[1] | Schmidt-Nielsen K (1997) Animal Physiology. Cambridge (UK): Cambridge University Press. 607 p.
|
[2] | Monti RJ, Roy RR, Edgerton VR (2001) Role of motor unit structure in defining function. Muscle Nerve 24: 848–866.
|
[3] | Hoyle G (1978) Distribution of nerve and muscle fibre types in locust jumping muscle. J Exp Biol 78: 205–233.
|
[4] | Rathmayer W, Maier L (1987) Muscle fiber types in crabs: Studies on single identified muscle fibers. Am Zool 27: 1067–1077.
|
[5] | Rathmayer W, Hammelbeck M (1985) Identified muscle fibres in a crab. Differences in facilitation properties. J Exp Biol 116: 291–300.
|
[6] | Müller AR, Wolf H, Galler S, Rathmayer W (1992) Correlation of electrophysiological, histochemical, and mechanical properties in fibres of the coxa rotator muscle of the locust, Locusta migratoria. J Comp Physiol B 162: 5–15.
|
[7] | B?ssler D, Büschges A, Meditz S, B?ssler U (1996) Correlation between muscle structure and filter characteristics of the muscle-joint system in three orthopteran insect species. J Exp Biol 199: 2169–2183.
|
[8] | Henneman E, Somjen G, Carpenter DO (1965) Functional significance of cell size in spinal motoneurons. J Neurophysiol 28: 560–580.
|
[9] | Henneman E, Somjen G, Carpenter DO (1965) Excitability and inhibitability of motoneurons of different sizes. J Neurophysiol 28: 599–620.
|
[10] | Powers RK, Binder MD (2001) Input-output functions of mammalian motoneurons. Rev Physiol Biochem Pharmacol 143: 137–263.
|
[11] | Kernell D (2003) Principles of force generation in skeletal muscles. Neural Plasticity 10: 69–76.
|
[12] | B?ssler U, Stein W (1996) Contributions of structure and innervation pattern of the stick insect extensor tibiae muscle to the filter characteristics of the muscle-joint system. J Exp Biol 199: 2185–2198.
|
[13] | Godlewska E (2012) The histochemical characterization of muscle fiber types in an insect leg. Master Thesis, University of Cologne, Germany.
|
[14] | Tóth TI, Knops S, Gruhn S (2012) A neuro-mechanical model explaining forward and backward stepping in the stick insect. J Neurophysiol 107: 3267–3280.
|
[15] | Hodgkin AL, Huxley AF (1952) A quantitative description of membrane current and its application to conduction and excitation in nerve. J Physiol 117: 500–544.
|
[16] | Hill AV (1953) The mechanics of active muscle. Proc Roy Soc Lond (Biol) 141: 104–117.
|
[17] | Guschlbauer Ch, Scharstein H, Büschges A (2007) The extensor tibiae muscle of the stick insect: biomechanical properties of an insect walking leg muscle. J Exp Biol 210: 1092–1108.
|
[18] | Gabriel JP, Scharstein H, Schmidt J, Büschges A (2003) Control of flexor motoneuron activity during single leg walking of the stick insect on an electronically controlled treadwheel. J Neurobiol 56: 237–251.
|
[19] | Knops S, Tóth TI, Guschlbauer C, Gruhn M, Daun-Gruhn S (2013) A neuro-mechanical model for the neuronal basis of curve walking in the stick insect. J Neurophysiol 109: 679–691.
|
[20] | Goldammer J, Büschges A, Schmidt J (2012) Motoneurons, DUM cells, and sensory neurons in an insect thoracic ganglion: a tracing study in the stick insect carausius morosus. J Comp Neurology 520: 230–257.
|
[21] | Duch J, Pflüger H-J (1995) Motor patterns for horizontal and upside-down walking and vertical climbing in the locust. J Exp Biol 198: 1963–1978.
|
[22] | Blümel M, Hooper SL, Guschlbauer C, White WE, Büschges A (2012a) Determining all parameters necessary to build Hill-type muscle models from experiments on single muscles. Biol Cybern 106: 543–558.
|
[23] | Blümel M, Guschlbauer C, Gruhn S, Hooper SL, Büschges A (2012b) Hill-type muscle model parameters determined from experiments on single muscle show large animal-to-animal variation. Biol Cybern 106: 559–571.
|
[24] | Blümel M, Guschlbauer C, Hooper SL, Büschges A (2012c) Using individual-muscle specific instead of across-muscle mean data halves muscle simulation error. Biol Cybern 106: 573–585.
|
[25] | Zakotnik J, Matheson T, Dürr V (2006) Co-contraction and passive forces facilitate load compensation of aimed limb movements. J Neurosci 26: 4995–5007.
|
[26] | Wilson E, Rustighi E, Mace BR, Newland PR (2011) Modelling the isometric force response to multiple pulse stimuli in locust skeletal muscle. Biol Cybern 104: 121–136.
|
[27] | Wilson E, Rustighi E, Newland PR, Mace BR (2011) Slow motor neuron stimulation of locust skeletal muscle: model and measurement. Biomech Model Mechanobiol DOI:10.1007s10237 01204272/s10237- 012-0427-2.
|
[28] | Pflüger H-J (1977) The control of rocking movements of the phasmid Carausius morosus Br. J Comp Physiol A 120: 181–202.
|
[29] | B?ssler U, Rohrbacher J, Karg G, Breutel G (1991) Interruption of searching movements of partly restrained front legs of stick insects, a model situation for the start of a stance phase? Biol Cybern 65: 507–514.
|
[30] | Berg E, Büschges A, Schmidt J (2013) Single perturbations cause sustained changes in searching behavior in stick insects. J Exp Biol 216: 1064–1074.
|
[31] | Karg G, Breutel G, B?ssler U (1991) Sensory influences on the coordination of two leg joints during searching movements of stick insects. Biol Cybern 64: 329–335.
|
[32] | Pearson KG, Iles JF (1971) Innervation of coxal depressor muscles in the cockroach, periplaneta americana. J Exp Biol 54: 215–232.
|
[33] | Ballantyne D, Rathmayer W (1981) On the function of the common inhibitory neuron in walking legs of the crab, eriphia spinifrons. J Comp Physiol A 143: 111–122.
|
[34] | Wolf H (1990) Activity patterns of inhibitory motoneurones and their impact on leg movement in tethered walking locusts. J Exp Biol 152: 281–304.
|
[35] | Iles JF, Pearson KG (1971) Coxal depressor muscles of the cockroach and the role of peripheral inhibition. J Exp Biol 55: 151–164.
|