Oxidative stress and exogenous constitutional obesity
https://doi.org/10.18699/SSMJ20240607
Abstract
The literature review is devoted to the problem of exogenous-constitutional obesity and the role of oxidative stress (OS) in this form of obesity. The issues of modern diagnostics and pathogenesis of exogenous-constitutional obesity are considered. The results of various studies devoted to the study of OS in obesity in both laboratory animals and humans are presented. Excess body weight is often accompanied by increased OS and subclinical systemic inflammation. The need to correct the antioxidant status of the body is a topical issue, an important part of which is an individual approach to the selection of agents and dosages in order to reduce the negative impact of free radicals at the cellular level. A significant problem is the lack of a single standard for determining OS parameters, which requires standardized laboratory equipment, in this regard, the choice of a specific method is a responsible step for a research specialist. In this area, there are still many questions that require more detailed study.
About the Authors
O. A. SilizertsevaRussian Federation
Olesya A. Silizertseva.
664003, Irkutsk, Karla Marksa st., 1
M. A. Darenskaya
Russian Federation
Marina A. Darenskaya - doctor of biological sciences, professor.
664003, Irkutsk, Timiryazeva st., 16
L. V. Rychkova
Russian Federation
Lyubov V. Rychkova - doctor of medical sciences, professor, corresponding member of the RAS.
664003, Irkutsk, Timiryazeva st., 16
I. N. Gutnik
Russian Federation
Igor N. Gutnik - doctor of biological sciences, professor.
664003, Irkutsk, Karla Marksa st., 1
T. A. Astakhova
Russian Federation
Tatyana A. Astakhova - candidate of medical sciences.
664003, Irkutsk, Timiryazeva st., 16
L. I. Kolesnikova
Russian Federation
Lyubov I. Kolesnikova - doctor of medical sciences, academician of the RAS.
664003, Irkutsk, Karla Marksa st., 1; 664003, Irkutsk, Timiryazeva st., 16
References
1. WHO. Obesity and overweight. Available at: https://www.who.int/ru/news-room/fact-sheets/detail/obesity-and-overweight [In Russian].
2. Lesnaya A.S., Darenskaya M.A., Semenova N.V., Kolesnikova L.I. A new aspect of metabolic disorders in obesity: carbonyl stress. Sibirskij nauchnyj medicinskij zhurnal = Siberian Scientific Medical Journal. 2023;43(6):24–33. [In Russian]. doi: 10.18699/SSMJ20230603
3. Darenskaya M.A., Rychkova L.V., Kolesnikov S.I., Semenova N.V., Nikitina O.A., Lesnaya A.S., Kolesnikova L.I. Oxidative damage of dna, proteins and c-reactive protein parameters in girls and boys with exogenous constitutional obesity. Byulleten’ eksperimental’noy biologii i meditsiny = Bulletin of Experimental Biology and Medicine. 2023;176(9):307–311. [In Russian]. doi: 10.47056/0365-9615-2023-176-9-307-311
4. Kolesnikova L.I., Darenskaya M.A., Rychkova L.V., Grebenkina L.A., Semenova N.V., Kolesnikov S.I. Lipids methabolism and antioxidant status in exogenous constitutional obesity in girls of Buryatia. Rossiyskiy vestnik perinatologii i pediatrii = Russian Bulletin of Perinatology and Pediatrics. 2021;66(1):80–86. [In Russian]. doi: 10.21508/1027-4065-2021-66-1-80-86
5. Nedogoda S.V. Obesity in the practice of a therapist. Moscow: Eksmo, 2017. 304 p. [In Russian].
6. Dedov I.I., Shestakova M.V., Melnichenko G.A., Mazurina N.V., Andreeva E.N., Bondarenko I.Z., Gusova Z.R., Dzgoeva F.Kh., Eliseev M.S., Ershova E.V., … Sheremet’eva E.V. Interdisciplinary clinical practice guidelines “Management of obesity and its comorbidities”. Ozhireniye i metabolism = Obesity and Metabolism. 2021;18(1):5–99. [In Russian]. doi: 10.14341/omet12714
7. Dorokhov R.N., Chernova V.N., Bubnenkova O.M. Nature of distribution of fatty body weight among the people at various ages both male and female. Uchenye zapiski universiteta imeni Petra Frantsevicha Lesgafta = The Scientific Notes of the P.F. Lesgaft University. 2015;(9):91–96. [In Russian]. doi: 10.5930/issn.1994-4683.2015.09.127.p91-96
8. Rusakova D.S., Shcherbakova M.Yu., Gapparova K.M., Zainudinov Z.M., Tkachev S.I., Sakharovskaya V.G. Modern evaluating methods of the body. Eksperimental’naya i klinicheskaya gastroenterologiya = Experimental and Clinical Gastroenterology. 2012;(8):71–81. [In Russian].
9. Perevoshchikova N.K., Seliverstov I.A., Drakina S.A., Chernykh N.S. Bioelectrical impedance analysis in clinical practice. Mat’i ditya v Kuzbasse = Mother and baby in Kuzbass. 2021;(3):11–20. [In Russian]. doi:10.24412/2686-7338-2021-3-11-20
10. Pavlova Z.Sh., Pyanykh O.P., Golodnikov I.I. Bioimpedance analysis: clinical cases and explanation of changes in human body composition under the influence of various factors. Endokrinologiya. Novosti. Mneniya. Obuchenie = Endocrinology. News. Opinions. Training. 2020;9(4):74–81. [In Russian]. doi: 10.33029/2304-9529-2020-9-4-74-81
11. Semenov M.M., Vybornaya K.V., Radzhabkadiev R.M., Gapparova K.M., Sharafetdinov Kh.Kh., Zainudinov Z.M., Nikityuk D.B. Evaluation of the somatotype of patients with class 1, 2 and 3 obesity according to the Heath-Carter scheme using various formulas. Vestnik vosstanovitel’noy meditsiny = Bulletin of Regenerative Medicine. 2022;21(6):78–90. [In Russian]. doi:10.38025/2078-1962-2022-21-6-78-90
12. Akhmedova R.M., Sofronova L.V., Koryukina I.P. Diagnostic significance of clinical and instrumental indices in children and adolescent obesity. Permskiy meditsinskiy zhurnal = Perm Medical Journal. 2013;30(4):67–73. [In Russian].
13. Peterkova V.A., Bezlepkina O.B., Bolotova N.V., Bogova E.A., Vasyukova O.V., Girsh Ya.V., Kiyaev A.V., Kostrova I.B., Malievskii O.A., Mikhailova E.G., … Khramova E.B. Clinical guidelines “Obesity in children”. Problemy endocrinologii = Problems of Endocrinology. 2021;67(5):67–83. [In Russian]. doi: 10.14341/probl12802
14. Gonzalez A., Simon F., Achiardi O., Vilos C., Cabrera D., Cabello-Verrugio C. The critical role of oxidative stress in sarcopenic obesity. Oxid. Med. Cell. Longev. 2021;2021:4493817. doi: 10.1155/2021/4493817
15. Diseases of adipose tissue. Ed. I.I. Dedov. Moscow: GEOTAR-Media, 2020. 224 p. [In Russian].
16. D’Alessandro A., di Felice G., Manco M., Pastore A., Pezzi S., Mariani M., Fintini D., Onetti MudaA., Porzio O. Study of the association between thiols and oxidative stress markers in children with obesity. Nutrients. 2022;14(17):3637. doi: 10.3390/nu14173637
17. Jakubiak G.K., Osadnik K., Lejawa M., Kasperczyk S., Osadnik T., Pawlas N. Oxidative stress in association with metabolic health and obesity in young adults. Oxid. Med. Cell. Longev. 2021;2021:9987352. doi: 10.1155/2021/9987352
18. Manna P., Jain S.K. Obesity, oxidative stress, adipose tissue dysfunction, and the associated health risks: causes and therapeutic strategies. Metab. Syndr. Relat. Disord. 2015;13(10):423–444. doi: 10.1089/met.2015.0095
19. Szewczyk-Golec K., Rajewski P., Gackowski M., Mila-Kierzenkowska C., Wesołowski R., Sutkowy P., Pawłowska M., Woźniak A. Melatonin supplementation lowers oxidative stress and regulates adipokines in obese patients on a calorie-restricted diet. Oxid. Med. Cell. Longev. 2017;8494107. doi: 10.1155/2017/8494107
20. Alcalá M., Calderon-Dominguez M., Bustos E., Ramos P., Casals N., Serra D., Viana M., Herrero L. Increased inflammation, oxidative stress and mitochondrial respiration in brown adipose tissue from obese mice. Sci. Rep. 2017;7(1):16082. doi: 10.1038/s41598-017-16463-6
21. Ametov A.S. Obesity. Modern view on pathogenesis and therapy. V. 3. Moscow: GEOTAR-Media, 2022. 184 р. [In Russian].
22. Tseilikman V.E., Lukin A.A. On the effect of oxidative stress on the human body. Mezhdunarodnyy nauchno-issledovatel’skiy zhurnal = International Research Journal. 2022;(3-1):206–211. [In Russian]. doi: 10.23670/IRJ.2022.117.3.037
23. Arshad F., Umbreen H., Aslam I., Hameed A., Aftab K., Al-Qahtani W.H., Aslam N., Noreen R. Therapeutic role of mango peels in management of dyslipidemia and oxidative stress in obese females. Biomed. Res. 2021;3094571. doi: 10.1155/2021/3094571
24. Povarova O.V., Gorodetskaya E.A., Kalenikova E.I., Medvedev O.S. Metabolic markers and oxidative stress in children’s obesity pathogenesis. Rossiyskiy vestnik perinatologii i pediatrii = Russian Bulletin of Perinatology and Pediatrics. 2020;65(1):22–29. [In Russian]. doi: 10.21508/1027-4065-2020-65-1-22-29
25. Nikitina O.A., Darenskaya M.A., Rychkova L.V., Semenova N.V., Lesnaya A.S., Prokhorova Zh.V., Kolesnikova L.I. Antioxidant status in adolescents with idiopathic obesity. Sovremennye problemy nauki i obrazovaniya = Modern Problems of Science and Education. 2023;(5):39. doi: 10.17513/spno.33006
26. Kolesnikova L.I., Rychkova L.V., Kolesnikov S.I., Darenskaya M.A., Gavrilova O.A., Kravtsova O.V., Grebenkina L.A., Osipova E.V. The evaluation of the lipid peroxidation system and antioxidant defense in adolescent boys with exogenously constitutive obesity with using the coefficient of oxidative stress. Voprosy pitaniya = Problems of Nutrition. 2018;87(1):28–34. [In Russian]. doi: 10.24411/0042-8833-2018-10003
27. Darenskaya M.A., Rychkova L.V., Astakhova T.A., Pogodina A.V., Dolgikh O.N., Klimkina Yu.N., Kolesnikova L.I. Correlation between actual nutrition and lipid peroxidation and antioxidant defense parameters in aged 14-17 years adolescents living in rural areas. Sibirskij nauchnyj medicinskij zhurnal = Siberian Scientific Medical Journal. 2022;42(5):25–36. doi: 10.18699/SSMJ20220504
28. Prokudina E.S., Maslov L.N., Ivanov V.V., Bespalova I.D., Pismennyi D.S., Voronkov N.S. The role of reactive oxygen species in the pathogenesis of adipocyte dysfunction in metabolic syndrome. prospects of pharmacological correction. Vestnik Rossiyskoy akademii meditsinskikh nauk = Annals of the Russian Academy of Medical Sciences. 2017;72(1):11–16. [In Russian]. doi: 10.15690/vramn798
29. Metabolic syndrome. Ed. A.V. Shabrov. Saint-Petersburg, 2020. 496 р. [In Russian].
30. Ludan V.V., Pol’skaya L.V. The role of antioxidants in the vital activity. Tavricheskiy medico-biologicheskiy vestnik = Tauric Medico-Biological Bulletin. 2019;22(3):86–92. [In Russian].
31. Darenskaya M.A., Gavrilova O.A., Grebenkina L.A., Kravtsova O.V., Natyaganova L.V. The state of lipoperoxidation processes in boys with obesity. Acta Biomedica Scientifica. 2017;2(5-2):28–32. [In Russian]. doi: 10.12737/article_5a3a0d764250a4.87243362
32. Jiang J.T., Jiang Y.J. The influence of palatable high-energy diet in diet-induced obesity pregnant rats on offspring oxidative stress in liver. Eur. Rev. Med. Pharmacol. Sci. 2018;22(8):2468–2476. doi: 10.26355/eurrev_201804_14841
33. Sharapova N.V., Karmanova D.S., Petrova A.A., Sudakova E.A., Glushikhina E.I., Zobkova N.V., Krasikov S.I. Obesogennic and metabolic effects of slight increase in calorie content of food diet in experiment. Orenburgskiy meditsinskiy vestnik = Orenburg Medical Bulletin. 2021;9(2):72–76. [In Russian].
34. Farhangi M.A., Nameni G., Hajiluian G., Mesgari-Abbasi M. Cardiac tissue oxidative stress and inflammation after vitamin D administrations in high fatdiet induced obese rats. BMC Cardiovasc. Disord. 2017;17(1):161. doi: 10.1186/s12872-017-0597-z
35. de Oliveira Marques S., Muller A.P., Luciano T.F., dos Santos Tramontin N., da Silva Caetano M., Luis da Silva Pieri B., Amorim T.L., de Oliveira M.A.L., de Souza C.T. Effects of avocado oil supplementation on insulin sensitivity, cognition, and inflammatory and oxidative stress markers in different tissues of diet-induced obese mice. Nutrients. 2022;14(14):2906. doi: 10.3390/nu14142906
36. Nayan S.I., Chowdhury F.I., Akter N., Rahman M.M., Selim S., Saffoon N., Khan F., Subhan N., Hossain M., Ahmed K.S., … Alam M.A. Leaf powder supplementation of Senna alexandrina ameliorates oxidative stress, inflammation, and hepatic steatosis in high-fat diet-fed obese rats. PLoS One. 2021;16(4):e0250261. doi: 10.1371/journal.pone.0250261
37. Rahman M.M., Alam M.N., Ulla A., Sumi F.A., Subhan N., Khan T., Sikder B., Hossain H., Reza H.M., Alam M.A. Cardamom powder supplementation prevents obesity, improves glucose intolerance, inflammation and oxidative stress in liver of high carbohydrate high fat diet induced obese rats. Lipids Health Dis. 2017;16(1):151. doi: 10.1186/s12944-017-0539-x
38. Yi X., Tang D., Cao S., Li T., Gao H., Ma T., Yao T., Li J., Chang B. Effect of different exercise loads on testicular oxidative stress and reproductive function in obese male mice. Oxid. Med. Cell. Longev. 2020;2020:3071658. doi: 10.1155/2020/3071658
39. Brombach C., Tong W., Giussani D.A. Maternal obesity: new placental paradigms unfolded. Trends Mol. Med. 2022;28(10):823–835. doi: 10.1016/j.molmed.2022.05.013
40. Hernández-Trejo M., Montoya-Estrada A., Torres-Ramos Y., Espejel-Núñez A., Guzmán-Grenfell A., Morales-Hernández R., Tolentino-Dolores M., Laresgoiti-Servitje E. Oxidative stress biomarkers and their relationship with cytokine concentrations in overweight/obese pregnant women and their neonates. BMC Immunol. 2017;18(1):3. doi: 10.1186/s12865-016-0184-6
41. Ametov A.S. Obesity. Modern view on pathogenesis and therapy. V. 4. Moscow: GEOTAR-Media, 2022. 208 р. [In Russian].
42. Gallardo J.M., Gómez-López J., Medina-Bravo P., Juárez-Sánchez F., Contreras-Ramos A., Galicia-Esquivel M., Sánchez-Urbina R., Klünder-Klünder M. Maternal obesity increases oxidative stress in the new-born. Obesity (Silver Spring). 2015;23(8):1650–1654. doi: 10.1002/oby.21159
43. Ballesteros-Guzmán A.K., Carrasco-Legleu C.E., Levario-Carrillo M., Chávez-Corral D.V., Sánchez-Ramírez B., Mariñelarena-Carrillo E.O., Guerrero-Salgado F., Reza-López S.A. Prepregnancy obesity, maternal dietary intake, and oxidative stress biomarkers in the fetomaternal unit. Biomed. Res. Int. 2019;2019:5070453. doi: 10.1155/2019/5070453
44. Lopez-Yañez Blanco A., Díaz-López K.M., Vilchis-Gil J., Diaz-Garcia H., Gomez-Lopez J., Medina-Bravo P., Granados-Riveron J.T., Gallardo J.M., Klünder-Klünder M., Sánchez-Urbina R. Diet and maternal obesity are associated with Increased oxidative stress in newborns: a cross-sectional study. Nutrients. 2022;14(4):746. doi: 10.3390/nu14040746
45. Nasui B.A., Talaba P., Nasui G.A., Sirbu D.M., Borda I.M., Pop A.L., Ciortea V.M., Irsay L., Purcar-Popescu A.I., Cinteza D., … Ungur R.A. The influence of diet and physical activity on oxidative stress in romanian females with osteoarthritis. Nutrients. 2022;14(19):4159. doi: 10.3390/nu14194159
46. Masenga S.K., Kabwe L.S., Chakulya M., Kirabo A. Mechanisms of oxidative stress in metabolic syndrome. Int. J. Mol. Sci. 2023;24(9):7898. doi: 10.3390/ijms24097898
47. Lara-Guzmán Ó.J., Rivera D.A., Corrales-Agudelo V., Salazar-Jaramillo L., Gil-Izquierdo Á., Medina S., Oger C., Durand T., Galano J.M., Escobar J.S., Muñoz-Durango K., Sierra J.A. Dietary antioxidant intake is inversely associated with 2,3-dinor oxylipin metabolites, the major excreted oxylipins in overweight and obese subjects. Free Radic. Biol. Med. 2022;190:42–54. doi: 10.1016/j.freerad-biomed.2022.07.023
48. Romanenko I.A., Polyatykina T.S., Mavrycheva N.V., Budnikova N.V., Grinshtein V.B. Dynamics of metabolic characteristics, markers of oxidative stress and vascular wall damage during treatment of obese prediabetic patients. Klinicheskaya meditsina = Clinical Medicine. 2016;94(3):221–224. [In Russian]. doi: 10.18821/0023-2149-2016-94-3-221-224
49. Selvaraju V., Ayine P., Fadamiro M., Babu J.R., Brown M., Geetha T. Urinary biomarkers of inflammation and oxidative stress are elevated in obese children and correlate with a marker of endothelial dysfunction. Oxid. Med. Cell. Longev. 2019;2019:9604740. doi: 10.1155/2019/9604740
50. Lechuga-Sancho A.M., Gallego-Andujar D., Ruiz-Ocaña P., Visiedo F.M., Saez-Benito A., Schwarz M., Segundo C., Mateos R.M. Obesity induced alterations in redox homeostasis and oxidative stress are present from an early age. PLoS One. 2018;13(1):e0191547. doi: 10.1371/journal.pone.0191547
51. Bekezin V.V., Fakikh I.M., Peresetskaya O.V., Otrokhova E.V. The influence of oxidative stress on the structural-functional condition of common carotid artery (according to the data of ultrasonic doppler examination) of teenagers with obesity and arterial hypertension. Meditsinskiy al’manakh = Medical Almanac. 2013;(3):127–129. [In Russian].
52. Bekezin V.V., Koroleva A.E. Oxidative status and vitamin D in children with allergic rhinitis depending on body fat mass. Bioradikaly i antioksidanty = Bioradicals and Antioxidants. 2021;8(2):64–67. [In Russian].
53. Bekezin V.V., Peresetskaya O.V. The state of oxidative status in adolescent children with a normal body mass index depending on body composition according to bioimpedance measurements. Bioradikaly i antioksidanty = Bioradicals and Antioxidants. 2018;5(3):103–106. [In Russian].
54. Jia X.J., Liu L.X, Tian Y.M., Wang R., Lu Q. The correlation between oxidative stress level and intra-abdominal fat in obese males. Medicine (Baltimore). 2019;98(7):e14469. doi: 10.1097/md.0000000000014469
55. Kargar B., Zamanian Z., Hosseinabadi M.B., Gharibi V., Moradi M.S., Cousins R. Understanding the role of oxidative stress in the incidence of metabolic syndrome and obstructive sleep apnea. BMC Endocr. Disord. 2021;21(1):77. doi: 10.1186/s12902-021-00735-4
56. Kupczyk D., Bilski R., Sokołowski K., Pawłowska M., Woźniak A., Szewczyk-Golec K. Paraoxonase 1: the lectin-like oxidized LDL receptor type I and oxidative stress in the blood of men with type II obesity. Dis. Markers. 2019;2019:6178017. doi: 10.1155/2019/6178017
57. Uçkan K., Demir H., Turan K., Sarıkaya E., Demir C. Role of oxidative stress in obese and nonobese PCOS patients. Int. J. Clin. Pract. 2022;2022:4579831. doi: 10.1155/2022/4579831
58. Nederveen J.P., Mastrolonardo A.J, Xhuti D., Di Carlo A., Manta K., Fuda M.R., Tarnopolsky M.A. Novel multi-ingredient supplement facilitates weight loss and improves body composition in overweight and obese individuals: a randomized, double-blind, placebo-controlled clinical trial. Nutrients. 2023;15(17):3693. doi: 10.3390/nu15173693
59. Ruiz-García I., Ortíz-Flores R., Badía R., García-Borrego A., García-Fernández M., Lara E., Martín-Montañez E., García-Serrano S., Valdés S., Gonzalo M., … Bermúdez-Silva F.J. Rich oleocanthal and oleacein extra virgin olive oil and inflammatory and antioxidant status in people with obesity and prediabetes. The APRIL study: A randomised, controlled crossover study. Clin. Nutr. 2023;42(8):1389–1398. doi: 10.1016/j.clnu.2023.06.027
60. Nikrad N., Farhangi M.A., Fard Tabrizi F.P., Vaezi M., Mahmoudpour A., Mesgari-Abbasi M. The effect of calorie-restriction along with thylakoid membranes of spinach on the gut-brain axis pathway and oxidative stress biomarkers in obese women with polycystic ovary syndrome: a randomized, double-blind, placebo-controlled clinical trial. J. Ovarian. Res. 2023;16(1):216. doi: 10.1186/s13048-023-01288-x
61. Sangaleti C.T., Katayama K.Y., de Angelis K., Lemos de Moraes T., Araújo A.A., Lopes H.F., Camacho C., Bortolotto L.A., Michelini L.C., Irigoyen M.C., … Consolim Colombo F.M. The cholinergic drug galantamine alleviates oxidative stress alongside antiinflammatory and cardio-metabolic effects in subjects with the metabolic syndrome in a randomized trial. Front. Immunol. 2021;12:613979. doi: 10.3389/fimmu.2021.613979
62. Oben J.E., Enyegue D.M., Fomekong G.I., Soukontoua Y.B., Agbor G.A. The effect of Cissus quadrangularis (CQR-300) and a Cissus formulation (CORE) on obesity and obesity-induced oxidative stress. Lipids Health Dis. 2007;6:4. doi: 10.1186/1476-511X-6-4
63. Murer S.B., Aeberli I., Braegger C.P., Gittermann M., Hersberger M., Leonard S.W., Taylor A.W., Traber M.G., Zimmermann M.B. Antioxidant supplements reduced oxidative stress and stabilized liver function tests but did not reduce inflammation in a randomized controlled trial in obese children and adolescents. J. Nutr. 2014;144(2):193–201. doi: 10.3945/jn.113.185561
64. Block G., Jensen C.D., Morrow J.D., Holland N., Norkus E.P., Milne G.L., Hudes M., Dalvi T.B., Crawford P.B., Fung E.B., Schumacher L., Harmatz P. The effect of vitamins C and E on biomarkers of oxidative stress depends on baseline level. Free Radic. Biol. Med. 2008;45(4):377–384. doi: 10.1016/j.freeradbiomed.2008.04.005
65. Sutherland W.H., Manning P.J., Walker R.J., de Jong S.A., Ryalls A.R., Berry E.A. Vitamin E supplementation and plasma 8-isoprostane and adiponectin in overweight subjects. Obesity (Silver Spring). 2007;15(2):386–391. doi: 10.1038/oby.2007.546