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A Single Bout of High-intensity Aerobic Exercise Facilitates Response to Paired Associative Stimulation and Promotes Sequence-specific Implicit Motor Learning

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Date 2014 Sep 27
PMID 25257866
Citations 90
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Abstract

The objectives of the present study were to evaluate the impact of a single bout of high-intensity aerobic exercise on 1) long-term potentiation (LTP)-like neuroplasticity via response to paired associative stimulation (PAS) and 2) the temporal and spatial components of sequence-specific implicit motor learning. Additionally, relationships between exercise-induced increases in systemic brain-derived neurotrophic factor (BDNF) and response to PAS and motor learning were evaluated. Sixteen young healthy participants completed six experimental sessions, including the following: 1) rest followed by PAS; 2) aerobic exercise followed by PAS; 3) rest followed by practice of a continuous tracking (CT) task and 4) a no-exercise 24-h retention test; and 5) aerobic exercise followed by CT task practice and 6) a no-exercise 24-h retention test. The CT task included an embedded repeated sequence allowing for evaluation of sequence-specific implicit learning. Slope of motor-evoked potential recruitment curves generated with transcranial magnetic stimulation showed larger increases when PAS was preceded by aerobic exercise (59.8% increase) compared with rest (14.2% increase, P = 0.02). Time lag of CT task performance on the repeated sequence improved under the aerobic exercise condition from early (-100.8 ms) to late practice (-75.2 ms, P < 0.001) and was maintained at retention (-79.2 ms, P = 0.004) but did not change under the rest condition (P > 0.16). Systemic BDNF increased on average by 3.4-fold following aerobic exercise (P = 0.003), but the changes did not relate to neurophysiological or behavioral measures (P > 0.42). These results indicate that a single bout of high-intensity aerobic exercise can prime LTP-like neuroplasticity and promote sequence-specific implicit motor learning.

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References
1.
Mang C, Campbell K, Ross C, Boyd L . Promoting neuroplasticity for motor rehabilitation after stroke: considering the effects of aerobic exercise and genetic variation on brain-derived neurotrophic factor. Phys Ther. 2013; 93(12):1707-16. PMC: 3870490. DOI: 10.2522/ptj.20130053. View

2.
Plewnia C, Hoppe J, Hiemke C, Bartels M, Cohen L, Gerloff C . Enhancement of human cortico-motoneuronal excitability by the selective norepinephrine reuptake inhibitor reboxetine. Neurosci Lett. 2002; 330(3):231-4. DOI: 10.1016/s0304-3940(02)00803-0. View

3.
Knaepen K, Goekint M, Heyman E, Meeusen R . Neuroplasticity - exercise-induced response of peripheral brain-derived neurotrophic factor: a systematic review of experimental studies in human subjects. Sports Med. 2010; 40(9):765-801. DOI: 10.2165/11534530-000000000-00000. View

4.
Stefan K, Wycislo M, Classen J . Modulation of associative human motor cortical plasticity by attention. J Neurophysiol. 2004; 92(1):66-72. DOI: 10.1152/jn.00383.2003. View

5.
Klintsova A, Dickson E, Yoshida R, Greenough W . Altered expression of BDNF and its high-affinity receptor TrkB in response to complex motor learning and moderate exercise. Brain Res. 2004; 1028(1):92-104. DOI: 10.1016/j.brainres.2004.09.003. View