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1 , nonvolitional method of measuring adductor pollicis (AP) muscle function by magnetic stimulation of
3 presentations of the right and left abductor pollicis brevis (APB) and flexor carpi radialis (FCR) mu
4 lied low-amplitude vibration to the abductor pollicis brevis (APB) muscle of eight healthy volunteers
5 ial magnetic stimulation (TMS) from abductor pollicis brevis (APB), first dorsal interosseous (FDI),
6 dorsal interosseous, but not in the abductor pollicis brevis and abductor digit minimi muscles, was r
7 ate the excitability of the relaxed abductor pollicis brevis muscle (APB) at various intervals during
10 ntials (MEPs) simultaneously in the extensor pollicis brevis muscles bilaterally, was applied at diff
13 ength of first dorsal interosseous, abductor pollicis brevis, anterior tibialis and triceps surae.
14 les (first dorsal interosseus, FDI; abductor pollicis brevis, APB; and abductor digiti minimi, ADM) i
15 e assessed while recording from the abductor pollicis brevis, using a paired pulse TMS paradigm with
21 rity Score and motor performance of adductor pollicis by transcranial magnetic stimulation, rapid vol
22 ce of skeletal muscles, such as the adductor pollicis, can be assessed repetitively, independent of b
24 r units residing in separate muscles (flexor pollicis longus, a thumb muscle, and flexor digitorum pr
27 subsequent recovery using the human adductor pollicis muscle working in vivo at approximately 37 degr
30 MG signals were recorded from human adductor pollicis muscles in response to supramaximal stimuli del
31 nal pool [surface electromyogram of opponens pollicis (OP-EMG)], and their coherence in children (4-1
32 g the final 2 min of CO2 breathing, adductor pollicis twitch force averaged 86.5 +/- 2.7% of the base
33 Furthermore, during CO2 breathing, adductor pollicis twitch force fell significantly, reaching stati
35 ximal phrenic nerve stimulation and adductor pollicis twitch force was measured during transcutaneous
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