Transmitter release at mouse motor nerve terminals mediated by temporary accumulation of intracellular barium

D M Quastel1, D A Saint

  • 1Department of Pharmacology and Therapeutics, Faculty of Medicine, University of British Columbia, Vancouver, Canada.

The Journal of Physiology
|December 1, 1988
PubMed

Insights

Barium ions (Ba2+) prolong neurotransmitter release at nerve terminals, creating a sustained

Area of Science:

  • Neuroscience
  • Cellular Biology
  • Biophysics

Background:

  • Neurotransmitter release is crucial for synaptic transmission.
  • The role of divalent cations like calcium (Ca2+) in neurotransmitter release is well-established.
  • Investigating the effects of other divalent cations, such as barium (Ba2+), can elucidate the underlying mechanisms of synaptic transmission.

Purpose of the Study:

  • To investigate the effects of barium ions (Ba2+) on neurotransmitter release at the mouse diaphragm.
  • To characterize the time course and properties of Ba2+-induced after-discharges ('Ba2+ tails') of miniature end-plate potential (MEPP) frequency.
  • To develop a model explaining the mechanism of Ba2+ action in nerve terminals.

Main Methods:

  • Tetanic nerve stimulation of isolated mouse diaphragm in the presence of Ba2+.
  • Focal depolarization of nerve terminals in the presence of tetrodotoxin and Ba2+.
  • Application of inhibitors (neomycin, Mg2+, Cd2+) to study blocking mechanisms.
  • Mathematical modeling of MEPP frequency changes using nth root transformations.

Main Results:

  • Tetanic nerve stimulation with Ba2+ induced prolonged after-discharges ('Ba2+ tails') of MEPP frequency.
  • 'Ba2+ tails' were blocked by neomycin, Mg2+, or Cd2+ during stimulation but not during the tail phase.
  • The time course of MEPP frequency changes followed an exponential process, with a time constant of 3-6 seconds.
  • Ba2+ entry into the terminal was proportional to external Ba2+ concentration.
  • Ba2+ could co-operate with Ca2+ or La3+ in promoting transmitter release.

Conclusions:

  • Ba2+ entry into nerve terminals leads to a prolonged increase in transmitter release.
  • Transmitter release is potentiated by a power function of intraterminal Ba2+ concentration.
  • Ba2+ leaves critical sites within the terminal via a first-order process with a time constant of several seconds.
  • Ba2+ is less potent but more persistent than Ca2+ in promoting transmitter release.

Related Concept Videos

Chemical Synapses01:26

Chemical Synapses

Chemical synapses are specialized sites between two neurons or between a neuron and a non-neuronal cell like a muscle, glandular or sensory cell.
Because chemical synapses depend on the release of neurotransmitter molecules from synaptic vesicles to pass on their signal, there is an approximately one millisecond delay between when the axon potential reaches the presynaptic terminal and when the neurotransmitter leads to opening of postsynaptic ion channels. Additionally, this signaling is...
Neurochemical Transmission: Sites of Drug Action01:26

Neurochemical Transmission: Sites of Drug Action

Neurochemical transmission, the conduction of electrical impulses between neurons mediated by neurotransmitters, plays a vital role in various physiological processes. Autonomic drugs exert their effects by modulating neurotransmission within the autonomic nervous system. For instance, drugs such as hemicholinium block the precursor uptake necessary for synthesizing acetylcholine, an essential autonomic neurotransmitter. Following synthesis, neurotransmitters are stored in vesicles. Metyrosine...
Cholinergic Neurons: Neurotransmission01:23

Cholinergic Neurons: Neurotransmission

Cholinergic neurotransmission involves the synthesis and the release of acetylcholine (ACh) in order to transmit nerve impulses across the synapse. The process begins with the synthesis of acetyl CoA, a precursor for ACh, from ATP, acetate, and coenzyme A in the mitochondria. Choline, another vital precursor, is transported inside the neuron through choline transporters, including high-affinity choline transporter CHT1, low-affinity choline transporter CTL1, and lower-affinity choline...
Neuromuscular Junction And Blockade01:29

Neuromuscular Junction And Blockade

The site of chemical communication between a motor neuron and a muscle fiber is called the neuromuscular junction (NMJ). The end of the motor neuron at the NMJ divides into a cluster of synaptic end bulbs. The cytoplasm of these bulbs consists of synaptic vesicles enclosing acetylcholine molecules, the principal neurotransmitter released at the NMJ. The region opposite the synaptic bulb that ends in the muscle fiber is called the motor end plate, which has acetylcholine receptors. Within the...
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.
Chemical Synapses01:26

Chemical Synapses

Chemical synapses are specialized sites between two neurons or between a neuron and a non-neuronal cell like a muscle, glandular or sensory cell.
Because chemical synapses depend on the release of neurotransmitter molecules from synaptic vesicles to pass on their signal, there is an approximately one millisecond delay between when the axon potential reaches the presynaptic terminal and when the neurotransmitter leads to opening of postsynaptic ion channels. Additionally, this signaling is...