The effect of endurance, resistance and concurrent exercise with oral consumption hawthorn extract in some inflammatory biomarkers in induced Alzheimer's male rats

Document Type : Original Research

Authors
1 Bu Ali Sina University
2 Department of exercise physiology, faculty of sport sciences, Bu-Ali Sina University, Hamedan, Iran
Abstract
Introduction: endurance and resistance exercise and the consumption of hawthorn alone and in combination have an effect on Alzheimer's disease.This study was conducted with the aim of the effect of hawthorn consumption and exercise on the inflammatory indices of Alzheimer's rats by trimethyltin chloride (TMT).

Materials and methods: rats were randomly divided into 9 healthy control and Alzheimer's groups with interventions (control, endurance training, resistance training, combined training, hawthorn, endurance training + hawthorn, resistance training + hawthorn, combined training + hawthorn). Then Alzheimer's disease developed. performed resistance , combined ,endurance exercises every week (12 weeks). Finally, blood was taken from the inferior vena and the inflammatory variables CRP, IL-6 ,TNF-α were measured by ELISA method. The Shapiro-Wilk test was used to check the normal distribution of the data, and the one-way analysis of variance (ANOVA) was used to check the mean difference between the groups (Tukey's test). P ​​<0.05 were considered statistically significant.

Results: results showed that the induction of Alzheimer's disease induced by TMT caused a significant increase in the levels of TNF α, IL 6, CRP in the Alzheimer's control group compared to the healthy control. And 12 weeks of combined training with and without hawthorn had a significant decrease in the level of these variables compared to Alzheimer's control.

Conclusion: As a result, endurance and resistance sports along with the consumption of hawthorn lead to the reduction of some inflammatory factors in Alzheimer's rats.

key words: Alzheimer Disease, Hawthorn

TNF-α , CRP , IL-6 .

Keywords


References
1. Chang, W., et al., Trans-Anethole Alleviates Trimethyltin Chloride-Induced Impairments in Long-Term Potentiation. Pharmaceutics, 2022. 14(7): p. 1422.
2. Liu, X.-J., et al., TMT induces apoptosis and necroptosis in mouse kidneys through oxidative stress-induced activation of the NLRP3 inflammasome. Ecotoxicology and environmental safety, 2022. 230: p. 113167.
3. Madadi, S., et al., Partial improvement of spatial memory damages by bone marrow mesenchymal stem cells transplantation following trimethyltin chloride administration in the rat CA1. Basic and Clinical Neuroscience, 2019. 10(6): p. 567.
4. Dey, A., et al., Natural products against Alzheimer's disease: Pharmaco-therapeutics and biotechnological interventions. Biotechnology Advances, 2017. 35(2): p. 178-216.
5. Akiyama, H., et al., Inflammation and Alzheimer’s disease. Neurobiology of aging, 2000. 21(3): p. 383-421.
6. Torres-Acosta, N., et al., Therapeutic potential of TNF-α inhibition for Alzheimer’s disease prevention. Journal of Alzheimer's Disease, 2020. 78(2): p. 619-626.
7. Swardfager, W., et al., A meta-analysis of cytokines in Alzheimer's disease. Biological psychiatry, 2010. 68(10): p. 930-941.
8. Ng, A., et al., IL-1β, IL-6, TNF-α and CRP in elderly patients with depression or Alzheimer’s disease: systematic review and meta-analysis. Scientific reports, 2018. 8(1): p. 1-12.
9. Del Giudice, M. and S.W. Gangestad, Rethinking IL-6 and CRP: Why they are more than inflammatory biomarkers, and why it matters. Brain, behavior, and immunity, 2018. 70: p. 61-75.
10. da Luz Scheffer, D. and A. Latini, Exercise-induced immune system response: Anti-inflammatory status on peripheral and central organs. Biochimica et Biophysica Acta (BBA)-Molecular Basis of Disease, 2020. 1866(10): p. 165823.
11. Idriss, H.T. and J.H. Naismith, TNFα and the TNF receptor superfamily: Structure‐function relationship (s). Microscopy research and technique, 2000. 50(3): p. 184-195.
12. Kelly, A.M., Exercise-induced modulation of neuroinflammation in models of Alzheimer’s disease. Brain plasticity, 2018. 4(1): p. 81-94.
13. Costache, A.-D., et al., Beyond the Finish Line: The Impact and Dynamics of Biomarkers in Physical Exercise—A Narrative Review. Journal of Clinical Medicine, 2021. 10(21): p. 4978.
14. Hopps, E., B. Canino, and G. Caimi, Effects of exercise on inflammation markers in type 2 diabetic subjects. Acta diabetologica, 2011. 48(3): p. 183-189.
15. Powers, S.K., et al., Exercise-induced oxidative stress: Friend or foe? Journal of sport and health science, 2020. 9(5): p. 415-425.
16. Mee-Inta, O., Z.-W. Zhao, and Y.-M. Kuo, Physical exercise inhibits inflammation and microglial activation. Cells, 2019. 8(7): p. 691.
17. Alirezalu, A., et al., Physicochemical characterization, antioxidant activity, and phenolic compounds of hawthorn (Crataegus spp.) fruits species for potential use in food applications. Foods, 2020. 9(4): p. 436.
18. Li, C. and M.-H. Wang, Anti-inflammatory effect of the water fraction from hawthorn fruit on LPS-stimulated RAW 264.7 cells. Nutrition research and practice, 2011. 5(2): p. 101-106.
19. Zarrinkalam, E., et al., Resistance training and hawthorn extract ameliorate cognitive deficits in streptozotocin-induced diabetic rats. Biomedicine & Pharmacotherapy, 2018. 97: p. 503-510.
20. Newcombe, E.A., et al., Inflammation: the link between comorbidities, genetics, and Alzheimer’s disease. Journal of neuroinflammation, 2018. 15(1): p. 1-26.
21. Suzuki, K., et al., Characterization and modulation of systemic inflammatory response to exhaustive exercise in relation to oxidative stress. Antioxidants, 2020. 9(5): p. 401.
22. Holbrook, J., et al., Tumour necrosis factor signalling in health and disease. F1000Research, 2019. 8(111): p. 111.
23. Petersen, A.M.W. and B.K. Pedersen, The anti-inflammatory effect of exercise. Journal of applied physiology, 2005. 98(4): p. 1154-1162.
24. Santos, R.d., et al., Moderate exercise training modulates cytokine profile and sleep in elderly people. Cytokine, 2012. 60(3): p. 731-735.
25. Nicklas, B.J., et al., Exercise training and plasma C‐reactive protein and interleukin‐6 in elderly people. Journal of the American Geriatrics Society, 2008. 56(11): p. 2045-2052.
26. Liu, Y., et al., Calorie restriction with exercise intervention improves inflammatory response in overweight and obese adults: A systematic review and meta-analysis. Frontiers in physiology, 2021: p. 1887.
27. Holmes, C., et al., Systemic inflammation and disease progression in Alzheimer disease. Neurology, 2009. 73(10): p. 768-774.
28. Abd El-Kader, S.M. and F.M. Al-Shreef, Inflammatory cytokines and immune system modulation by aerobic versus resisted exercise training for elderly. African health sciences, 2018. 18(1): p. 120-131.
29. Magalhães, J.P., et al., Impact of combined training with different exercise intensities on inflammatory and lipid markers in type 2 diabetes: A secondary analysis from a 1-year randomized controlled trial. Cardiovascular Diabetology, 2020. 19(1): p. 1-11.
30. Chen, Z. and C. Zhong, Oxidative stress in Alzheimer’s disease. Neuroscience bulletin, 2014. 30(2): p. 271-281.
31. Suzuki, K., Recent Progress in Applicability of Exercise Immunology and Inflammation Research to Sports Nutrition. Nutrients, 2021. 13(12): p. 4299.
32. Jensen, C.S., et al., Exercise as a potential modulator of inflammation in patients with Alzheimer's disease measured in cerebrospinal fluid and plasma. Experimental Gerontology, 2019. 121: p. 91-98.
33. Angulo, J., et al., Physical activity and exercise: Strategies to manage frailty. Redox biology, 2020. 35: p. 101513.
34. Zhang, J., et al., Food Applications and Potential Health Benefits of Hawthorn. Foods, 2022. 11(18): p. 2861.
35. Kim, E., E. Jang, and J.-H. Lee, Potential Roles and Key Mechanisms of Hawthorn Extract against Various Liver Diseases. Nutrients, 2022. 14(4): p. 867.
36. Cheng, F., et al., Ethanol extract of Chinese hawthorn (Crataegus pinnatifida) fruit reduces inflammation and oxidative stress in rats with doxorubicin-induced chronic heart failure. Medical Science Monitor: International Medical Journal of Experimental and Clinical Research, 2020. 26: p. e926654-1.