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Overview of Synapses01:25

Overview of Synapses

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A synapse is a specialized structure where two neurons connect, allowing them to pass an electrical or chemical signal to another neuron. It is the point of communication between neurons. The term "synapse" is derived from the Greek word "synapsis," which means "conjunction." The entire process of neural communication revolves around the synapse. When activated, a neuron releases chemicals known as neurotransmitters into the synapse. These neurotransmitters cross the synapse and bind to...
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Gap Junctions01:27

Gap Junctions

8.1K
The cytoplasm of adjacent animal cells can exchange small molecules, ions, and secondary messengers via the communication channels which form the gap junctions. These junctions comprise a few hundred to thousands of molecular channels, each made of two halves, called the connexon hemichannel. A connexon is a hexamer of six transmembrane connexin proteins, which assemble radially, thus forming a pore or channel in the center. One connexon hemichannel docks with a corresponding connexon on the...
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Electrical Synapses01:28

Electrical Synapses

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Electrical synapses found in all nervous systems play important and unique roles. In these synapses, the presynaptic and postsynaptic membranes are very close together (3.5 nm) and are actually physically connected by channel proteins forming gap junctions.
Gap junctions allow the current to pass directly from one cell to the next. In contrast, in the chemical synapse, the neurotransmitters carry the information through the synaptic cleft from one neuron to the next. They consist of two...
8.4K
Synaptic Signaling01:09

Synaptic Signaling

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Neurons communicate at synapses, or junctions, to excite or inhibit the activity of other neurons or target cells, such as muscles. Synapses may be chemical or electrical.
Most synapses are chemical, meaning an electrical impulse or action potential spurs the release of chemical messengers called neurotransmitters. The neuron sending the signal is called the presynaptic neuron, and the neuron receiving the signal is the postsynaptic neuron.
The presynaptic neuron fires an action potential that...
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Mechanism of Cardiac Arrhythmias01:28

Mechanism of Cardiac Arrhythmias

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Arrhythmias are irregular heart rhythms occurring when the heart's electrical impulses become abnormal. These disturbances can lead to various symptoms, depending on their severity and the underlying cause. Some common factors contributing to arrhythmias include hypoxia, ischemia, electrolyte imbalances, excessive catecholamine exposure, drug toxicity, and muscle overstretching. Arrhythmias can be classified into two main types based on the rate and site of origin of abnormal heart rhythms.
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The Neuromuscular Junction01:19

The Neuromuscular Junction

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The nervous system consists of complex motor neuron circuits, including upper motor neurons originating from the cerebral cortex and lower motor neurons starting in the spinal cord, coordinating both voluntary and involuntary movements. Among these, somatic motor neurons activate skeletal muscles and are classified into alpha, beta, and gamma types. Alpha neurons are vital for voluntary movement coordination, while gamma neurons adjust muscle spindle sensitivity, and the function of beta...
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Related Experiment Video

Updated: Jul 29, 2025

Electrophysiological Recordings from the Giant Fiber Pathway of D. melanogaster
12:53

Electrophysiological Recordings from the Giant Fiber Pathway of D. melanogaster

Published on: January 14, 2011

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Gap junctions desynchronize a neural circuit to stabilize insect flight.

Silvan Hürkey1, Nelson Niemeyer2, Jan-Hendrik Schleimer2

  • 1Institute of Developmental Biology and Neurobiology (iDN), Johannes Gutenberg-University Mainz, Mainz, Germany.

Nature
|May 24, 2023
PubMed
Summary

Researchers discovered a novel neural circuit for insect asynchronous flight, revealing that weak electrical synapses desynchronize neuron activity for stable wing power. This finding challenges previous assumptions about neural synchronization in motor control.

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Early Metamorphic Insertion Technology for Insect Flight Behavior Monitoring
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Area of Science:

  • Neuroscience
  • Biophysics
  • Insect Physiology

Background:

  • Insect asynchronous flight is crucial for locomotion in over 600,000 species.
  • While motor patterns, biomechanics, and aerodynamics are understood, the central-pattern-generating (CPG) neural network's architecture and function remain elusive.

Purpose of the Study:

  • To elucidate the architecture and function of the CPG neural network underlying insect asynchronous flight.
  • To identify the circuit mechanisms responsible for generating rhythmic motor patterns for flight control.

Main Methods:

  • Combined electrophysiology, optophysiology, and Drosophila genetics.
  • Employed mathematical modeling to analyze neural network dynamics.
  • Investigated the role of electrical synapses in CPG function.

Main Results:

  • Identified a miniaturized CPG circuit with motoneurons interconnected by electrical synapses.
  • Demonstrated that weak electrical synapses, contrary to expectations, desynchronize network activity.
  • Showcased a generic mechanism for network desynchronization dependent on neuron excitability and synapse strength.
  • Confirmed this desynchronization mechanism translates unpatterned input into stereotyped neuronal firing for stable wing power.
  • Found this mechanism is conserved across multiple insect species.

Conclusions:

  • Electrical synapses exhibit greater functional versatility in neural circuit control than previously thought.
  • The identified desynchronization mechanism is key to stable wing power generation in asynchronous flight.
  • Highlights the importance of detecting electrical synapses in connectomics research for understanding neural circuits.