A mechanism for increased contractile strength of human pennate muscle in response to strength training:: changes in muscle architecture

被引:472
作者
Aagaard, P
Andersen, JL
Dyhre-Poulsen, P
Leffers, AM
Wagner, A
Magnusson, SP
Halkjær-Kristensen, J
Simonsen, EB
机构
[1] Univ Copenhagen, Panum Inst, Inst Med Physiol 16 5 5, Dept Neurophysiol, DK-2200 Copenhagen KBH N, Denmark
[2] Univ Copenhagen, Panum Inst, Dept Anat C, DK-2200 Copenhagen, Denmark
[3] Univ Copenhagen, Copenhagen Muscle Res Ctr, Dept Radiol, DK-2200 Copenhagen KBH N, Denmark
[4] Univ Copenhagen, Copenhagen Muscle Res Ctr, Dept Neuroradiol, DK-2200 Copenhagen KBH N, Denmark
[5] Univ Copenhagen, Rigshosp, Dept Med Orthopaed, DK-2200 Copenhagen KBH N, Denmark
[6] Univ Copenhagen, Bispebjerg Hosp, Sports Med Res Unit, Team Danmark Test Ctr, DK-2200 Copenhagen KBH N, Denmark
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2001年 / 534卷 / 02期
关键词
D O I
10.1111/j.1469-7793.2001.t01-1-00613.x
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. In human pennate muscle, changes in anatomical cross-sectional area (CSA) or volume caused by training or inactivity may not necessarily reflect the, change in physiological CSA, and thereby in maximal contractile force, since a simultaneous change in muscle fibre pennation angle could also occur. 2. Eleven male subjects undertook 14 weeks of heavy-resistance strength training of the lower limb muscles. Before and after training anatomical CSA and volume of the human quadriceps femoris muscle were assessed by use of magnetic resonance imaging (MRI), muscle fibre pennation angle (theta (p)) was measured in the vastus lateralis (VL) by use of ultrasonography, and muscle fibre CSA (CSA(fibre)) was obtained by needle biopsy sampling in VL. 3. Anatomical muscle CSA and volume increased with training from 77.5 +/- 3.0 to 85.0 +/- 2.7 cm(3) and 1676 +/- 63 to 1841 +/- 57 cm(3), respectively Furthermore, VL pennation angle increased 2 from 8.0 +/- 0.4 to 10.7 +/- 0.6 deg and CSA(fibre) increased from 3754 +/- 271 to 4238 +/- 202 mum(2). Isometric quadriceps strength increased from 282.6 +/- 11.7 to 327.0 +/- 12.4 Nm. 4. A positive relationship was observed between theta (p) and quadriceps volume prior to training (r = 0.622). Multifactor regression analysis revealed a stronger relationship when theta (p) and CSA(fibre) were combined (R = 0.728). Post-training increases in CSA(fibre) were related to the increase in quadriceps volume (r = 0.749). 5. Myosin heavy chain (MHC) isoform distribution (type I and II) remained unaltered with training. 6. VL muscle fibre pennation angle was observed to increase in response to resistance training. This allowed single muscle fibre CSA and maximal contractile strength to increase more (+16 %) than anatomical muscle CSA and volume (+10 %). 7. Collectively, the present data suggest that the morphology, architecture and contractile capacity of human pennate muscle are interrelated, in vivo. This interaction seems to include the specific adaptation responses evoked by intensive resistance training.
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收藏
页码:613 / 623
页数:11
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