Добавил:
Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:

Клиническая психофизиология. Клеточно-молекулярный уровень организации центральной нервной системы и роль его нарушений в формировании психических рас

.pdf
Скачиваний:
0
Добавлен:
06.09.2026
Размер:
1 Мб
Скачать
101
66. Anastasiadi D., Piferrer F. Epimutations in Developmental Genes
Underlie the Onset of Domestication in Farmed European Sea Bass // Mo­lecular Biology and Evolution. 2019. V. 36. I. 10. P. 2252.
67. Austad S., Nesse R. M. Good Reasons for Bad Feelings: Insights
from the Frontier of Evolutionary Psychiatry // Evolution, Medicine, and Public Health. 2020. V. 2020. I. 1. P. 28–29.
68. Bocharov E. V., Nadezhdin K. D., Urban A. S. et al. Familial
L723P Mutation Can Shift the Distribution between the Alternative APP
Transmembrane Domain Cleavage Cascades by Local Unfolding of the Ε­Cleavage Site Suggesting a Straightforward Mechanism of Alzheimer’s
Disease Pathogenesis // ACS Chemical Biology. 2019. V. 14. № 7. P. 1573–1582.
69. Border R., Johnson E. C., Evans L. M. et al. No Support for His-
torical Candidate Gene or Candidate Gene-by-Interaction Hypotheses for Major Depression Across Multiple Large Samples // American Journal of Psychiatry. 2019. V. 176. I. 5. P. 376–387.
70. Braff D., Stone C., Callaway E. et al. Prestimulus effects on hu-
man startle reflex in normals and schizophrenics // Psychophysiology.
1978. V. 15. 4. Р. 339–343.
71. Buffenstein R. Negligible senescence in the longest living rodent,
the naked mole-rat: insights from a successfully aging species // Journal Comparative Physiology B, 2008. V. 178. P. 439–445.
72. Cameron H. A., McKay R. D. Adult neurogenesis produces a
large pool of new granule cells in the dentate gyrus // Journal of Compar­ative Neurology. V. 435. 4. Р. 406–417.
73. Caspi A., Houts R. M., Belsky D. W. et al. The p Factor: One
General Psychopathology Factor in the Structure of Psychiatric Disor­ders? // Clinical Psychological Science. 2014. V. 2. I. 2. P. 119–137.
74. Cole S. W. Human social genomics // PLOS Genetics. 2014. V.10.
№ 8. e1004601
75. Dijk D. J., Winsky-Sommerer R. Neuroscience: Sleepy and
dreamless mutant mice // Nature. 2016. V. 539. I. 7629. P. 364–365.
76. Doi M., Ishida A., Miyake A. et al. Circadian regulation of intra-
cellular G-protein signalling mediates intercellular synchrony and rhyth­micity in the suprachiasmatic nucleus // Nature Communication. 2011. V. 2. P. 327–335.
102
77. Finch C. E., Leroi S. N. History and prospects: symposium on or-
ganisms with slow aging // Experimental Gerontology. 2001. V. 36. 4–
6. P. 593–597.
78. Fushan A. A., Turanov A. A., Lee S. G. et al. Gene expression
defines natural changes in mammalian lifespan // Aging Cell. 2015. V. 14. P. 352.
79. Geyer M. A., Krebs-Thomson K., Braff D. L., Swerdlow N. R.
Pharmacological studies of prepulse inhibition models of sensorimotor gating deficits in schizophrenia: a decade in review // Psychopharmacol­ogy. 2001. V. 156. P. 117–154.
80. Hankin B. L., Davisb E. P., Snyderc H. et al. Temperament factors
and dimensional, latent bifactor models of child psychopathology: Trans­diagnostic and specific associations in two youth samples // Psychiatry Research. 2017. V. 252. P. 139–146.
81. Harman D. Free radical theory of aging: Beneficial effects of add-
ing antioxidants to the maternal mouse diet on the life span of offspring; possible explanation of the sex difference in longevity // Age. 1979. V. 2. P. 109–122.
82. He C. Grand challenge commentary: RNA epigenetics? // Nature
Chemical Biology. 2010. V. 12. I. 6. P. 863–865.
83. Herzog E. D., Hermanstyne T., Smyllie N. J., Hastings M. H. Reg-
ulating the Suprachiasmatic Nucleus (SCN) Circadian Clockwork: Inter­play between Cell-Autonomous and Circuit-Level Mechanisms // Cold Spring Harbor Perspectives in Biology. 2017. V. 9. P. 1–26.
84. Hidalgo S., Campusano J. M., Hodge J. J. L. Assessing olfactory,
memory, social and circadian phenotypes associated with schizophrenia in a genetic model based on Rim // Translation Psychiatry. 2021. V. 11. P. 292–309.
85. Hochberg Z., Feil R., Constancia M. et al. Child health, develop-
mental plasticity, and epigenetic programming // Endocrine Reviews,
2011. V. 32. № 2. P. 159–224.
86. Horvath S. DNA methylation age of human tissues and cell types
// Genome Biology. 2013. V. 14. P. 3156.
87. Jaskelioff M., Muller F., Paik J. H. et al. Telomerase reactivation
reverses tissue degeneration in aged telomerase-deficient mice // Nature.
2011. I. 469. P. 102–106.
103
88. Knutson K. L., von Schantz M. Associations between chronotype,
morbidity and mortality in the UK Biobank cohort // Chronobiol. Interna­tional. 2018. V. 35. I. 8. P. 1045.
89. Kuintzle R., Chow E., Westby T. et al. Circadian deep sequencing
reveals stress-response genes that adopt robust rhythmic expression dur­ing aging // Nature Communication. 2017. V. 8. Р. 14529.
90. Leroi A. M., Chippindale A. K., Rose M. R. Long-term laboratory
evolution of a genetic life-history trade-off in Drosophila melanogaster. 1. The role of genotype-by-environment interaction // Evolution. 1994. V. 48. I. 4. P. 1244–1257.
91. Li Y., Zhou G., Bruno I. G., Cooke J. P. Telomerase mRNA Re-
verses Senescence in Progeria Cells // Journal of the American College of Cardiology, 2017. V. 70, I. 6. P. 804–805.
92. Mariani N., Cattane N., Pariante C., Cattaneo A. Gene expression
studies in Depression development and treatment: an overview of the un­derlying molecular mechanisms and biological processes to identify bi­omarkers // Translational Psychiatry. 2021. V. 11. I. 1. P. 354.
93. Medgal S. P., Kroenke C. H., Laden F., Pukkala E., Schernham-
mer E. S. Night work and breast cancer risk: a systematic review and meta­analysis // European Journal Cancer. 2005. V. 41. I. 13. P. 2023–2032.
94. Muñoz-Lorente M. A., Cano-Martin A. C., Blasco M. A. Mice
with hyper-long telomeres show less metabolic aging and longer lifespans // Nature Communication, 2019. №10. Р. 4723.
95. Poganic J. R., Zhang B., Baht G. S. et al. Biological age is in-
creased by stress and restored upon recovery // Cell Metabolism. 2023. V. 35. I.5. P. 807–820.E5.
96. Rode L., Nordestgaard B. G., Bojesen S. E. Peripheral Blood Leu-
kocyte Telomere Length and Mortality Among 64 637 Individuals from the General Population // JNCI: Journal of the National Cancer Institute.
2015. V. 107. I. 6. djv074.
97. Roenneberg T., Wirz-Justice A., Merrow M. Life between clocks:
daily temporal patterns of human chronotypes // Journal Biological Rhythms. 2003. V. 18. P. 80–90.
98. Roichman A., Elhanati S., Aon M. A. et al. Restoration of energy
homeostasis by SIRT6 extends healthy lifespan // Nature Communication.
2021. № 12. Р. 3208.
99. Shepherd G. M. Neurobiologie. Berlin; Heidelberg; N. Y.:
Springer-Verlag, 1993. 624 р.
100. Sprooten E., Franke B., Greven C. U. The P-factor and its ge­nomic and neural equivalents: an integrated perspective // Molecular Psy­chiatry. 2022. № 27. Р. 38–48.
101. Tay T. L., Savage J. C., Hui C. W. et al. Microglia across the lifespan: from origin to function in brain development, plasticity and cog­nition // The Journal of Physiology. 2017. V. 595. I. 6. P. 1929.
102. Ude J., Koch M. Die Zelle: Atlas der Ultrastruktur. Jena, Stuttgart: Gustav Fischer Verlag, 1994. 312 p.
103. Yehuda R., Lehrner A. Intergenerational transmission of trauma effects: putative role of epigenetic mechanisms // World Psychiatry. 2018. V. 17. I. 3. P. 243–257.
104. Zglinicki T., Saretzki G. Replicative aging telomers, and oxida­tive stress // Annals of the New York Academy of Sciences. 2002. V. 952.
Р. 24–29.
Учебное издание
Дорошева Елена Алексеевна
КЛИНИЧЕСКАЯ ПСИХОФИЗИОЛОГИЯ.
Клеточно-молекулярный уровень организации центральной нервной си-
стемы и роль его нарушений в формировании психических расстройств
Учебное пособие
Редактор С. В. Исакова
Обложка Е. В. Неклюдовой
Подписано в печать 16.02.2024 г.
Формат 60 х 84 1/16. Уч.-изд. л. 6,5. Усл. печ. л. 6.
Тираж 37 экз. Заказ № 25
Издательско-полиграфический центр НГУ
630090, Новосибирск, ул. Пирогова, 2.
Соседние файлы в предмете [НЕСОРТИРОВАННОЕ]