Self-oscillating Model

A self-oscillating model is a mathematical or physical representation of a system that generates sustained periodic behavior through its own internal dynamics rather than a continuously varying external signal. It typically combines feedback, energy input, and nonlinear interactions so that disturbances are amplified, regulated, and converted into repeating cycles. In bioengineering, such models help describe rhythmic processes including biological clocks, neuronal activity, cardiac contraction, and engineered biomolecular circuits. By linking system parameters to oscillation period, amplitude, and stability, they support analysis of emergent behavior and guide the design of biosensors, therapeutic devices, and synthetic biological systems.

Self-oscillating Model - Related Videos

Research

JoVE EoE - Neurophysiology

Selective Manipulation of Theta Oscillations in a Mouse Model

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2025

This video demonstrates a protocol to modulate theta oscillations in a genetically engineered mouse model with light-sensitive ion channels in its GABAergic medial septum neurons. By delivering light pulses to the hippocampus, the protocol aims to synchronize neuronal activity and generate theta oscillations, which are recorded as local field potentials.

Synthetic, Multi-Layer, Self-Oscillating Vocal Fold Model Fabrication

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Cited by 49 •

2011

The methodology for fabricating synthetic vocal fold models is described. The models are life-sized and mimic the multi-layer structure of the human vocal folds. Results show the models to self-oscillate at pressures comparable to lung pressure and demonstrate flow-induced vibratory responses that are similar to those of human vocal folds.

Research

JoVE Journal - Behavior
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Infant Auditory Processing and Event-related Brain Oscillations

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Cited by 30 •

2015

High-density electroencephalography (dEEG) is being used increasingly to study brain development and plasticity in the early years of life. Here we present an application of sophisticated analysis techniques that builds on traditional EEG recording to understand the oscillatory dynamics of rapid auditory processing in the infant brain.

In Vitro Recording of Theta Oscillations in the Mouse Hippocampus

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2025

This video demonstrates the recording of rhythmic neuronal network activity, also known as theta oscillations, in an isolated hippocampus. Electrodes are inserted into various layers and spatial positions to detect and analyze theta oscillations. This shows the unique neuronal compositions and the connectivity of the neuronal network across different layers of the hippocampus.

Generation of Local CA1 γ Oscillations by Tetanic Stimulation

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Cited by 2 •

2015

Oscillations are fundamental network properties and are modulated by disease and drugs. Studying brain-slice oscillations allows characterization of isolated networks under controlled conditions. Protocols are provided for the preparation of acute brain slices for evoking CA1 γ oscillations.

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