Hunter S. J. et al. Demonstration of glycated insulin in human diabetic plasma and decreased biological activity assessed by euglycemic-hyperinsulinemic clamp technique in humans // Diabetes. 2003 Feb; 52 (2): 492–498.
Li Y. M., Tan A. X., Vlassara H. Antibacterial activity of lysozyme and lactoferrin is inhibited by binding of advanced glycation – modified proteins to a conserved motif // Nature Medicine. 1995 Oct; 1: 1057–1061.
Nass N. Glycation of PDGF results in decreased biological activity // The International Journal of Biochemistry & Cell Biology.. 2010 May; 42 (5): 749–754.
Monnier V. M., Cerami A. Nonenzymatic browning in vivo: possible process for aging of long-lived proteins // Science. 1981 Jan; 211 (4481): 491–493.
Terman A. Garbage catastrophe theory of aging: imperfect removal of oxidative damage? // Redox Report. 2001; 6 (1): 15–26.
Pamplona R. Membrane phospholipids, lipoxidative damage and molecular integrity: A causal role in aging and longevity // Biochimica et Biophysica Acta (BBA) – Bioenergetics.. 2008 Oct; 1777 (10): 1249–1262.
Stillwell W., Wassall S. R. Docosahexaenoic acid: membrane properties of a unique fatty acid // Chemistry and Physics of Lipids. 2003 Nov; 126 (1): 1–27.
Nakamura M. T., Nara T. Y. Structure, function and dietary regulations of Δ6, Δ5 and Δ9 desaturases // Annual Review of Nutrition. 2004 Jul; 24: 345–376.
Solfrizzi V. et al. Unsaturated fatty acids intake and all-causes mortality: a 8.5-year follow-up of the Italian Longitudinal Study on Aging // Experimental Gerontology.. 2005 Apr; 40 (4): 335–343.
Aung T. et al. Associations of Omega-3 Fatty Acid Supplement Use With Cardiovascular Disease Risks // JAMA Cardiology. 2018 Mar; 3 (3): 225–233.
Simopoulos A. P. The importance of the ratio of omega-6/omega-3 essential fatty acids // Biomedicine & Pharmacotherapy.. 2002 Oct; 56 (8): 365–379.
Haddad L. S., Kelbert L., Hulbert A. J. Extended longevity of queen honey bees compared to workers is associated with peroxidation-resistant membranes // Experimental Gerontology.. 2007 Jul; 42 (7): 601–609.
Johnson A. A., Stolzing A. The role of lipid metabolism in aging, lifespan regulation, and age‐related disease // Aging Cell. 2019 Sep; 18 (6): e13048.
Bozek K. et al. Lipidome determinants of maximal lifespan in mammals // Scientific Reports. 2017 Jan; 7: 5.
Gladyshev V. N. Aging: progressive decline in fitness due to the rising deleteriome adjusted by genetic, environmental, and stochastic processes // Aging Cell. 2016 Apr; 15 (4): 594–602.
Golubev A., Hanson A. D., Gladyshev V. N. Aging: progressive decline in fitness due to the rising deleteriome adjusted by genetic, environmental, and stochastic processes // Journal of Biological Chemistry. 2017 Apr; 292: 6029–6038.
Li W. & Vijg J. Measuring genome instability in aging – a mini-review // Gerontology. 2012 Feb; 58 (2): 129–138.
Kaushik S. & Cuervo A. M. Proteostasis and aging // Nature Medicine. 2015 Dec; 21: 1406–415.
Richard P. Shefferson, Owen R. Jones, Roberto Salguero-Gómez. The evolution of senescence in the tree of life. Cambridge University Press, 2017.
Arrojo e Drigo R. et al. Age mosaicism across multiple scales in adult tissues // Cell Metabolism. 2019 Aug; 30 (2): 343–351. E3.
Xu M. et al. JAK inhibition alleviates the cellular senescence-associated secretory phenotype and frailty in old age // PNAS. 2015 Nov; 112 (46): E6301–E6310.
Waaiker M. E. C. et al. Are skin senescence and immunosenescence linked within individuals? // Aging Cell. 18 (4): e12956.
Ogrodnik et al. Cellular senescence drives age-dependent hepatic steatosis // Nature Communications. 2017 Jun; 8: 15691.
Leon O. H. et al. Local clearance of senescent cells attenuates the development of post-traumatic osteoarthritis and creates a pro-regenerative environment // Nature Medicine. 2017 Apr; 23: 775–781.
Ogrodnik et al. Obesity-induced cellular senescence drives anxiety and impairs neurogenesis // Cell Metabolism. 2019 Jan; 29 (5): 1061–1077. E8.
Galluzzi et al. Molecular mechanisms of cell death: recommendations of the Nomenclature Committee on Cell Death 2018 // Cell Death & Differentiation. 2018 Jan; 25: 486–541.
Smith J. R., Pereira-Smith O. M., Schneider E. L. Colony size distributions as a measure of in vivo and in vitro aging // PNAS. 1978 Mar; 75 (3): 1353–1356.
Gnani D. et al. An early‐senescence state in aged mesenchymal stromal cells contributes to hematopoietic stem and progenitor cell clonogenic impairment through the activation of a pro‐inflammatory program // Aging Cell. 2019 Mar; 18 (3): e12933.
Oviedo N. J., Beane S. W. Regeneration: The origin of cancer or a possible cure? // Seminars in Cell & Developmental Biology.. 2009 Jul; 20 (5): 557–564.
Xu M. et al. Senolytics improve physical function and increase lifespan in old age // Nature Medicine. 2018 Jul; 24: 1246–1256.
Cм. п. 44.
Zhu Y. et al. The Achilles' heel of senescent cells: from transcriptome to senolytic drugs // Aging Cell. 2015 Mar; 14 (4): 644–658.
Zhang R. et al. Formation of macroH2A-containing senescence-associated heterochromatin foci and senescence driven by ASF1a and HIRA // Developmental Cell. 2005 Jan; 8 (1): 19–30.
Muñoz-Espín. D. & Serrano M. Cellular senescence: from physiology to pathology // Nature Reviews Molecular Cell Biology. 2014 Jun; 15: 482–496.
Tsurumi A. & Li W. Global heterochromatin loss // Epigenetics. 2012 Jul; 7 (7): 680–688.
Hayflick L. The limited in vitro lifetime of human diploid cell strains // Experimental Cell Research. 1965 Mar; 37 (3): 614–636.
Jung T., Höhn A., Grune T. Lipofuscin: detection and quantification by microscopic techniques. // Methods in Molecular Biology. 2010; 594: 173–193.
Pincus Z., Mazer T. C., Slack F. J. Autofluorescence as a measure of senescence in C. elegans : look to red, not blue or green // Aging. 2016 May; 8 (5): 889–898.
Zhao Y. et al. Naked mole rats can undergo developmental, oncogene-induced and DNA damage-induced cellular senescence // PNAS. 2008 Feb; 115 (8): 1801–1806.
Cristofalo V. J. SA beta Gal staining: biomarker or delusion // Experimental Gerontology. 2005 Oct; 40 (10): 836–838.
Coppé J.-P. et al. Senescence-Associated Secretory Phenotypes Reveal Cell-Nonautonomous Functions of Oncogenic RAS and the p53 Tumor Suppressor // PLOS Biology. 2008 Dec; 6 (12): e301.
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