Эгоистичная митохондрия. Как сохранить здоровье и отодвинуть старость - читать онлайн книгу. Автор: Ли Ноу cтр.№ 70

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Онлайн книга - Эгоистичная митохондрия. Как сохранить здоровье и отодвинуть старость | Автор книги - Ли Ноу

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Jammes Y., et al. Chronic fatigue syndrome: assessment of increased oxidative stress and altered muscle excitability in response to incremental exercise. J Intern Med. 2005 Mar; 257(3): 299–310. doi:10.1111/j.1365–2796.2005.01452.x.

Kennedy G., et al. Oxidative stress levels are raised in chronic fatigue syndrome and are associated with clinical symptoms. Free Radic Biol Med. 2005 Sep 1; 39(5):584–9. doi:10.1016/j.freeradbiomed.2005.04.020. Lanea R. J., et al. Heterogeneity in chronic fatigue syndrome: evidence from magnetic resonance spectroscopy of muscle. Neuromuscul Disord. 1998 May; 8(3–4):204–9. doi:10.1016/S0960 -8966(98)00021-2.

Maes M. Inflammatory and oxidative and nitrosative stress pathways underpinning chronic fatigue, somatization and psychosomatic symptoms. Curr Opin Psychiatry. 2009 Jan; 22(1):75–83

Manuel-y-Keenoy B., et al. Antioxidant status and lipoprotein peroxidation in chronic fatigue syndrome. Life Sci. 2001 Mar 16; 68(17):2037–49. doi:10.1016/S0024-3205(01)01001-3.

Meeus M., et al. The role of mitochondrial dysfunctions due to oxidative and nitrosative stress in the chronic pain or chronic fatigue syndromes and fibromyalgia patients: peripheral and central mechanisms as therapeutic targets? Expert Opin Ther Targets. 2013 Sep; 17(9): 1081–9. Epub Jul 9. doi:10.1517/14728222.2013.818657.

Miyamae T., et al. Increased oxidative stress and coenzyme Q10 deficiency in juvenile fibromyalgia: amelioration of hypercholesterolemia and fatigue by ubiquinol-10 supplementation. Redox Rep. 2013; 18(1):12–9. doi:10.1 179/1351000212Y.0000000036.

Myhill S. CFS — The central cause: mitochondrial failure [Internet]. Doctor Myhill.co.uk. [Cited 2017 June 29]. Available from: http://drmyhill. co.uk/wiki/CFS_-_The_Central_Cause: _Mitochondrial_Failure.

Myhill S., Booth N. E., McLaren-Howard J. Chronic fatigue syndrome and mitochondrial dysfunction. Int J Clin Exp Med. 2009; 2(1):1–16.

Nancy A. L., Shoenfeld Y. Chronic fatigue syndrome with autoantibodies — the result of an augmented adjuvant effect of hepatitis-B vaccine and silicone implant. Autoimmun Rev. 2008 Oct; 8(1):52–5. doi:10.1016/j. autrev.2008.07.026.

Ortega-Hernandez O. D., Shoenfeld Y. Infection, vaccination, and autoantibodies in chronic fatigue syndrome, cause or coincidence?

Ann NY Acad Sci. 2009 Sep; 1173:600–9. doi:10.1111/j.1749–6632.2009.04799.x.

Ozgocmen S., et al. Current concepts in the pathophysiology of fibromyalgia: the potential role of oxidative stress and nitric oxide. Rheumatol Int. 2006 May; 26(7):585–97. doi:10.1007 /s00296-005-0078-z.

Villanova M., et al. Mitochondrial myopathy mimicking fibromyalgia syndrome. Muscle Nerve. 1999 Feb; 22(2):289–91. doi:10.1002/(SICI)1097-4598(199902)22:2<289::AID-MUS26>3.0.CO;2-O.

Zhang C., et al. Unusual pattern of mitochondrial DNA deletions in skeletal muscle of an adult human with chronic fatigue syndrome. Hum Mol Genet. 1995;4:751–4. doi:10.1093/hmg /4.4.751.

Диабет II типа

Alikhani Z., et al. Advanced glycation end products enhance expression of pro-apoptotic genes and stimulate fibroblast apoptosis through cytoplasmic and mitochondrial pathways. J Biol Chem. 2005 Apr 1; 280(13):12087–95. doi:10.1074/jbc.M406313200.

Allister E. M., et al. UCP2 regulates the glucagon response to fasting and starvation. Diabetes. 2013 May; 62(5):1623–33. Epub 2013 Feb 22. doi:10.2337/db12-0981.

Bach D., et al. Mitofusin-2 determines mitochondrial network architecture and mitochondrial metabolism. A novel regulatory mechanism altered in obesity. J Biol Chem. 2003 May 9; 278(19):17190–7. doi:10.1074/jbc. M212754200.

Barbosa M. R., et al. Hydrogen peroxide production regulates the mitochondrial function in insulin resistant muscle cells: effect of catalase overexpression. Biochim Biophys Acta. 2013 Oct; 1832(10):1591–604. Epub 2013 May 2. doi:10.1016/j.bbadis.2013.04.029.

Befroy D. E., et al. Impaired mitochondrial substrate oxidation in muscle of insulin-resistant offspring of type 2 diabetic patients. Diabetes. 2007 May; 56(5):1376–81. Epub 2007 Feb 7. doi:10.2337/db06-0783.

Feng B., Ruiz M. A., Chakrabarti S. Oxidative-stress-induced epigenetic changes in chronic diabetic complications. Can J Physiol Pharmacol. 2013 Mar; 91(3):213–20. doi:10.1139/cjpp-2012-0251.

Fiorentino T. V., et al. Hyperglycemia-induced oxidative stress and its role in diabetes mellitus related cardiovascular diseases. Curr Pharm Des. 2013;19(32):5695–703. Epub 2013 Feb 20. doi:10.2174/138161281 1319320005.

Frohnert B. I., Bernlohr D. A. Protein carbonylation, mitochondrial dysfunction, and insulin resistance. Adv Nutr. 2013 Mar 1; 4(2):157–63. doi:10.3945/an.112.003319.

Goodpaster B. H. Mitochondrial deficiency is associated with insulin resistance. Diabetes. 2013 Apr; 62(4):1032–5. doi:10.2337/db12-1612.

Graier W. F., Malli R., Kostner G. M. Mitochondrial protein phosphorylation: instigator or target of lipotoxicity? Trends Endocrinol Metab. 2009 May; 20(4):186–93. doi:10.1016/j.tem.2009.01.004.

Hamilton J. A., Kamp F. How are free fatty acids transported in membranes? Is it by proteins or by free diffusion through the lipids? Diabetes. 1999 Dec;48(12):2255–69. doi:10.2337/diabetes.48.12.2255.

Hesselink M. K., Schrauwen-Hinderling V., Schrauwen P. Skeletal muscle mitochondria as a target to prevent or treat type 2 diabetes mellitus. Nat Rev Endocrinol. 2016 Nov; 12(11):633–45. Epub 2016 Jul 22. doi:10.1038/ nrendo.2016.104.

Hipkiss A. R. Aging, proteotoxicity, mitochondria, glycation, NAD and carnosine: possible inter-relationships and resolution of the oxygen paradox. Front Aging Neurosci. 2010 Mar 18;2:10. doi:10.3389/fnagi.2010.00010. Hipkiss A. R. Mitochondrial dysfunction, proteotoxicity, and aging: causes or effects, and the possible impact of NAD+-controlled protein glycation. Adv Clin Chem. 2010;50:123–50.

Ho J. K., Duclos R. I. Jr, Hamilton J. A. Interactions of acyl carnitines with model membranes: a (13) C-NMR study. J Lipid Res. 2002 Sep; 43(9):1429–39. doi:10.1194/jlr.M200137-JLR200.

Kelley D. E., Mandarino L. J. Fuel selection in human skeletal muscle in insulin resistance: a reexamination. Diabetes. 2000 May; 49(5):677–83. doi:10.2337/diabetes.49.5.677.

Kelley D. E., Simoneau J. A. Impaired free fatty acid utilization by skeletal muscle in noninsulin-dependent diabetes mellitus. J Clin Invest. 1994 Dec; 94(6):2349–56. doi:10.1172/JCI117600.

Kil I. S., et al. Glycation-induced inactivation of NADP(+)-dependent isocitrate dehydrogenase: implications for diabetes and aging. Free Radic Biol Med. 2004 Dec 1; 37(11):1765–78.

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