Россия
Россия
Россия
Россия
Ретиноевая кислота, производное витамина А, является важным компонентом сигнализации между клетками в организме. В то же время имеются противоречивые данные о ее влиянии на продолжительность жизни организма. В данной работе исследовано влияние ретиноевой кислоты на длительность жизни особей Drosophila melanogaster и их устойчивость к индуктору окислительного стресса параквату. Ретиноевая кислота в концентрациях 10 и 500 мкмоль/л оказала геропротекторный эффект на самок дрозофил, вызвав увеличение медианной продолжительности жизни и возраста 90 % смертности на 2–5 и 6 % соответственно. Но данное вещество не влияло на выживаемость самцов, так же как устойчивость к прооксиданту параквату особей обоих полов. Положительное действие ретиноевой кислоты на продолжительность жизни может быть обусловлено активацией генов репарации ДНК mei-9 и okr.
продолжительность жизни, стрессоустойчивость, ретиноевая кислота, Drosophila melanogaster
1. A synopsis on aging-theories, mechanisms and future prospects / J. P. da Costa, R. Vitorino, G. M. Silva [et al.] // Ageing Res Rev. – 2016. – Vol. 29. – P. 90–112.
2. Targeting aging mechanisms: pharmacological perspectives / A. Moskalev, Z. Guvatova, I. A. Lopes [et al.] // Trends in Endocrinology and Metabolism: TEM. – 2022. –Vol. 33, № 4. – P. 266–280.
3. Retinoic acid signaling pathways in development and diseases / B. C. Das, P. Thapa, R. Karki [et al.] // Bioorganic & Medicinal Chemistry. – 2014. – Vol. 22, № 2. – P. 673–683.
4. Rastinejad, F. Retinoic acid receptor structures: the journey from single domains to full-length complex / F. Rastinejad // Journal of Molecular Endocrinology. – 2022. – Vol. 69, № 4. – P. T25–T36.
5. Das, B. C. Potential therapeutic roles of retinoids for prevention of neuroinflammation and neurodegeneration in Alzheimer’s disease / B. C. Das, S. Dasgupta, S. K. Ray // Neural Regeneration Research. – 2019. – Vol. 14, № 11. – P. 1880–1892.
6. Wołoszynowska-Fraser, M. U. Vitamin A and retinoic acid in cognition and cognitive disease / M. U. Wołoszynowska-Fraser, A. Kouchmeshky, P. McCaffery // Annual Review of Nutrition. – 2020. – Vol. 40. – P. 247–272.
7. Targeting the retinoic acid signaling pathway as a modern precision therapy against cancers / K. Lavudi, S. M. Nuguri, Z. Olverson [et al.] // Frontiers in Cell and Developmental Biology. – 2023. – Vol. 11. – P. 1254612.
8. Olsen, T. Retinol, retinoic acid, and retinol-binding protein 4 are differentially associated with cardiovascular disease, type 2 diabetes, and obesity: An overview of human studies / T. Olsen, R. Blomhoff // Advances in Nutrition (Bethesda, Md.). – 2020. – Vol. 11, № 3. – P. 644–666.
9. The role of retinoic acid receptor-related orphan receptors in skeletal diseases / Y. Zhang, J. Ma, X. Bao [et al.] // Frontiers in Endocrinology. – 2023. – Vol. 14. – P. 1302736.
10. Quan, T. Human skin aging and the anti-aging properties of retinol / T. Quan // Biomolecules. – 2023. – Vol. 13, № 11. – P. 1614.
11. Long-term dietary administration of valproic acid does not affect, while retinoic acid decreases, the lifespan of G93A mice, a model for amyotrophic lateral sclerosis / C. Crochemore, M. Virgili, B. Bonamassa [et al.] // Muscle & Nerve. – 2009. – Vol. 39, № 4. – P. 548–552.
12. Youthful and age-related matreotypes predict drugs promoting longevity / C. Statzer, E. Jongsma, S. X. Liu [et al.] // Aging Cell. – 2021. – Vol. 20, № 9. – P. e13441.
13. Xia, B. Transgenerational programming of longevity and reproduction by post-eclosion dietary manipulation in Drosophila / B. Xia, J. S. de Belle // Aging. – 2016. – Vol. 8, № 5. – P. 1115–1134.
14. Hilton, J. F. An algorithm for conducting exact Smirnov tests / J. F. Hilton, C. R. Mehta, N. R. Patel // Computational Statistics and Data Analysis. – 1994. – Vol. 17, № 4. – P. 351–361.
15. Mantel, N. Evaluation of survival data and two new rank order statistics arising in its consideration / N. Mantel // Cancer Chemotherapy Reports. Part 1. – 1966. – Vol. 50, № 3. – P. 163–170.
16. Martinez, R. L. A pretest for choosing between logrank and Wilcoxon tests in the two-sample problem / R. L. Martinez, D. A. NaranjoJ // Metron. – 2012. – Vol. 68, № 2. – P. 111–125.
17. Statistical methods for testing effects on ‘maximum lifespan’ / C. Wang, Q. Li, D. Redden [et al.] // Mechanisms of Ageing and Development. – 2004. – Vol. 125, № 9. – P. 629–632.
18. Intravenously administered, retinoid activating nanoparticles increase lifespan and reduce neurodegeneration in the SOD1G93A mouse model of ALS / D. X. Medina, E. P. Chung, C. D. Teague [et al.] // Frontiers in Bioengineering and Biotechnology. – 2020. – Vol. 8. – P. 224.
19. Long-term dietary administration of valproic acid does not affect, while retinoic acid decreases, the lifespan of G93A mice, a model for amyotrophic lateral sclerosis / C. Crochemore, M. Virgili, B. Bonamassa [et al.] // Muscle & Nerv. – 2009. – Vol. 39, № 4. – P. 548–552.
20. Almaguer, J. The сontribution of hippocampal all-trans retinoic acid (ATRA) deficiency to Alzheimer’s disease: A narrative overview of ATRA-dependent gene expression in post-mortem hippocampal tissue / J. Almaguer, A. Hindle, J. J. Lawrence // Antioxidants (Basel, Switzerland). –2023. – Vol. 12, № 11. – P. 1921.
21. All-trans retinoic acid and rapamycin normalize Hutchinson Gilford progeria fibroblast phenotype / C. Pellegrini, M. Columbaro, C. Capanni [et al.] // Oncotarget. – 2015. – Vol. 6, № 30. – P. 29914–29928.
22. A High Throughput Phenotypic Screening reveals compounds that counteract premature osteogenic differentiation of HGPS iPS-derived mesenchymal stem cells / A. Lo Cicero, A. L. Jaskowiak, A. L. Egesipe [et al.] // Scientific Reports. – 2016. – Vol. 6. – P. 34798.
23. Retinoic acid protects against lipopolysaccharide-induced ferroptotic liver injury and iron disorders by regulating Nrf2/HO-1 and RARβ signaling / X. Lai, A. Wu, Y. Bing [et al.] // Free Radical Biology & Medicine. – 2023. – Vol. 205. – P. 202–213.
24. Retinoic acid reduces kidney injury by regulating oxidative stress, NRF-2, and apoptosis in hyperoxic mice / O. Kayalar, B. B. Bayrak, M. Yildirim [et al.] // Cell Biochemistry and Function. – 2024. – Vol. 42, № 6. – P. e4094.
25. Siddikuzzaman, V. M. Grace. Anti-metastatic study of liposome-encapsulated all trans retinoic acid (ATRA) in B16F10 melanoma cells-implanted C57BL/6 mice / V. M. Grace Siddikuzzaman // Cancer Investigation. – 2014. – Vol. 32, № 10. – P. 507–517.
26. CAR T-cell-mediated delivery of bispecific innate immune cell engagers for neuroblastoma / G. Pascual-Pasto, B. McIntyre, M. G. Hines [et al.] // Nature Communications. – 2024. – Vol. 15, № 1. – P. 7141.
27. ATRA protects skin fibroblasts against UV induced oxidative damage through inhibition of E3 ligase Hrd1 / X. Cheng, W. Qian, F. Chen [et al.] // Molecular Medicine Reports. – 2019. – Vol. 20, № 3. – P. 2294–2302.
28. The effect of all-trans retinoic acid on the mitochondrial function and survival of cardiomyoblasts exposed to local photodamage / S. Kurekova, Z. S. Tomaskova, N. Andelova [et al.] // Cell Biology International. – 2022. – Vol. 46, № 6. – P. 947–964.
29. All-trans-retinoic acid induces RARB-dependent apoptosis via ROS induction and enhances cisplatin sensitivity by NRF2 downregulation in cholangiocarcinoma cells / S. Butsri, V. Kukongviriyapan, L. Senggunprai [et al.] // Oncology Letters. – 2022. – Vol. 23, № 6. – P. 179.
30. Mechanism of retinoic acid-induced transcription: histone code, DNA oxidation and formation of chromatin loops / C. Zuchegna, F. Aceto, A. Bertoni [et al.] // Nucleic Acids Research. – 2014. – Vol. 42, № 17. – P. 11040–11055.
31. All-trans retinoic acid and rapamycin normalize Hutchinson Gilford progeria fibroblast phenotype / C. Pellegrini, M. Columbaro, C. Capanni [et al.] // Oncotarget. – 2015. – Vol. 6, № 30. – P. 29914–29928.
32. Rossetti, S. Emerging cancer epigenetic mechanisms regulated by all-trans retinoic acid / S. Rossetti, N. Sacchi // Cancers. – 2020. – Vol. 12, № 8. – P. 2275.
33. Lifespan and stress resistance in Drosophila with overexpressed DNA repair genes / M. Shaposhnikov, E. Proshkina, L. Shilova [et al.] // Scientific Reports. – 2015. – Vol. 5. – P. 15299.
34. Sekelsky, J. DNA repair in Drosophila: Mutagens, models, and missing genes / J. Sekelsky // Genetics. – 2017. – Vol. 205, № 2. – P. 471–490.
35. The Drosophila melanogaster DmRAD54 gene plays a crucial role in double-strand break repair after P-element excision and acts synergistically with Ku70 in the repair of X-ray damage / R. Kooistra, A. Pastink, J. B. Zonneveld [et al.] // Molecular and Cellular Biology. – 1999. – Vol. 19, № 9. – P. 6269–6275.
36. Nucleotide excision repair capacity increases during differentiation of human embryonic carcinoma cells into neurons and muscle cells / W. Li, W. Liu, A. Kakoki [et al.] // The Journal of Biological Chemistry. – 2019. – Vol. 294, № 15. – P. 5914–5922.
37. The vitamin A derivative all-trans retinoic acid repairs amyloid-β-induced double-strand breaks in neural cells and in the murine neocortex / E. Gruz-Gibelli, N. Chessel, C. Allioux [et al.] // Neural Plasticity. – 2016. – P. 3707406.
38. Neuroprotection against amyloid-β-induced DNA double-strand breaks is mediated by multiple retinoic acid-dependent pathways / J. Colas, N. Chessel, A. Ouared [et al.] // Neural Plasticity. – 2020. – P. 9369815.
39. Влияние селективных препаратов, модулирующих ответ на повреждение ДНК, на радиоустойчивость Drosophila melanogaster / Н. С. Уляшева, Е. Н. Прошкина, М. В. Шапошников [и др.] // Известия Коми научного центра Уральского отделения Российской академии наук. Серия «Экспериментальная биология и экология». – 2022. – № 4 (56). – С. 69–75.
40. Tokarz, P. All-trans retinoic acid modulates DNA damage response and the expression of the VEGF-A and MKI67 genes in ARPE-19 cells subjected to oxidative stress / P. Tokarz, A. W. Piastowska-Ciesielska [et al.] // International Journal of Molecular Sciences. – 2016. – Vol. 17, № 6. – P. 898.
41. Susceptibility to DNA damage caused by abrogation of Rad54 homolog B: A putative mechanism for chemically induced cleft palate / W. Qiao, P. Huang, X. Wang [et al.] // Toxicology. – 2021. – Vol. 456. – P. 152772.



