Flexible mechanisms: the diverse roles of biological springs in vertebrate movement

被引:304
作者
Roberts, Thomas J. [1 ]
Azizi, Emanuel [2 ]
机构
[1] Brown Univ, Dept Ecol & Evolutionary Biol, Providence, RI 02912 USA
[2] Coll New Jersey, Dept Biol, Ewing, NJ 08628 USA
关键词
elastic; locomotion; tendon; ELASTIC ENERGY-STORAGE; IN-VIVO; MUSCLE-FIBERS; TERRESTRIAL LOCOMOTION; UNEXPECTED SURFACE; FORCE TRANSMISSION; TONGUE PROJECTION; PASSIVE DYNAMICS; ACHILLES-TENDON; TRICEPS SURAE;
D O I
10.1242/jeb.038588
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The muscles that power vertebrate locomotion are associated with springy tissues, both within muscle and in connective tissue elements such as tendons. These springs share in common the same simple action: they stretch and store elastic strain energy when force is applied to them and recoil to release energy when force decays. Although this elastic action is simple, it serves a diverse set of functions, including metabolic energy conservation, amplification of muscle power output, attenuation of muscle power input, and rapid mechanical feedback that may aid in stability. In recent years, our understanding of the mechanisms and importance of biological springs in locomotion has advanced significantly, and it has been demonstrated that elastic mechanisms are essential for the effective function of the muscle motors that power movement. Here, we review some recent advances in our understanding of elastic mechanisms, with an emphasis on two proposed organizing principles. First, we review the evidence that the various functions of biological springs allow the locomotor system to operate beyond the bounds of intrinsic muscle properties, including metabolic and mechanical characteristics, as well as motor control processes. Second, we propose that an energy-based framework is useful for interpreting the diverse functions of series-elastic springs. In this framework, the direction and timing of the flow of energy between the body, the elastic element and the contracting muscle determine the function served by the elastic mechanism (e.g. energy conservation vs power amplification). We also review recent work demonstrating that structures such as tendons remodel more actively and behave more dynamically than previously assumed.
引用
收藏
页码:353 / 361
页数:9
相关论文
共 78 条
[51]   Muscle fascicle and series elastic element length changes along the length of the human gastrocnemius during walking and running [J].
Lichtwark, G. A. ;
Bougoulias, K. ;
Wilson, A. M. .
JOURNAL OF BIOMECHANICS, 2007, 40 (01) :157-164
[52]  
Lieber RL, 2002, AM J PHYS MED REHAB, V81, pS70, DOI 10.1097/01.PHM.0000029771.92757.2F
[53]   Effects of muscle contraction on the load-strain properties of frog aponeurosis and tendon [J].
Lieber, RL ;
Leonard, ME ;
Brown-Maupin, CG .
CELLS TISSUES ORGANS, 2000, 166 (01) :48-54
[54]  
Lindstedt SL, 2002, J EXP BIOL, V205, P2211
[55]   Effect of stretching on undamped elasticity in muscle fibres from Rana temporaria [J].
Mantovani, M ;
Cavagna, GA ;
Heglund, NC .
JOURNAL OF MUSCLE RESEARCH AND CELL MOTILITY, 1999, 20 (01) :33-43
[56]  
MARUYAMA K, 1977, J BIOCHEM, V82, P317
[57]   THE MECHANICS OF RUNNING - HOW DOES STIFFNESS COUPLE WITH SPEED [J].
MCMAHON, TA ;
CHENG, GC .
JOURNAL OF BIOMECHANICS, 1990, 23 :65-78
[58]   Human hopping on very soft elastic surfaces: implications for muscle pre-stretch and elastic energy storage in locomotion [J].
Moritz, CT ;
Farley, CT .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2005, 208 (05) :939-949
[59]   Passive dynamics change leg mechanics for an unexpected surface during human hopping [J].
Moritz, CT ;
Farley, CT .
JOURNAL OF APPLIED PHYSIOLOGY, 2004, 97 (04) :1313-1322
[60]  
Pabst DA, 1996, AM ZOOL, V36, P723