PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
September 1, 1981The Journal of General Physiology52 citationsOpen Access

Isotonic contraction of skinned muscle fibers on a slow time base: effects of ionic strength and calcium.

JGJ. GulatiRPRichard J. Podolsky

Key Points

  • This study aims to explore how ionic strength and calcium levels affect the contraction of skinned muscle fibers on a slow time base.
  • Examined frog skeletal muscle fibers at temperatures of 0-1 degrees C.

Structured PICO

P
Population
Calcium-activated skinned frog skeletal muscle fibers
I
Intervention
Varying ionic strength (KCl concentration 0-190 mM) and calcium levels
C
Comparator
Different levels of KCl and calcium
O
Outcome
Force development and motion on a slow time base after a quick decrease in loadsurrogate

In skinned frog skeletal muscle fibers, steady isometric force decreases with increasing ionic strength, and the response to calcium at low ionic strength appears switch-like.

Abstract

The force development by calcium-activated skinned frog skeletal muscle fibers and the motion on a slow time base after a quick decrease in load were studied at 0-1 degrees C as a function of the ionic strength and the degree of activation. The ionic strength was varied between 50 and 190 mM by adding appropriate concentrations of KCl to the bathing solution. Under these conditions, the fibers could be maximally activated for several cycles at low ionic strength without developing residual tension. We found that the steady isometric force in fully activated fibers linearly decreased when the KCl concentration was increased from 0 to 140 mM. The steady isotonic motion at a given relative load in fully activated fibers was almost the same at KCl concentration greater than or equal to 50 mM. In 0 and 20 mM KCl, the isotonic velocity decreased continuously for more than 300 ms. At a given relative load, the initial velocity of the motion in 0 and 20 mM KCl was about 0.6 and 0.9 times, respectively, that in 140 mM KCl. The initial velocity decreased further when residual tension developed; this observation provides additional evidence that residual tension may reflect the presence of an internal load. The effect of calcium on the motion was examined at 70 mM KCl. In this solution, the motion during the velocity transient at a given relative load appeared to be the same at different levels of activation. The speed of the subsequent motion was almost steady at high calcium levels but decreased continuously in low calcium levels. These results support the idea that at low ionic strength the response of the fiber to calcium is switch-like, but that other factors also affect the contraction mechanism under these conditions.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Gulati et al. (1981) studied this question.

synapsesocial.com/papers/6a1f2f5d0c5fd4e3b5553ceehttps://doi.org/10.1085/jgp.78.3.233
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Contraction transients of skinned muscle fibers: effects of calcium and ionic strength.1978 · 50 citations
  2. 2The relation between calcium and contraction kinetics in skinned muscle fibres1970 · 164 citations
  3. 3Potassium and ionic strength effects on the isometric force of skinned twitch muscle fibres of the rat and toad.1986 · 110 citations
  4. 4Influence of partial activation on force-velocity properties of frog skinned muscle fibers in millimolar magnesium ion.1986 · 40 citations
  5. 5Effects of calcium and ionic strength on shortening velocity and tension development in frog skinned muscle fibres.1981 · 119 citations