تأثیر 4 هفته تمرینات پلایومتریک برتغییرات سطوح سرمی فاکتور تغذیه‌ای مشتق از مغز، MDA و SOD مردان فعال

نوع مقاله : علمی - پژوهشی

نویسندگان

1 دانشجوی دکتری دانشگاه بیرجند

2 دانشیار دانشگاه مازندران

10.48308/joeppa.2016.98849

چکیده

هدف: هدف از این تحقیق بررسی تغییرات سطوح سرمی فاکتور تغذیه‌ای مشتق از مغز و فشار اکسایشی افراد فعال به دنبال تمرینات پلایومتریک بود. مواد و روشها: 14دانشجوی مرد فعال که از سلامت کامل جسمانی برخوردار بودند به طور تصادفی به دو گروه تمرین (سن 34/1±14/22 سال،  قد 89/3 ± 14/ سانتی‌متر172، وزن 77/8 ± 42/63 کیلوگرم و شاخص توده بدن77/2 ± 42/21 کیلوگرم/مترمربع) و کنترل (سن 54/2 ± 85/23 سال، قد 11/7 ± 57/178سانتی‌متر، وزن 53/4± 71/71 کیلوگرم و شاخص توده بدن90/1±60/22 کیلوگرم/مترمربع) تقسیم شدند. آزمودنی‌های گروه تمرین به مدت 4 هفته تمرینات پلایومتریک را انجام دادند. سطوح BDNF سرمی، مالون دی‌آلدئید و سوپر اکسید دیسموتاز  قبل و بعد از تمرینات اندازه‌گیری گردید. از تی همبسته برای بررسی تفاوت درون گروه‌ها و از آزمون تی مستقل  برای بررسی تفاوت بین‌گروهی استفاده شد و سطح معنی داری 05/0P< در نظر گرفته شد. یافته‌ها: سطوح سرمی BDNF گروه تمرین در مقایسه درون گروهی تغییر معناداری پیدا نکرد(05/0<P). در صورتیکه سطوح سرمی MDA و SOD افزایش معناداری یافت (به ترتیب 036/0= Pو 002/0=P). اجرای 4 هفته تمرین پلایومتریک تغییر معناداری در سطوح سرمیBDNF و MDA در مقایسه با گروه کنترل ایجاد نکرد(05/0<P)، اما در سطوح سرمی SOD افزایش معناداری مشاهده گردید (049/0 =P). نتیجه‌گیری: نتایج تحقیق حاضر نشان دهنده عدم تغییر معنادار BDNF به دنبال تمرینات منظم پلایومتریک بود. با توجه به افزایش مقادیر درون گروهی شاخص پراکسیداسیون لیپید و از سوی دیگر عدم تغییر بین گروهی آن، نمی‌توان به طور قاطع در باره نقش ضد اکسایشی احتمالی BDNF در مقابله با فشار ناشی از فعالیت بدنی نتیجه‌گیری کرد و این موضوع به مطالعات بیشتری نیاز دارد.

کلیدواژه‌ها


عنوان مقاله [English]

The Effect of 4 Weeks Plyometric Training on Alterations in Serum Levels of Brain- Derived Neurotrophic Factor, MDA And SOD in Active Men

چکیده [English]



Purpose: The objective of this study was to investigate the alterations of Serum levels of brain derived neurotrophic
factor, and oxidative stress following a period of plyometric training in active men. Methods: Fourteen healthy active
male students randomly divided into two groups: training (mean age 22.14±1.34 years, height 172.14±3.89 cm, weight
63.42±8.77 kg, BMI 21.42±2.77 kg/m2) and control (mean age 23.85±2.54 years, height 178.57±7.11 cm, weight
71.71±4.53 kg, BMI 22.60±1.90 kg/m2). Training group performed 4 weeks of plyometric training. BDNF,
malondialdehyde and superoxide dismutase activity was measured. Paired sample t-test was used to examine differences
within groups, and independent t-test was utilized to examine differences between groups. Differences were considered to
be significant when p<0.05. Results: In compared within group, BDNF levels of training group did not change
significantly (P> 0.05) compared with before training, whereas serum levels of SOD and MDA increased significantly
(P=0.002, P=0.036, respectively). BDNF and MDA did not change significantly between control and training groups
following 4 weeks of plyometric training (P> 0.05) but caused a significant increase in serum levels of SOD (P= 0.049).
Conclusions: The findings of the present study indicate no significant changes in BDNF levels following regular
plyometric training. Regarding increased lipid peroxidation index values in within group and lack of any changes in
between group, can not accurate conclusion about the possible antioxidant role of BDNF against stress induced by
physical activity, so needs to more investigations.

کلیدواژه‌ها [English]

  • Brain-derived neurotrophic factor
  • Malondialdehyde
  • superoxide dismutase
  • Plyometric training
  1. Numakawa, T.; Matsumoto, T.; Numakawa, Y.; Richards, M.; Yamawaki, S.; Kunugi, H. (2011). Protective Action of Neurotrophic Factors and Estrogen against Oxidative Stress-Mediated Neurodegeneration, Journal of Toxicol, Volume 2011.
  2. Hosseinzadeh, S.; Dabidi, R.V.; Mahjoub, S.; Taghipour, D. M. (2012). The Interactive Effect of Lead Acetate and Endurance Training on the Brain-Derived Neurotrophic Factor and Malondialdehyde Levels in Rat's Cortex, J Babol Univ Med Sci; 14(2).
  3. Tsai, C.Y.; Chan, J.Y.H.; Hsu, K.S.; Chang, A.Y.W.; Chan, S.H.H. (2012). Brain-Derived Neurotrophic Factor Ameliorates Brain Stem Cardiovascular Dysregulation during Experimental Temporal Lobe Status Epilepticus, PLoS ONE 7(3).
  4. Gama, C.S.; Berk, M.; Andreazza, A.C.; Kapczinski, F.; Belmonte-de-Abreu, P. (2008). Serum levels of brain-derived neurotrophic factor and thiobarbituric acid reactive substances in chronically medicated schizophrenic patients: a positive correlation, Rev Bras Psiquiatr; 30(4):337-40.
  5. Klumpp, S.; Kriha, D.; Bechmann, G.; Maasssen, A.; Maier, S.; Pallast, S.; et al. (2005). Phosphorylation of the growth factors bFGF, NGF, and BDNF: a prerequaisite for their biological activity, Neurochem.Int, 48: 131–137.
  6. Ploughman, M.; Granter-Button, S.; Chernenko, G.; Tucker, B.A.; Mearow, K.M.; Corbett, D. (2005). Endurance exercise regimens induce differential effects on brain-derived neurotrophic factor, synapsin-I and insulin-like growth factor I after focal ischemia, Neuroscience, 136: 991–1001.
  7. Yarrow, J.F.; White, L.J.; McCoy, S.C.; Borst, S.E. (2010). Training augments resistance exercise induced elevation of circulating brain derived neurotrophic factor (BDNF), Neurosci Lett, 479: 161-5.
  8. Zoladz, J.A.; Pilc, A.; Majerczak, J.; Grandys, M.; Zapart-Bukowska, J.; Duda, K. (2008). Endurance training increases plasma brain-derived neurotrophic factor concentration in young healthy men, J Physiol Pharmacol, 7:119-132.
  9. James, S.W.; Lee, T.F. (2012). Effects of Endurance Exercise Training on Brain-Derived Neurotrophic Factor, Journal of Exercise Physiologyonline, 15(4).
  10. Goekint, M.; De Pauw, K.; Roelands, B.; Njemini, R.; Bautmans, I.; Mets, T.; Meeusen, R. (2010). Strength training does not influence serum brain-derived neurotrophic factor, European Journal Of Applied Physiology, Sep, 110(2): 285-293.
  11. Gaeini, A. A.; Hamedinia, M. R. (2006), The effect of vitamin E on oxidative stress at rest and after exhaustive exercise in the student-athlete, Olympic Journal, 25, 99-111.Schneeberg, A. (2007). Investigation in to the relationship between physical activity and total plasma homocystein, [dissertation] Department of Community Health and Epidemiology in conformity Queen’s University Kingston, Ontario, Canada September.
  12. Cechetti, F.; Fochesatto, C.; Scopel, D.; Nardin, P.; Gonçalves, C.A.; Netto, C.A.; Siqueira, I.R. (2008). Effect of a neuroprotective exercise protocol on oxidative state and BDNF levels in the rat hippocampus, Brain Research, 1188: 182–188.Clarkson, P.M. (1995). Micronutrients and exercise: antioxidants and minerals, J Sports Sci, 13: 11-24.
  13.  
  14. Radak, Z.; Chung, H.Y.; Goto, S. (2008). Systemic adaptation to oxidative challenge induced by regular exercise, Free Radical Biology & Medicine, 44: 153–9.
  15. Radak, Z.; Kumagai, S.; Taylor, A.; Naito, H.; Goto S. (2007). Effects of exercise on brain function: role of free radicals, Appl. Physiol. Nutr. Metab, 32: 942-6.
  16. Atalay, G.N.; Ateşoğlu, U.; Erbaş, D. (2004). Effects of plyometric training with different type of loading on nitric oxide and oxidant-antioxidant systems, Fizyoterapi Rehabilitasyon, 15(1): 9-14.Gomez-Pinilla, F. (2008). The influences of diet and exercise on mental health through hormesis, Ageing Research Reviews, 7(1): 49-62.
  17. Chatzinikolaou, A.; Fatouros, I.G.; Gourgoulis, V.; Avloniti, A.; Jamurtas, A.Z.; Nikolaidis, M.G, et al. (2010). Time course of changes in performance and inflammatory responses after acute plyometric exercise, J Strength Cond Res;24(5):1389-98.Wu, A.; Ying, Z.; Gomez-Pinilla, F. (2004). The interplay between oxidative stress and brain-derived neurotrophic factor modulates the outcome of a saturated fat diet on synaptic plasticity and cognition, Eur J Neurosci, 19(7):1699-707.
  18. Beaton, L.J.; Tarnopolsky, M.A.; Phillips, S.M. (2002). Contraction-induced muscle damage in humans following calcium channel blocker administration, J Physiol, Nov 1;544(Pt 3): 849-59.
  19. Close, G.L.; Ashton, T.; Cable, T.; Doran, D.; MacLaren, D.P. (2004). Eccentric exercise, isokinetic muscle torque and delayed onset muscle soreness: the role of reactive oxygen species, Eur J Appl Physiol, May;91(5-6):615-21.
  20. Radcliffe, J.C., Fox R.C. (2007). Theoretical and Applied plyometric, Translated by: Zia fallah mohammadi, Mazandaran University Press.
  21. Draper, H.H.; Hadley, M. (1990). MDA determination as an index of lipid peroxidation, Methods Enzymol, 186: 421-430.
  22. Kono, Y. (1978). Generation of Superoxide radical during auto-oxidation of hydroxylamine and an assay for superoxide dismutase. Arch. Biochem. Biophys.186, 189–95.
  23. Nofuji, Y.; Suwa, M.; Moriyama, Y.; Nakano, H.; Ichimiya, A.; Nishichi, R. et al. (2008). Decreased serum-brain derived neurotrophic factor in trained men, Neuro. Lett. 437: 29–32.
  24. Currie, J.; Ramsbottom, R.; Ludlow, H.; Nevill, A.; Gilder, M. (2009). Cardio-respiratory fitness, habitual physical activity and serum brain derived neurotrophic factor (BDNF) in men and women, Neuroscience Letters, 451: 152–155.
  25. Sakuma, k.; and Yamaguchi, A. (2011). The Recent Understanding of the Neurotrophin’s Role in Skeletal Muscle Adaptation. Journal of Biomedicine and Biotechnology, 2011.
  26. Rasmussen, P.; Brassard, P.; Adser, H.; Pedersen, M.V.; Leick, L.; Hart, E., et al. (2009). Evidence for a release of brain-derived neurotrophic factor from the brain during exercise. Exp Physiol;94:1062-9.
  27. Seifert, T.; Brassard, P.; Wissenberg, M.; Rasmussen, P.; Nordby, P.; Stallknecht, B. (2010). Endurance training enhances BDNF release from the human brain. Am J Physiol Regul Integr Comp Physiol; 298:R372-7.
  28. Kapczinski, F.; Frey, B.N.; Andreazza, A.C.; Kauer-Sant'Anna, M.; Cunha, A.B.; Post, R.M. (2008). Increased oxidative stress as a mechanism for decreased BDNF levels in acute manic episodes, Revista Brasileira de Psiquiatria, Sep;30(3):243-245.
  29. Radak, Z.; Toldy, A.; Szabo, Z.; Siamilis, S.; Nyakas, C.; Silye, G.; et al. (2006). The effects of training and detraining on memory, neurotrophins and oxidative stress markers in rat brain, Neurochemistry International, 49: 387–392.
  30. Piercy, R.J.; Hinchcliff, K.W.; DiSilvestro, R.A.; Reinhart, G.A.; Baskin, C.R.; Hayek, M.G.; et al. (2000). Effect of dietary supplements containing antioxidants on attenuation of muscle damage in exercising sled doges, American journal of Veterinary research, 61 (11), 1438-1445.
  31. Oliveira, A.R.; Schneider, C.D.; Ribeiro, J.L.; Deresz, L.F.; Barp, J.; Bello-Klin, A. (2003). Oxidative stress after three different intensities of running, Med.Sci.Sport.Exer, 35(5), Supplement.
  • تاریخ دریافت: 09 اسفند 1395
  • تاریخ بازنگری: 22 خرداد 1403
  • تاریخ پذیرش: 11 دی 1399
  • تاریخ اولین انتشار: 11 دی 1399
  • تاریخ انتشار: 01 خرداد 1395