PMC6602461

[40]

Vendrov AE,Smith A.NOX4 NADPH oxidase-dependent mitochondrial oxidative stress in aging-associated cardiovascular disease.Antioxid Redox Signal2015;23:1389-409 PMCID:PMC4692134

[41]

Akula S,Leipzig ND.Fluorinated methacrylamide chitosan hydrogels enhance cellular wound healing processes.Ann Biomed Eng2017;45:2693-702 PMCID:PMC5665717

[42]

Santos JH,Mandavilli BS.Quantitative PCR-based measurement of nuclear and mitochondrial DNA damage and repair in mammalian cells. In: Henderson DS, editor. DNA Repair Protocols. Humana Press: Totowa. 2006. pp. 183-99.

[43]

Arribas SM,Bellingham C.Heightened aberrant deposition of hard-wearing elastin in conduit arteries of prehypertensive SHR is associated with increased stiffness and inward remodeling.Am J Physiol Heart Circ Physiol2008;295:H2299-307

[44]

Gutiérrez-Arzapalo PY,Ramiro-Cortijo D.Role of fetal nutrient restriction and postnatal catch-up growth on structural and mechanical alterations of rat aorta.J Physiol2018;596:5791-806 PMCID:PMC6265550

[45]

Laurent S,Asmar R.Aortic stiffness is an independent predictor of all-cause and cardiovascular mortality in hypertensive patients.Hypertension2001;37:1236-41

[46]

Sutton-Tyrrell K,Boudreau RM.Elevated aortic pulse wave velocity, a marker of arterial stiffness, predicts cardiovascular events in well-functioning older adults.Circulation2005;111:3384-90

[47]

Mitchell GF,Vasan RS.Arterial stiffness and cardiovascular events: the framingham heart study.Circulation2010;121:505-11 PMCID:PMC2836717

[48]

Soucy KG,Benjo A.Impaired shear stress-induced nitric oxide production through decreased NOS phosphorylation contributes to age-related vascular stiffness.J Appl Physiol2006;101:1751-9

[49]

Fleenor BS,Durrant JR,Seals DR.Arterial stiffening with ageing is associated with transforming growth factor-β1-related changes in adventitial collagen: reversal by aerobic exercise.J Physiol2010;588:3971-82 PMCID:PMC3000586

[50]

Zieman SJ,Kass DA.Mechanisms, pathophysiology, and therapy of arterial stiffness.Arterioscler Thromb Vasc Biol2005;25:932-43

[51]

Saura M,Herranz B.Nitric oxide regulates transforming growth factor-beta signaling in endothelial cells.Circ Res2005;97:1115-23

[52]

Crosas-Molist E,López-Luque J.Vascular smooth muscle cell phenotypic changes in patients with Marfan syndrome.Arterioscler Thromb Vasc Biol2015;35:960-72

[53]

Gioscia-Ryan RA,Cuevas LM,Murphy MP.Mitochondria-targeted antioxidant therapy with MitoQ ameliorates aortic stiffening in old mice.J Appl Physiol2018;124:1194-202 PMCID:PMC6008077

[54]

Rossman MJ,Steward CAC.Chronic supplementation with a mitochondrial antioxidant (MitoQ) improves vascular function in healthy older adults.Hypertension2018;71:1056-63 PMCID:PMC5945293

[55]

Zhou RH,Tchivilev I.Mitochondrial oxidative stress in aortic stiffening with age: the role of smooth muscle cell function.Arterioscler Thromb Vasc Biol2012;32:745-55 PMCID:PMC3288772

[56]

Lacolley P,Nicoletti A,Michel JB.The vascular smooth muscle cell in arterial pathology: a cell that can take on multiple roles.Cardiovasc Res2012;95:194-204

[57]

Owens GK,Wamhoff BR.Molecular regulation of vascular smooth muscle cell differentiation in development and disease.Physiol Rev2004;84:767-801

[58]

Ballinger SW,Knight-Lozano CA.Mitochondrial integrity and function in atherogenesis.Circulation2002;106:544-9

[59]

Wenzel P,Kienhöfer J.Manganese superoxide dismutase and aldehyde dehydrogenase deficiency increase mitochondrial oxidative stress and aggravate age-dependent vascular dysfunction.Cardiovasc Res2008;80:280-9 PMCID:PMC3937602

[60]

Crowley LC,Waterhouse NJ.Measuring mitochondrial transmembrane potential by TMRE staining.Cold Spring Harb Protoc2016;2016:pdb.prot087361

[61]

Stuart JA.Mitochondrial DNA maintenance and bioenergetics.Biochim Biophys Acta2006;1757:79-89

[62]

Iwashita H,Nagahora N.Live cell imaging of mitochondrial autophagy with a novel fluorescent small molecule.ACS Chem Biol2017;12:2546-51

[63]

Dai J,Li L,Chai Y.Autophagy inhibition contributes to ROS-producing NLRP3-dependent inflammasome activation and cytokine secretion in high glucose-induced macrophages.Cell Physiol Biochem2017;43:247-56

[64]

Ponomareva L,Duan X.AIM2, an IFN-inducible cytosolic DNA sensor, in the development of benign prostate hyperplasia and prostate cancer.Mol Cancer Res2013;11:1193-202

[65]

Kong DH,Kim MR,Lee S.Emerging roles of vascular cell adhesion molecule-1 (VCAM-1) in immunological disorders and cancer.Int J Mol Sci2018;19:1057 PMCID:PMC5979609

[66]

Wang Y,Teng M.Dihydroartemisinin inhibits activation of the AIM2 inflammasome pathway and NF-κB/HIF-1α/VEGF pathway by inducing autophagy in A431 human cutaneous squamous cell carcinoma cells.Int J Med Sci2021;18:2705-15 PMCID:PMC8176175

[67]

Lesniewski LA,Walker AE.Dietary rapamycin supplementation reverses age-related vascular dysfunction and oxidative stress, while modulating nutrient-sensing, cell cycle, and senescence pathways.Aging Cell2017;16:17-26 PMCID:PMC5242306

[68]

Ru H,Zhao L.Structural basis for termination of AIM2-mediated signaling by p202.Cell Res2013;23:855-8 PMCID:PMC3674390

[69]

Linton PJ,Sengstock D,Gottlieb RA.This old heart: cardiac aging and autophagy.J Mol Cell Cardiol2015;83:44-54 PMCID:PMC4459942

[70]

Kahveci AS,Kahveci A.Oxidative stress and mitochondrial abnormalities contribute to decreased endothelial nitric oxide synthase expression and renal disease progression in early experimental polycystic kidney disease.Int J Mol Sci2020;21:1994 PMCID:PMC7139316

[71]

Morris EM,Ruegsegger GN.Intrinsic high aerobic capacity in male rats protects against diet-induced insulin resistance.Endocrinology2019;160:1179-92 PMCID:PMC6482035

[72]

Sansbury BE,Tang Y.Overexpression of endothelial nitric oxide synthase prevents diet-induced obesity and regulates adipocyte phenotype.Circ Res2012;111:1176-89 PMCID:PMC3707504

[73]

Valerio A,Cozzi V.TNF-α downregulates eNOS expression and mitochondrial biogenesis in fat and muscle of obese rodents.J Clin Invest2006;116:2791-8 PMCID:PMC1564431

[74]

Su X,Terrando N.Dysfunction of inflammation-resolving pathways is associated with exaggerated postoperative cognitive decline in a rat model of the metabolic syndrome.Mol Med2013;18:1481-90 PMCID:PMC3576477

[75]

Gu Q,Zhang XF,Liu JD.Chronic aerobic exercise training attenuates aortic stiffening and endothelial dysfunction through preserving aortic mitochondrial function in aged rats.Exp Gerontol2014;56:37-44

[76]

Aon MA,Juhaszova M.Mitochondrial health is enhanced in rats with higher vs. lower intrinsic exercise capacity and extended lifespan.NPJ Aging Mech Dis2021;7:1 PMCID:PMC7782588

[77]

López-Otín C,Partridge L,Kroemer G.The hallmarks of aging.Cell2013;153:1194-217 PMCID:PMC3836174

[78]

Tomaru U,Ishizu A.Decreased proteasomal activity causes age-related phenotypes and promotes the development of metabolic abnormalities.Am J Pathol2012;180:963-72

[79]

Doblado L,Rey C.Mitophagy in human diseases.Int J Mol Sci2021;22:3903 PMCID:PMC8069949

[80]

Lee S,Liu X.Role of glucose metabolism and ATP in maintaining PINK1 levels during Parkin-mediated mitochondrial damage responses.J Biol Chem2015;290:904-17 PMCID:PMC4294517

[81]

D’Amico D,Potenza F.The RNA-binding protein PUM2 impairs mitochondrial dynamics and mitophagy during aging.Mol Cell2019;73:775-787.e10 PMCID:PMC6396316

[82]

Galizzi G,Amato A.Altered insulin pathway compromises mitochondrial function and quality control both in in vitro and in vivo model systems.Mitochondrion2021;60:178-88

[83]

Egan DF,Mihaylova MM.Phosphorylation of ULK1 (hATG1) by AMP-activated protein kinase connects energy sensing to mitophagy.Science2011;331:456-61 PMCID:PMC3030664

[84]

Wang XD,Sun Y.Activation of AMPK restored impaired autophagy and inhibited inflammation reaction by up-regulating SIRT1 in acute pancreatitis.Life Sci2021;277:119435

[85]

Choi J,Demarest TG.Brain diabetic neurodegeneration segregates with low intrinsic aerobic capacity.Ann Clin Transl Neurol2014;1:589-604 PMCID:PMC4184561

[86]

Wan W,Fang P.Regulation of mitophagy by sirtuin family proteins: a vital role in aging and age-related diseases.Front Aging Neurosci2022;14:845330 PMCID:PMC9124796

[87]

Karvinen S,Vainio P.Effects of intrinsic aerobic capacity, aging and voluntary running on skeletal muscle sirtuins and heat shock proteins.Exp Gerontol2016;79:46-54

[88]

Kauppila TES,Larsson NG.mammalian mitochondria and aging: an update.Cell Metab2017;25:57-71

[89]

Goldberg EL.Drivers of age-related inflammation and strategies for healthspan extension.Immunol Rev2015;265:63-74 PMCID:PMC4400872

[90]

Cruz CS, Kang MJ. Mitochondrial dysfunction and damage associated molecular patterns (DAMPs) in chronic inflammatory diseases.Mitochondrion2018;41:37-44 PMCID:PMC5988941

[91]

Gurung P,Kanneganti TD.Mitochondria: diversity in the regulation of the NLRP3 inflammasome.Trends Mol Med2015;21:193-201 PMCID:PMC4352396

[92]

Licandro G,Beretta O.The NLRP3 inflammasome affects DNA damage responses after oxidative and genotoxic stress in dendritic cells.Eur J Immunol2013;43:2126-37

[93]

Crane DD,Wehrly TD.Mitochondrial ROS potentiates indirect activation of the AIM2 inflammasome.Front Microbiol2014;5:438 PMCID:PMC4138581

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