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.