Mutations that cause a reduction in protein kinase A (PKA) activity have been shown to extend lifespan in yeast. Loss of function of mammalian RIIβ, a regulatory subunit of PKA expressed in brain and adipose tissue, results in mice that are lean and insulin sensitive. It was therefore hypothesized that RIIB null (RIIβ?/?) mice would express anti-aging phenotypes. We conducted lifespan studies using 40 mutant and 40 wild type (WT) littermates of equal gender numbers and found that both the median and maximum lifespans were significantly increased in mutant males compared to WT littermates. The median lifespan was increased from 884 days to 1005 days (p = 0.006 as determined by the log rank test) and the 80% lifespan (defined here as 80% deaths) was increased from 941 days to 1073 days (p = 0.004 as determined by the Wang-Allison test). There was no difference in either median or 80% lifespan in female genotypes. WT mice of both genders became increasingly obese with age, while mutant mice maintained their lean phenotype into old age. Adiposity was found to correlate with lifespan for males only. 50% of male mice between 30 and 35 g, corresponding to about 5% body fat, for either genotype lived over 1000 days. No male mouse outside of this weight range achieved this lifespan. During their last month of life, WT mice began losing weight (a total of 8% and 15% of body weight was lost for males and females, respectively), but RIIβ?/? male mice maintained their lean body mass to end of life. This attenuation of decline was not seen in female mutant mice. Old male mutant mice were insulin sensitive throughout their life. Both genders showed modestly lower blood glucose levels in old mutants compared to WT. Male mutants were also resistant to age-induced fatty liver. Pathological assessment of tissues from end of life male mutant mice showed a decrease in tumor incidence, decreased severity of renal lesions, and a trend towards a decrease in age-related cardiac pathology. These findings help establish the highly conserved nature of PKA and suggest that disruption of PKA affects physiological mechanisms known to be associated with healthy aging.
References
[1]
McKnight GS, Cummings DE, Amieux PS, Sikorski MA, Brandon EP, et al. (1998) Cyclic AMP, PKA, and the physiological regulation of adiposity. Recent Prog Hormone Res 53: 139–161.
[2]
Longo VD (2003) The Ras and Sch9 pathways regulate stress resistance and longevity. Exp Gerontol 38: 807–811.
[3]
Lin SJ, Defossez PA, Guarente L (2000) Requirement of NAD and SIR2 for life-span extension by calorie restriction in Saccharomyces cerevisiae. Science 289: 2126–2128.
Yan L, Vatner DE, O'Connor P, Ivessa A, Ge H, et al. (2007) Type 5 adenylyl cyclase disruption increases longevity and protects against stress. Cell 130: 247–258.
[6]
Schreyer SA, Cummings DE, McKnight GS, LeBoeuf RC (2001) Mutation of the RIIβ subunit of protein kinase A prevents diet-induced insulin resistance and dyslipidemia in mice. Diabetes 50: 2555–2562.
[7]
Cummings DE, Brandon EP, Planas JV, Motamed K, Idzerda RL, et al. (1996) Genetically lean mice result from targeted disruption of the RIIB subunit of protein kinase A. Nature 382: 622–626.
[8]
Amieux PS, Cummings DE, Motamed K, Brandon EP, Wailes LA, et al. (1997) Compensatory regulation of RIα protein levels in protein kinase A mutant mice. J Biol Chem 272: 3993–3998.
[9]
Planas JV, Cummings DE, Idzerda RL, McKnight GS (1999) Mutation of the RIIβ subunit of protein kinase A differentially affects lipolysis but not gene induction in white adipose tissue. J Biol Chem 274: 36281–36287.
[10]
Brandon EP, Logue SF, Adams MR, Qi M, Sullivan SP, et al. (1998) Defective motor behaviour and neural gene expression in RIIβ-protein kinase A mutant mice. J Neurosc 18: 3639–3649.
[11]
Sohal RS, Weindruch R (1996) Oxidative stress, caloric restriction, and aging. Science 273: 59–63.
[12]
Roth GS, Ingram DK, Lane MA (1999) Caloric restriction in primates: will it work and how will we know? J Am Geriatr Soc 47: 896–903.
[13]
Brown-Borg HM, Borg KE, Meliska CJ, Bartke A (1996) Dwarf mice and the ageing process. Nature 384: 33.
[14]
Clancy DJ, Gems D, Harshman LG, Oldham S, Stocker H, Hafen E, Leevers SJ, Partridge L (2001) Extension of life-span by loss of CHICO, a Drosophila insulin receptor substrate protein. Science 292: 104–106.
[15]
Tatar M, Kopelman A, Epstein D, Tu MP, Yin CM, Garofalo RS (2001) A mutant Drosophila insulin receptor homolog that extends life-span and impairs neuroendocrine function. Science 292: 107–110.
[16]
Gatford KL, Egan AR, Clarke IJ, Owens PC (1998) Sexual dimorphism of the somatotrophic axis. J Endocrinol 157: 373–389.
[17]
Maurus N, Rogol AD, Haymond MW, Veldhuis JD (1996) Sex steriods, growth hormone, insulin-like growth factor-1: neuroendocrine and metabolic regulation in puberty. Horm Res 45: 74–80.
[18]
Wizemann TM, Pardue M (2001) Exploring the biological contributions to human health: does sex matter? Washington, DC: National Academies Press.
[19]
Arnold AP (2002) Concepts of genetic and hormonal induction of vertebrate sexual differentiation in the twentieth century, with special reference to the brain. In: Pfaff D, Arnold AP, Etgen AM, Fahrbach SE, Rubin RT, editors. Hormones, brain, and behaviour. San Diego: Academic Press.
[20]
Perrot-Sinal TS (2009) Do these genes make me look fat? Endocrinol 150: 1075–1077.
[21]
Yang X, Schadt EE, Wang S, Wang H, Arnold AP, Ingram-Drake L, Drake TA, Lusis AJ (2006) Tissue-specific expression and regulation of sexually dimorphic genes in mice. Genome Res 16: 995–1004.
[22]
Nas AV, Thakurta DG, Wang SS, Yehya N, Horvath S, Zhang B, Ingram-Drake L, Chaudhuri G, Schadt EE, Drake TA, Arnold AP, Lusis AJ (2009) Elucidating the role of gonadal hormones in sexually dimorphic gene coexpression networks. Gen Endocrinol 150: 1235–1249.
[23]
Blouin K, Boivin A, Tchernof A (2008) Androgens and body fat distribution. J Steroid Biochem and Mol Bol 108: 272–280.
[24]
Cefalu WT, Wang ZQ, Werbel S, Bell-Farrow A, Crouse JR 3rd, Hinson WH, Terry JG, Anderson R (1995) Contribution of visceral fat mass to the insulin resistance of aging. Metabolism 44: 954–959.
[25]
Shimokata H, Tobin JD, Muller DC, Elahi D, Coon PJ, Andres R (1989) Studies in the distribution of body fat. I. Effects of age, sex, and obesity. J Gerontol 44: M66–M73.
[26]
Ferrannini E, Natali A, Capaldo B, Lehtovirta M, Jacob S, Yki-Jarvinen H (1997) Insulin resistance, hyperinsulinemia, and blood pressure: role of age and obesity: European Group for the Study of Insulin Resistance (EGIR). Hypertens 30: 1144–1149.
[27]
Fujimoto WY, Berstrom RW, Boyko EJ, Chen KW, Leonetti DL, Newll-Morris L, Shofer JB, Wahl PW (1999) Visceral adiposity and incident coronary heart disease in Japanese-American men: the 10-year follow-up results of the Seattle Japanese-American Community Diabetes Study. Diabetes Care 22: 1808–1812.
[28]
Lamarche B (1998) Abdominal obesity and its metabolic complications: implications for the risk of ischaemic heart disease. Coron Artery Dis 9: 473–481.
[29]
Gabriely I, Ma XH, Yang XM, Atzmon G, Rajala MW, Berg AH, Scherer P, Rossetti L, Barzilai N (2002) Removal of visceral fat prevents insulin resistance and glucose intolerance of aging: An adipokine-mediated process? Diabetes 51: 2951–2958.
[30]
Lakka H-M, Laaksonen D, Lakka T, Niskanen LK, Kumpusalo E, Tuomilehto J, Salonen JT (2002) The metabolic syndrome and total and cardiovascular disease mortality in middle-aged men. JAMA 288: 2709–2716.
[31]
Moller DE, Kaufman KD (2005) Metabolic syndrome: A clinical and molecular perspective. Annu Rev Med 56: 45–62.
[32]
Wallace AM, McMahon AD, Packard CJ, Kelly A, Shepard J, Gaw A, Sattar N (2001) Plasma leptin and the risk of cardiovascular disease in the West of Scotland Coronary Prevention Study (WOSCOPS). Circ 104: 3052–3056.
[33]
S?derberg S, Stegmayr B, Stenlund H, Sj?str?m L-G, ?gren ?, Johansson L, Weinehall L, Olsson T (2004) Leptin, but not adiponectin, predicts stroke in males. J Int Med 256: 128–136.
[34]
S?derberg S, Colquhoun D, Keech A, Yallop J, Barnes EH, Pollicino C, Simes J, Tonkin AM, Nestel P for the LIPID Study Investigators (2009) Leptin, but not adiponectin, is a predictor of recurrent cardiovascular events in men: results from the LIPID study. Int J Obesity 33: 123–130.
[35]
Lawlor DA, Smith GD, Kelly A, Sattar N, Ebrahim S (2007) Leptin and coronary heart disease risk: prospective case control study of British women. Obesity 15: 1694–1701.
[36]
Harper JM, Wolf N, Galecki AT, Pinkosky SL, Miller RA (2003) Hormone levels and cataract scores as sex-specific, mid-life predictors of longevity in genetically heterogeneous mice. Mech Ageing Dev 124: 801–810.
[37]
Blüher M, Michael MD, Peroni OD, Ueki K, Carter N, Kahn BB, Kahn CR (2002) Adipose tissue selective insulin receptor knockout protects against obesity and obesity-related glucose intolerance. Dev Cell 3: 25–38.
[38]
Blüher M, Kahn BB, Kahn CR (2003) Extended longevity in mice lacking the insulin receptor in adipose tissue. Science 299: 572–574.
[39]
Neuschwanter-Tetri BA, Caldwell SH (2003) Nonalcoholic steatohepatitis: summary of an AASLD single topic conference. Hepatology 37: 1202–1219.
[40]
Yki-J?rvinen H (2005) Fat in the liver and insulin resistance. Ann Med 37: 347–356.
[41]
Juanin J, Bochud M, Marques-Vidal PM, Vollenweider P, Waeber G, Vincent M, Paccaud F (2008) Obesity-related phenotypes are associated to parental longevity in a Swiss population-based study. Eur J Cardiovasc Prev Rehab 15: S79.
[42]
Dominici FP, Hauck S, Argentino DP, Bartke A, Turyn D (2002) Increased insulin sensitivity and upregulation of insulin receptor, insulin receptor substrate (IRS)-1 and IRS-2 in liver of Ames dwarf mice. J Endocrinol 173: 81–94.
[43]
Flurkey K, Papaconstantinou J, Harrison DE (2002) The Snell dwarf mutation Pit1dw can increase life span in mice. Mech Ageing Dev 123: 121–130.
[44]
Selman C, Lingard S, Choudhury AI, Batterham RL, Claret M, Clements M, Ramadani F, Okkenhaug K, Schuster E, Blanc E, Piper MD, Al-Qassab H, Speakman JR, Carmignac D, Robinson IC, Thornton JM, Gems D, Partridge L, Withers DJ (2007) Evidence for lifespan extension and delayed age-related biomarkers in insulin receptor substrate 1 null mice. FASEB J 22: 807–818.
[45]
Taguchi A, Wartschow LM, White MF (2007) Brain IRS2 signaling coordinates life span and nutrient homeostasis. Science 317: 369–372.
[46]
Lakatta EG, Levy D (2003) Arterial and cardiac aging: Major shareholders in cardiovascular disease enterprises: Part II: The aging heart in health: Links to heart disease. Circ Res 107: 346–354.
[47]
Redfield MM, Jacobsen SJ, Burnett JC Jr, Mahoney DW, Bailey KR, Rodeheffer RJ (2003) Burden of systolic and diastolic ventricular dysfunction in the community: appreciating the scope of the heart failure epidemic. JAMA 289: 194–202.
[48]
Dai DF, Santana LF, Vermulst M, Tomazela DM, Emond MJ, Maccoss MJ, Gollahon K, Martin GM, Loeb LA, Ladiges WC, Rabinovitch PS (2009) Overexpression of catalase targeted to mitochondria attenuates murine cardiac aging. Circulation. in press.
[49]
Fried LP, Walston J (1999) Frailty and failure to thrive. In: Hazzard WR, Blass JP, Ettinger WH, Halter B, Ouslander JG, editors. Principles of geriatric medicine and gerontology (3rd ed). New York: McGraw-Hill.
[50]
Verdery RB (1997) Clinical evaluation of failure to thrive in older people. Clin Geriatr Med 13: 769–78.
Doherty TJ, Vandervoort AA, Brown WF (1993) Effects of ageing on the motor unit: a brief review. Can J Appl Physiol 18: 331–358.
[53]
Grimby G, Saltin B (1983) The ageing muscle. Clin Physiol 3: 209–218.
[54]
Roos MR, Rice CL, Vandervoort AA (1997) Age-related changed in motor unit function. Muscle Nerve 20: 679–690.
[55]
Vandervoort AA, Hayes KC (2002) Plantarflexion muscle function in young and elderly women. Eur J Appl Physiol 58: 389–394.
[56]
Treuting PM, Linford NJ, Knoblaugh SE, Emond MJ, Morton JF, Martin GM, Rabinovitch PS, Ladiges WC (2008) Reduction of age-associated pathology in old mice by overexpression of catalase in mitochondria. J Gerontol A Biol Sci Med Sci 63: 813–822.
[57]
Schriner SE, Linford NJ, Martin GM, Treuting P, Ogburn CE, Emond M, Coskun PE, Ladiges W, Wolf N, Van Remmen H, Wallace DC, Rabinovitch PS (2005) Extension of murine life span by overexpression of catalase targeted to mitochondria. Science 308: 1909–1911.