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1.
Biochim Biophys Acta ; 1847(11): 1424-33, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26191650

ABSTRACT

Cardiovascular diseases are the leading cause of death in most developed nations. While it has received the least public attention, aging is the dominant risk factor for developing cardiovascular diseases, as the prevalence of cardiovascular diseases increases dramatically with increasing age. Cardiac aging is an intrinsic process that results in impaired cardiac function, along with cellular and molecular changes. Mitochondria play a great role in these processes, as cardiac function is an energetically demanding process. In this review, we examine mitochondrial dysfunction in cardiac aging. Recent research has demonstrated that mitochondrial dysfunction can disrupt morphology, signaling pathways, and protein interactions; conversely, mitochondrial homeostasis is maintained by mechanisms that include fission/fusion, autophagy, and unfolded protein responses. Finally, we describe some of the recent findings in mitochondrial targeted treatments to help meet the challenges of mitochondrial dysfunction in aging.


Subject(s)
Aging/physiology , Heart/physiology , Mitochondria/physiology , Animals , Autophagy , Caloric Restriction , Cardiolipins/physiology , DNA Damage , Energy Metabolism , Homeostasis , Humans , Mitochondria/pathology , Proteins/metabolism , Signal Transduction/physiology , Unfolded Protein Response
2.
Ageing Res Rev ; 23(Pt A): 101-15, 2015 Sep.
Article in English | MEDLINE | ID: mdl-25702865

ABSTRACT

Cardiac aging is an intrinsic process that results in impaired cardiac function, along with cellular and molecular changes. These degenerative changes are intimately associated with quality control mechanisms. This review provides a general overview of the clinical and cellular changes which manifest in cardiac aging, and the quality control mechanisms involved in maintaining homeostasis and retarding aging. These mechanisms include autophagy, ubiquitin-mediated turnover, apoptosis, mitochondrial quality control and cardiac matrix homeostasis. Finally, we discuss aging interventions that have been observed to impact cardiac health outcomes. These include caloric restriction, rapamycin, resveratrol, GDF11, mitochondrial antioxidants and cardiolipin-targeted therapeutics. A greater understanding of the quality control mechanisms that promote cardiac homeostasis will help to understand the benefits of these interventions, and hopefully lead to further improved therapeutic modalities.


Subject(s)
Aging/physiology , Heart/growth & development , Heart/physiology , Aging/drug effects , Animals , DNA Repair , Diet , Heart/drug effects , Humans , Quality Control
3.
Aging Cell ; 12(6): 1050-61, 2013 Dec.
Article in English | MEDLINE | ID: mdl-23837470

ABSTRACT

Dietary restriction (DR) increases lifespan and attenuates age-related phenotypes in many organisms; however, the effect of DR on longevity of individuals in genetically heterogeneous populations is not well characterized. Here, we describe a large-scale effort to define molecular mechanisms that underlie genotype-specific responses to DR. The effect of DR on lifespan was determined for 166 single gene deletion strains in Saccharomyces cerevisiae. Resulting changes in mean lifespan ranged from a reduction of 79% to an increase of 103%. Vacuolar pH homeostasis, superoxide dismutase activity, and mitochondrial proteostasis were found to be strong determinants of the response to DR. Proteomic analysis of cells deficient in prohibitins revealed induction of a mitochondrial unfolded protein response (mtUPR), which has not previously been described in yeast. Mitochondrial proteotoxic stress in prohibitin mutants was suppressed by DR via reduced cytoplasmic mRNA translation. A similar relationship between prohibitins, the mtUPR, and longevity was also observed in Caenorhabditis elegans. These observations define conserved molecular processes that underlie genotype-dependent effects of DR that may be important modulators of DR in higher organisms.


Subject(s)
Caenorhabditis elegans/genetics , Caenorhabditis elegans/physiology , Caloric Restriction , Diet , Saccharomyces cerevisiae/genetics , Aerobiosis , Animals , Autophagy , Caenorhabditis elegans/cytology , Caenorhabditis elegans Proteins/metabolism , Genotype , Prohibitins , Saccharomyces cerevisiae/cytology , Unfolded Protein Response/genetics
4.
FEBS J ; 280(10): 2332-41, 2013 May.
Article in English | MEDLINE | ID: mdl-23421805

ABSTRACT

Similar to most proteinases, matrix metalloproteinases (MMP) do not recognize a consensus cleavage site. Thus, it is not surprising that, in a defined in vitro reaction, most MMPs can act on a wide range of proteins, including many extracellular matrix proteins. However, the findings obtained from in vivo studies with genetic models have demonstrated that individual MMPs act on just a few extracellular protein substrates, typically not matrix proteins. The limited, precise functions of an MMP imply that mechanisms have evolved to control the specificity of proteinase:substrate interactions. We discuss the possibility that interactions with the glycosaminoglycan chains of proteoglycans may function as allosteric regulators or accessory factors directing MMP catalysis to specific substrates. We propose that understanding how the activity of specific MMPs is confined to discreet compartments and targeted to defined substrates via interactions with other macromolecules may provide a means of blocking potentially deleterious MMP-mediated processes at the same time as sparing any beneficial functions.


Subject(s)
Glycosaminoglycans/metabolism , Matrix Metalloproteinase 7/metabolism , Protein Interaction Mapping , Allosteric Regulation , Animals , Catalytic Domain , Consensus Sequence , Enzyme Activation , Humans , Protein Binding , Protein Structure, Tertiary , Proteolysis , Substrate Specificity , Zinc/metabolism
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