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. 2012 Dec 13:3:288.
doi: 10.3389/fgene.2012.00288. eCollection 2012.

Metabolic characteristics of long-lived mice

Affiliations

Metabolic characteristics of long-lived mice

Andrzej Bartke et al. Front Genet. .

Abstract

Genetic suppression of insulin/insulin-like growth factor signaling (IIS) can extend longevity in worms, insects, and mammals. In laboratory mice, mutations with the greatest, most consistent, and best documented positive impact on lifespan are those that disrupt growth hormone (GH) release or actions. These mutations lead to major alterations in IIS but also have a variety of effects that are not directly related to the actions of insulin or insulin-like growth factor I. Long-lived GH-resistant GHR-KO mice with targeted disruption of the GH receptor gene, as well as Ames dwarf (Prop1(df)) and Snell dwarf (Pit1(dw)) mice lacking GH (along with prolactin and TSH), are diminutive in size and have major alterations in body composition and metabolic parameters including increased subcutaneous adiposity, increased relative brain weight, small liver, hypoinsulinemia, mild hypoglycemia, increased adiponectin levels and insulin sensitivity, and reduced serum lipids. Body temperature is reduced in Ames, Snell, and female GHR-KO mice. Indirect calorimetry revealed that both Ames dwarf and GHR-KO mice utilize more oxygen per gram (g) of body weight than sex- and age-matched normal animals from the same strain. They also have reduced respiratory quotient, implying greater reliance on fats, as opposed to carbohydrates, as an energy source. Differences in oxygen consumption (VO(2)) were seen in animals fed or fasted during the measurements as well as in animals that had been exposed to 30% calorie restriction or every-other-day feeding. However, at the thermoneutral temperature of 30°C, VO(2) did not differ between GHR-KO and normal mice. Thus, the increased metabolic rate of the GHR-KO mice, at a standard animal room temperature of 23°C, is apparently related to increased energy demands for thermoregulation in these diminutive animals. We suspect that increased oxidative metabolism combined with enhanced fatty acid oxidation contribute to the extended longevity of GHR-KO mice.

Keywords: aging; calorie restriction; dwarf mice; growth hormone; metabolism.

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Figures

FIGURE 1
FIGURE 1
Metabolic alterations in GH-deficient and GH-resistant mice; possible mechanisms of extended longevity.

References

    1. Adochio R., Leitner J. W., Hedlund R., Draznin B. (2009). Rescuing 3t3-L1 adipocytes from insulin resistance induced by stimulation of Akt-mammalian target of rapamycin/P70 S6 kinase (S6k1) pathway and serine phosphorylation of insulin receptor substrate-1: effect of reduced expression of p85alpha subunit of phosphatidylinositol 3-kinase and S6k1 kinase. Endocrinology 150 1165–1173 - PubMed
    1. Aguirre V., Werner E. D., Giraud J., Lee Y. H., Shoelson S. E., White M. F. (2002). Phosphorylation of Ser307 in insulin receptor substrate-1 blocks interactions with the insulin receptor and inhibits insulin action. J. Biol. Chem. 277 1531–1537 - PubMed
    1. Alba M., Salvatori R. (2004). A mouse with targeted ablation of the growth hormone-releasing hormone gene: a new model of isolated growth hormone deficiency. Endocrinology 145 4134–4143 - PubMed
    1. Al-Regaiey K. A., Masternak M. M., Bonkowski M., Sun L., Bartke A. (2005). Long-lived growth hormone receptor knockout mice: interaction of reduced insulin-like growth factor I/insulin signaling and caloric restriction. Endocrinology 146 851–860 - PubMed
    1. Anderson R., Weindruch R. (2010). Metabolic reprogramming, caloric restriction and aging. Trends Endocrinol. Metab. 21 134–141 - PMC - PubMed