
Полная версия
Живи как гений. Элегантный способ раскрыть свой IQ-потенциал, превзойти прежние физические возможности и адаптировать тело к происходящим изменениям
15
W. J. Lossow and I. L. Chaikoff, “Carbohydrate Sparing of Fatty Acid Oxidation. I. The Relation of Fatty Acid Chain Length to the Degree of Sparing. II. The Mechanism by Which Carbohydrate Spares the Oxidation of Palmitic Acid,” Archives of Biochemistry and Biophysics 57.1 (1955): 23–40.
16
Andrew A. Gibb and Bradford G. Hill, “Metabolic Coordination of Physiological and Pathological Cardiac Remodeling,” Circulation Research 123.1 (2018): 107–28.
17
Deniz Senyilmaz-Tiebe et al., “Dietary Stearic Acid Regulates Mitochondria in Vivo in Humans,” Nature Communications 9.1 (2018): 3129.
18
P. W. Siri-Tarino et al., “Saturated Fat, Carbohydrate, and Cardiovascular Disease,” Americal Journal of Clinical Nutrition 91.3 (2010): 502–9, doi:10.3945/ajcn.2008.26285.
19
Christopher E. Ramsden et al., “Re-evaluation of the Traditional Diet-Heart Hypothesis: Analysis of Recovered Data from Minnesota Coronary Experiment (1968–73),” BMJ 353 (2016): i1246.
20
Stephan J. Guyenet and Susan E. Carlson, “Increase in Adipose Tissue Linoleic Acid of US Adults in the Last Half Century,” Advances in Nutrition 6.6 (2015): 660–64.
21
Manish Mittal et al., “Reactive Oxygen Species in Inflammation and Tissue Injury,” Antioxidants & Redox Signaling 20.7 (2014): 1126–67.
22
Karen S. Bishop et al., “An Investigation into the Association Between DNA Damage and Dietary Fatty Acid in Men with Prostate Cancer,” Nutrients 7.1 (2015): 405–22, doi:10.3390/nu7010405.
23
H. Lodish et al., Molecular Cell Biology, 4th edition (New York: W. H. Freeman, 2000), section 12.4, “DNA Damage and Repair and Their Role in Carcinogenesis,” доступно по ссылке https://www.ncbi.nlm.nih.gov/books/NBK21554/.
24
Shosuke Kawanishi et al., “Crosstalk Between DNA Damage and Inflammation in the Multiple Steps of Carcinogenesis,” International Journal of Molecular Sciences 18.8 (2017): 1808, doi:10.3390/ijms18081808.
25
Bruce N. Ames, “Prolonging Healthy Aging: Longevity Vitamins and Proteins,” Proceedings of the National Academy of Sciences 115.43 (2018): 10836–44.
26
Somdat Mahabir et al., “Dietary Magnesium and DNA Repair Capacity as Risk Factors for Lung Cancer,” Carcinogenesis 29.5 (2008): 949–56.
27
Злодей из книги Стивена Кинга «Сияние». – Прим. пер.
28
Takanori Honda et al., “Serum elaidic acid concentration and risk of dementia: The Hisayama study,” Neurology (2019).
29
Jessica E. Saraceni, “8,000-Year-Old Olive Oil Found in Israel,” Archaeology, www.archaeology.org/news/2833–141217-israel-galilee-olive-oil.
30
Felice N. Jacka et al., “A Randomised Controlled Trial of Dietary Improvement for Adults with Major Depression (the ‘SMILES’ trial),” BMC Medicine 15.1 (2017): 23.
31
Marta Czarnowska and Elzbieta Gujska, “Effect of Freezing Technology and Storage Conditions on Folate Content in Selected Vegetables,” Plant Foods for Human Nutrition 67.4 (2012): 401–06.
32
Kristen L. Nowak et al., “Serum Sodium and Cognition in Older Community-Dwelling Men,” Clinical Journal of the American Society of Nephrology 13.3 (2018): 366–74.
33
Andrew Mente et al., “Urinary Sodium Excretion, Blood Pressure, Cardiovascular Disease, and Mortality: A Community-Level Prospective Epidemiological Cohort Study,” Lancet 392.10146 (2018): 496–506.
34
Loren Cordain et al., “Origins and Evolution of the Western Diet: Health Implications for the 21st Century,” American Journal of Clinical Nutrition 81.2 (2005): 341–54.
35
Robert R. Wolfe et al., “Optimizing Protein Intake in Adults: Interpretation and Application of the Recommended Dietary Allowance Compared with the Acceptable Macronutrient Distribution Range,” Advances in Nutrition 8.2 (2017): 266–75, doi:10.3945/an.116.013821.
36
Robert W. Morton et al., “A Systematic Review, Meta-Analysis and Meta-Regression of the Effect of Protein Supplementation on Resistance Training-Induced Gains in Muscle Mass and Strength in Healthy Adults,” British Journal of Sports Medicine 52.6 (2017): 376–84, doi:10.1136/bjsports-2017–097608.
37
Michaela C. Devries et al., “Changes in Kidney Function Do Not Differ Between Healthy Adults Consuming Higher – Compared with Lower- or Normal-Protein Diets: A Systematic Review and Meta-Analysis,” Journal of Nutrition 148.11 (2018): 1760–75, doi:10.1093/jn/nxy197.
38
Stuart M. Phillips, Stéphanie Chevalier, and Heather J. Leidy, “Protein ‘Requirements’ Beyond the RDA: Implications for Optimizing Health,” Applied Physiology, Nutrition, and Metabolism 41.5 (2016): 565–72.
39
Claudia Martinez-Cordero et al., “Testing the Protein Leverage Hypothesis in a Free-Living Human Population,” Appetite 59.2 (2012): 312–15.
40
David S. Weigle et al., “A High-Protein Diet Induces Sustained Reductions in Appetite, Ad Libitum Caloric Intake, and Body Weight Despite Compensatory Changes in Diurnal Plasma Leptin and Ghrelin Concentrations,” American Journal of Clinical Nutrition 82.1 (2005): 41–48; S. J. Long, A. R. Jeffcoat, and D. J. Millward, “Effect of Habitual Dietary-Protein Intake on Appetite and Satiety,” Appetite 35.1 (2000): 79–88.
41
Klaas R. Westerterp, “Diet Induced Thermogenesis,” Nutrition & Metabolism 1.1 (2004): 5, doi:10.1186/1743–7075–1–5.
42
Claire Fromentin et al., “Dietary Proteins Contribute Little to Glucose Production, Even Under Optimal Gluconeogenic Conditions in Healthy Humans,” Diabetes 62.5 (2013): 1435–42, doi:10.2337/db12–1208.
43
W.M. A. D. Fernando et al., “Associations of Dietary Protein and Fiber Intake with Brain and Blood Amyloid-β,” Journal of Alzheimer’s Disease 61.4 (2018): 1589–98.
44
Joel Brind et al., “Dietary Glycine Supplementation Mimics Lifespan Extension by Dietary Methionine Restriction in Fisher 344 Rats,” FASEB Journal 25.1 Suppl. (2011): 528.2.
45
Richard A. Miller, et al. “Glycine Supplementation Extends Lifespan of Male and Female Mice,” Aging Cell 18.3 (2019): e12953.
46
Enrique Meléndez-Hevia et al., “A Weak Link in Metabolism: The Metabolic Capacity for Glycine Biosynthesis Does Not Satisfy the Need for Collagen Synthesis,” Journal of Biosciences 34.6 (2009): 853–72.
47
Joseph Firth et al., “The Effects of Dietary Improvement on Symptoms of Depression and Anxiety: A Meta-Analysis of Randomized Controlled Trials,” Psychosomatic Medicine 81.3 (2019): 265–80, doi:10.1097/PSY.0000000000000673.
48
Donald R. Davis, Melvin D. Epp, and Hugh D. Riordan, “Changes in USDA Food Composition Data for 43 Garden Crops, 1950 to 1999,” Journal of the American College of Nutrition 23.6 (2004): 669–82.
49
Irakli Loladze, “Hidden Shift of the Ionome of Plants Exposed to Elevated CO2 Depletes Minerals at the Base of Human Nutrition,” eLife 3 (2014): e02245, doi:10.7554/eLife.02245.
50
Donald R. Davis, “Trade-offs in Agriculture and Nutrition,” Food Technology 59.3 (2005): 120.
51
Marcin Baranski et al., “Higher Antioxidant Concentrations, and Less Cadmium and Pesticide Residues in Organically Grown Crops: A Systematic Literature Review and Meta-Analyses,” British Journal of Nutrition 5.112 (2014): 794–811.
52
Zhi-Yong Zhang, Xian-Jin Liu, and Xiao-Yue Hong, “Effects of Home Preparation on Pesticide Residues in Cabbage,” Food Control 18.12 (2007): 1484–87; Tianxi Yang et al., “Effectiveness of Commercial and Homemade Washing Agents in Removing Pesticide Residues on and in Apples,” Journal of Agricultural and Food Chemistry 65.44 (2017): 9744–52.
53
Martha Clare Morris et al., “Nutrients and Bioactives in Green Leafy Vegetables and Cognitive Decline: Prospective Study,” Neurology 90.3 (2018): e214–22.
54
Emily R. Bovier, and Billy R. Hammond. “A Randomized Placebo-Controlled Study on the Effects of Lutein and Zeaxanthin on Visual Processing Speed in Young Healthy Subjects,” Archives of Biochemistry and Biophysics 572 (2015): 54–57; Lisa M. RenziHammond, et al., “Effects of a Lutein and Zeaxanthin Intervention on Cognitive Function: A Randomized, Double-Masked, Placebo-Controlled Trial of Younger Healthy Adults.” Nutrients 9.11 (2017): 1246, doi:10.3390/nu9111246.
55
Marcia C. de Oliveira Otto et al., “Everything in Moderation – Dietary Diversity and Quality, Central Obesity and Risk of Diabetes,” PLOS ONE 10.10 (2015): e0141341.
56
Bernard P. Kok et al., “Intestinal Bitter Taste Receptor Activation Alters Hormone Secretion and Imparts Metabolic Benefits,” Molecular Metabolism 16 (2018): 76–87, doi:10.1016/j.molmet.2018.07.013.
57
Valter D. Longo and Satchidananda Panda, “Fasting, Circadian Rhythms, and Time-Restricted Feeding in Healthy Lifespan,” Cell Metabolism 23.6 (2016): 1048–59, doi:10.1016/j.cmet.2016.06.001.
58
Patricia L. Turner and Martin A. Mainster, “Circadian Photoreception: Ageing and the Eye’s Important Role in Systemic Health,” British Journal of Ophthalmology 92.11 (2008): 1439–44.
59
Neil E. Klepeis et al., “The National Human Activity Pattern Survey (NHAPS): A Resource for Assessing Exposure to Environmental Pollutants,” Journal of Exposure Science and Environmental Epidemiology 11.3 (2001): 231.
60
David Montaigne et al., “Daytime Variation of Perioperative Myocardial Injury in Cardiac Surgery and Its Prevention by Rev-Erbα Antagonism: A Single-Centre PropensityMatched Cohort Study and a Randomised Study,” Lancet 391.10115 (2018): 59–69.
61
Fariba Raygan et al., “Melatonin Administration Lowers Biomarkers of Oxidative Stress and Cardio-Metabolic Risk in Type 2 Diabetic Patients with Coronary Heart Disease: A Randomized, Double-Blind, Placebo-Controlled Trial,” Clinical Nutrition (2017).
62
D-X. Tan et al., “Significance and Application of Melatonin in the Regulation of Brown Adipose Tissue Metabolism: Relation to Human Obesity,” Obesity Reviews 12.3 (2011): 167–88.
63
Ran Liu et al., “Melatonin Enhances DNA Repair Capacity Possibly by Affecting Genes Involved in DNA Damage Responsive Pathways,” BMC Cell Biology 14.1 (2013): 1.
64
Leonard A. Sauer, Robert T. Dauchy, and David E. Blask, “Polyunsaturated Fatty Acids, Melatonin, and Cancer Prevention,” Biochemical Pharmacology 61.12 (2001): 1455–62.
65
M. Nathaniel Mead, “Benefits of Sunlight: A Bright Spot for Human Health,” Environmental Health Perspectives 116.4 (2008): A160–67, doi:10.1289/ehp.116-a160.
66
Tina M. Burke et al., “Effects of Caffeine on the Human Circadian Clock in Vivo and in Vitro,” Science Translational Medicine 7.305 (2015): 305ra146–305ra146.
67
James Stringham, Nicole Stringham, and Kevin O’Brien, “Macular Carotenoid Supplementation Improves Visual Performance, Sleep Quality, and Adverse Physical Symptoms in Those with High Screen Time Exposure,” Foods 6.7 (2017): 47.
68
Shawn D. Youngstedt, Jeffrey A. Elliott, and Daniel F. Kripke, “Human Circadian Phase-Response Curves for Exercise,” Journal of Physiology (2019).
69
Katri Peuhkuri, Nora Sihvola, and Riitta Korpela, “Dietary Factors and Fluctuating Levels of Melatonin,” Food & Nutrition Research 56.1 (2012): 17252.
70
Kazunori Ohkawara et al., “Effects of Increased Meal Frequency on Fat Oxidation and Perceived Hunger,” Obesity 21.2 (2013): 336–43; Hana Kahleova et al., “Meal Frequency and Timing Are Associated with Changes in Body Mass Index in Adventist Health Study 2,” Journal of Nutrition 147.9 (2017): 1722–28.
71
Eve Van Cauter, Kenneth S. Polonsky, and André J. Scheen, “Roles of Circadian Rhythmicity and Sleep in Human Glucose Regulation,” Endocrine Reviews 18.5 (1997): 716–38.
72
Frank A. J. L. Scheer et al., “Adverse Metabolic and Cardiovascular Consequences of Circadian Misalignment,” Proceedings of the National Academy of Sciences 106.11 (2009): 4453–58.
73
Megumi Hatori et al., “Time-Restricted Feeding Without Reducing Caloric Intake Prevents Metabolic Diseases in Mice Fed a High-Fat Diet,” Cell Metabolism 15.6 (2012): 848–60.
74
Kelsey Gabel et al., “Effects of 8-Hour Time-Restricted Feeding on Body Weight and Metabolic Disease Risk Factors in Obese Adults: A Pilot Study,” Nutrition and Healthy Aging preprint (2018): 1–9; Elizabeth F. Sutton et al., “Early Time-Restricted Feeding Improves Insulin Sensitivity, Blood Pressure, and Oxidative Stress Even Without Weight Loss in Men with Prediabetes,” Cell Metabolism 27.6 (2018): 1212–21.
75
Manolis Kogevinas et al., “Effect of Mistimed Eating Patterns on Breast and Prostate Cancer Risk (MCC-Spain Study),” International Journal of Cancer 143.10 (2018): 2380–89.
76
Catherine R. Marinac et al., “Prolonged Nightly Fasting and Breast Cancer Prognosis,” JAMA Oncology 2.8 (2016): 1049–55.
77
Patricia Rubio-Sastre et al., “Acute Melatonin Administration in Humans Impairs Glucose Tolerance in Both the Morning and Evening,” Sleep 37.10 (2014): 1715–19.
78
David Lehigh Allen et al., “Acute Daily Psychological Stress Causes Increased Atrophic Gene Expression and Myostatin-Dependent Muscle Atrophy,” American Journal of Physiology – Heart and Circulatory Physiology (2010).
79
Javier T. Gonzalez et al., “Breakfast and Exercise Contingently Affect Postprandial Metabolism and Energy Balance in Physically Active Males,” British Journal of Nutrition 110.4 (2013): 721–32.








