Regional acidosis locally inhibits but remotely stimulates Ca2+ waves in ventricular myocytes

Kerrie L Ford1, Emma L Moorhouse1, Mario Bortolozzi1,2

  • 1Burdon Sanderson Cardiac Science Centre, Department of Physiology, Anatomy and Genetics, Oxford, OX1 3PT, UK.

Insights

Intracellular acidosis influences cardiac calcium waves through both inhibitory and stimulatory effects. Local acidosis inhibits waves, while remote sodium signals stimulate them, potentially driving arrhythmias.

Area of Science:

  • Cardiology
  • Cell Physiology
  • Ion Transport

Background:

  • Spontaneous Ca2+ waves in cardiomyocytes can trigger arrhythmias.
  • Cytoplasmic H+ concentration ([H+]i) is a key regulator of Ca2+ waves, but its precise control mechanisms are unclear.
  • Myocardial ischemia/reperfusion involves significant fluctuations in [H+]i.

Purpose of the Study:

  • To investigate how intracellular pH ([H+]i) coordinates the initiation and frequency of spontaneous Ca2+ waves.
  • To elucidate the mechanisms by which acidosis influences Ca2+ wave dynamics in cardiomyocytes.

Main Methods:

  • Imaging of spontaneous Ca2+ waves in isolated rat ventricular myocytes using fluo-3.
  • Induction of whole-cell intracellular acidosis using acetate-superfusion.
  • Pharmacological inhibition of sarcolemmal Na+/H+ exchange (NHE1).
  • Application of localized acidosis using a microfluidic device.

Main Results:

  • Intracellular acidosis stimulated Ca2+ wave frequency and velocity.
  • Inhibition of NHE1 prevented the stimulatory effect of acidosis, revealing an inhibitory role of H+.
  • Localized acidosis inhibited Ca2+ waves in the acidic zone but stimulated them remotely.
  • Remote stimulation was dependent on a locally evoked, NHE1-driven rise in intracellular Na+ ([Na+]i) that spread downstream.

Conclusions:

  • Acidosis exerts dual control over Ca2+ waves via inhibitory H+ and stimulatory Na+ signals.
  • Spatial heterogeneity in [H+]i leads to inhibition in acidic regions and stimulation in adjacent non-acidic regions.
  • This localized inhibition and remote stimulation of arrhythmogenic Ca2+ signaling has implications for understanding arrhythmias in conditions like myocardial ischemia.
Abstract

Related Concept Videos

Feedback Regulation of Calcium Concentration01:27

Feedback Regulation of Calcium Concentration

Calcium is an essential signaling molecule required for various cellular functions. Calcium pumps and ion channels on cell and organellar membranes, such as those on the endoplasmic reticulum (ER), regulate calcium concentrations inside the cell. They remain closed, keeping the cytosolic calcium levels low at a resting state.
Various transmembrane receptors, such as G protein-coupled receptors (GPCRs), elicit a response to extracellular signals by increasing cytosolic calcium. Activated GPCRs...
4.1K
Antihypertensive Drugs: Action of Calcium Channel Blockers01:18

Antihypertensive Drugs: Action of Calcium Channel Blockers

Calcium ions are essential to contract smooth muscle cells in blood vessels. They enter these cells through voltage-dependent calcium channels, specifically L-type calcium channels in the cell membrane. These L-type calcium channels are integral to the excitation-contraction coupling process in smooth muscle. When a stimulus is received by smooth muscle cells, their membrane depolarizes. This alteration in membrane potential instigates the opening of L-type calcium channels. As a result,...
2.0K
Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers01:20

Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers

Class IV antiarrhythmic drugs, such as verapamil and diltiazem, block calcium channels. They primarily affect the heart, slowing the conduction in calcium-dependent tissues like the SA and AV nodes. These drugs manage reentrant supraventricular tachycardia (SVT) and reduce ventricular rate in atrial flutter/fibrillation.
Verapamil, a calcium channel blocker, inhibits calcium movement across myocardial cell membranes and vascular smooth muscle. This results in the dilation of coronary and...
2.5K
Antianginal Drugs: Calcium Channel Blockers and Ranolazine01:25

Antianginal Drugs: Calcium Channel Blockers and Ranolazine

Angina pectoris, a primary symptom of ischemic heart disease, requires careful pharmacological interventions. In this context, calcium channel blockers (CCBs) and ranolazine have emerged as crucial pharmacotherapeutic agents, providing deep insights into the complexities of angina management.
CCBs, a diverse class that includes dihydropyridines (nifedipine) and diphenylalkylamines (verapamil and diltiazem), exert their effect by blocking calcium channels in cardiac and smooth muscle cells. This...
1.7K
G-Protein Gated Ion Channels01:21

G-Protein Gated Ion Channels

GPCRs are primarily responsible for our sense of smell, taste, and vision.  The binding of a sensory stimulus activates GPCR to stimulate effector proteins, many of which are ion channels in the sensory organs. GPCRs modulate the opening and closing of the target ion channels either directly by binding them, or by releasing second messengers that activate these channels. As ions move across the membrane, the membrane potential is altered, which induces an appropriate response.
Sensory...
6.4K
Relaxation of Skeletal Muscles01:29

Relaxation of Skeletal Muscles

The period of muscle contraction primarily influences the duration of stimulation at the neuromuscular junction (NMJ), the presence of free calcium ions in the sarcoplasm, and the availability of energy or ATP to support contractions.
When an action potential reaches the axon terminal, it depolarizes the membrane and opens voltage-gated sodium channels. Sodium ions enter the cell, further depolarizing the presynaptic membrane. This depolarization causes voltage-gated calcium channels to open....
6.3K