PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
November 1, 1982Circulation Research181 citations

Interaction of acidosis and increased extracellular potassium on action potential characteristics and conduction in guinea pig ventricular muscle.

View Full Paper
YKYutaka KagiyamaJHJennie L. HillLGL S Gettes

Key Result

Extracellular acidosis and increased extracellular potassium decreased resting membrane potential, Vmax, and slowed conduction in guinea pig ventricular muscle, mimicking acute ischemia.

Key Points

  • This research aims to investigate how extracellular acidosis and potassium levels impact action potentials and conduction in guinea pig heart muscle.
  • Examined varying potassium levels from 2.7 to 17 mm with induced acidosis via Pco2 increase and HCO3- decrease.
  • Measured resting membrane potential, maximum rate of rise of action potential (Vmax), and conduction velocity.
  • Compared effects of metabolic and respiratory acidosis on action potential duration and conduction.
  • Acidosis decreased resting membrane potential and Vmax, and slowed conduction, particularly when potassium levels were 9 and 13 mM.
  • Metabolic acidosis significantly lengthened action potential duration, while respiratory acidosis had a more immediate and greater effect on Vmax and conduction velocity.
  • Combined effects of acidosis and increased potassium mimic changes seen in acute ischemia.

Structured PICO

Does extracellular acidosis combined with increased extracellular potassium alter action potential characteristics and conduction in guinea pig ventricular muscle?

P
Population
Guinea pig ventricular muscle
I
Intervention
Extracellular acidosis (respiratory by increasing Pco2, and metabolic by decreasing HCO3-) combined with increased extracellular potassium (between 2.7 and 17 mM)
C
Comparator
Different levels of potassium (e.g., 5.4 mM vs 9 and 13 mM) and types of acidosis (respiratory vs metabolic)
O
Outcome
Action potential characteristics (resting membrane potential, maximum rate of rise of the action potential upstroke [Vmax], steady state action potential duration) and conduction velocitysurrogate

The combined effects of extracellular acidosis and increased extracellular potassium mimic many known electrophysiological effects of acute ischemia in ventricular fibers.

Abstract

We studied the individual and combined effects of extracellular acidosis and increases in extracellular potassium on action potential characteristics and conduction in order to gain a better understanding of the effects of acute ischemia. At each level of potassium between 2.7 and 17 mm, acidosis induced by increasing Pco2 (respiratory acidosis) and by decreasing HCO3- (metabolic acidosis) decreased resting membrane potential, the maximum rate of rise of the action potential upstroke (Vmax), and slowed conduction. Metabolic acidosis consistently and significantly lengthened the steady state action potential duration whereas respiratory acidosis did not. Respiratory acidosis caused changes in resting membrane potential, Vmax, and conduction velocity; which occurred more rapidly and were of greater magnitude than the changes induced by metabolic acidosis. The changes in Vmax induced both types of acidosis were due to a change in the resting membrane potential-Vmax relationship as well as to the changes in the resting membrane potential. The conduction slowing induced by acidosis was greater when potassium was 9 and 13 mM than when potassium was 5.4 mm. Our results suggest that acidosis causes important changes in the electrophysiological properties of ventricular fibers and that many of the known electrophysiological effects of acute ischemia can be mimicked by the combined effects of extracellular acidosis and an increase in extracellular potassium.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Kagiyama et al. (1982) studied Acute ischemia (simulated). Extracellular acidosis and increased extracellular potassium vs. Different levels of potassium and acidosis was evaluated on Action potential characteristics and conduction velocity. Extracellular acidosis and increased extracellular potassium decreased resting membrane potential, Vmax, and slowed conduction in guinea pig ventricular muscle, mimicking acute ischemia.

synapsesocial.com/papers/6a0fb2332badbc352afe8fb3https://doi.org/10.1161/01.res.51.5.614
Ask AI
Helpful
Bookmark
Share
View Full Paper