Abstract
1. The tension in the iliofibularis muscle of frogs was recorded while the muscle was stretched or released. At the same time recordings were made from single spindle afferents in dorsal root filaments. Either large or small motor nerve fibres were stimulated in split ventral root filaments.2. While small motor nerve fibres were stimulated the discharge from muscle spindle afferents was greatly increased by stretching, and greatly reduced by shortening the muscle. This sensitivity to movement was shown even if the movements were small, so that a stretch of 0.2% of the muscle length was sufficient to cause a pronounced increase in the afferent discharge.3. In contrast, during stimulation of the large motor nerve fibres the spindle was much less sensitive to movements with the result that even stretches or releases of the muscle by 1 mm did not cause very large changes in the discharge frequency.4. The tension in slow extrafusal muscle fibres in many ways mirrored the spindle discharge during the stimulation of small motor nerve fibres, for the tension was greatly increased by stretching, even through small distances, and greatly reduced by releasing the muscle. The tension in fast extrafusal muscle fibres was much less changed by such movements, and thus was rather like the spindle discharge during stimulation of large motor nerve fibres.5. As the extrafusal muscle fibres do not directly pull on and excite the spindle afferents, the simplest explanation for the similarities between the muscle tension and the spindle discharge is that the mechanical properties of the intrafusal muscle fibres innervated by the large motor nerve fibres are like those of fast extrafusal muscle fibres, and that the mechanical properties of the small intrafusal fibres are similar to those of slow extrafusal muscle fibres.6. It is shown that the cross-bridge sliding filament mechanism of muscle contraction provides a ready explanation for the differences found between fast and slow muscles, and it is concluded that a most important functional difference between the two sorts of intrafusal muscle fibres is the speed of their contractions, for it is this which determines their contrasting actions on the spindle.7. It was also found that low rates (< 4/sec) of small motor nerve fibre stimulation were often very effective in exciting the spindles. These rates produced rather little extrafusal tension.
MeSH Terms
Action Potentials
Animals
Anura
Electric Stimulation
Electrophysiology
In Vitro Techniques
Motor Neurons/physiology
Muscle Contraction
Muscle Spindles/physiology
Muscles/physiology
Rana pipiens
Rana temporaria
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Brown M C
References (22)
22 references, click to expand
-
Functional properties of tendon receptors in the frog.
Jpn J Physiol. 1968 Oct 15;18(5):576-89
PMID: 5304230
-
Small-nerve junctional potentials; the distribution of small motor nerves to frog skeletal muscle, and the membrane characteristics of the fibres they innervate.
J Physiol. 1953 Aug;121(2):289-317
PMID: 13085337
-
After-effects of fusimotor stimulation on the response of muscle spindle primary afferent endings.
J Physiol. 1969 Dec;205(3):677-94
PMID: 4243390
-
FURTHER STUDIES OF STATIC AND DYNAMIC FUSIMOTOR FIBRES.
J Physiol. 1964 Oct;174:132-51
PMID: 14228608
-
A COMPARATIVE STUDY ON STRUCTURE AND FUNCTION BETWEEN THE EXTRAFUSAL RECEPTOR AND THE SPINDLE RECEPTOR IN THE FROG.
Jpn J Physiol. 1964 Feb 15;14:12-33
PMID: 14126942
-
Small amplitude displacement sensitivity of frog spindles during fast and slow muscle contractions.
J Physiol. 1970 Jun;208(2):69P-70P
PMID: 4251223
-
SOME EFFECTS OF FAST AND SLOW MOTOR FIBRES ON MUSCLE SPINDLES OF THE FROG.
J Physiol. 1965 May;178:178-92
PMID: 14298108
-
CONTRACTION IN INTRAFUSAL MUSCLE FIBRES OF XENOPUS LAEVIS FOLLOWING STIMULATION OF THEIR MOTOR NERVES.
Acta Physiol Scand. 1964 Nov;62:195-208
PMID: 14236549
-
Quantitative description of linear behavior of mammalian muscle spindles.
J Neurophysiol. 1970 Jan;33(1):59-72
PMID: 4243791
-
Types of motor units in the skeletal muscle of Xenopus laevis.
Nature. 1968 Jan 20;217(5125):281-3
PMID: 5639141
-
The sensitivity of muscle spindle afferents to small sinusoidal changes of length.
J Physiol. 1969 Feb;200(3):723-43
PMID: 4237132
-
"Trophic" influences of nerve on muscle.
Physiol Rev. 1968 Oct;48(4):645-87
PMID: 4301235
-
Tension due to interaction between the sliding filaments in resting striated muscle. The effect of stimulation.
J Physiol. 1968 Dec;199(3):637-84
PMID: 5710425
-
Static fusimotor fibres and the position sensitivity of muscle spindle receptors.
Brain Res. 1969 Jun;14(1):173-87
PMID: 4239295
-
Muscle structure and theories of contraction.
Prog Biophys Biophys Chem. 1957;7:255-318
PMID: 13485191
-
The behaviour of isolated mammalian muscle spindles with intact innervation.
J Physiol. 1966 Oct;186(2):109P-110P
PMID: 4226412
-
The central control of the dynamic response of muscle spindle receptors.
J Physiol. 1962 May;161:357-78
PMID: 14451214
-
The spindle and extrafusal innervation of a frog muscle.
Proc R Soc Lond B Biol Sci. 1957 May 7;146(924):416-30
PMID: 13431865
-
Length changes within isolated frog muscle spindle during and after stretching.
J Physiol. 1970 May;207(3):747-59
PMID: 5499745
-
Modules for neurophysiology using integrated circuits.
J Physiol. 1968 Jul;197(1):1P-2P
PMID: 5675045
-
ACTIVITY OF INTRAFUSAL MUSCLE FIBRES IN MUSCLE SPINDLES OF XENOPUS LAEVIS.
Acta Physiol Scand. 1964 Mar;60:223-9
PMID: 14131837
-
The effect of internal and external potassium concentration on the membrane potential of frog muscle.
J Physiol. 1956 Sep 27;133(3):631-58
PMID: 13368111