Mollusc Model System

A mollusc model system is the use of snails, slugs, clams, oysters, or cephalopods as experimental organisms to study biological processes in controlled laboratory settings. Researchers choose species whose embryos, nervous systems, shells, immune responses, or behaviors can be observed and manipulated, then combine culture conditions with microscopy, genetics, electrophysiology, or behavioral assays to connect cellular mechanisms with organism-level outcomes. These models support research in development, neurobiology, evolution, biomineralization, environmental toxicology, and host defense. Their diversity and experimental accessibility can reveal conserved biological principles while exposing adaptations that are difficult to study in standard laboratory animals.

Mollusc Model System - Related Videos

Research

JoVE Journal - Biology
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Effect of Male Accessory Gland Products on Egg Laying in Gastropod Molluscs

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Cited by 35 •

2014

This video protocol demonstrates a method to study effects of seminal fluid in gastropods, using the hermaphroditic freshwater snail Lymnaea stagnalis.

Research

JoVE Journal - Neuroscience

Monitoring Changes in the Intracellular Calcium Concentration and Synaptic Efficacy in the Mollusc Aplysia

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Cited by 4 •

2012

We demonstrate how changes in the intracellular free calcium concentration and synaptic efficacy can be simultaneously monitored in a ganglion preparation of Aplysia. We image intracellular calcium using a fluorescent dye, Calcium Orange, and induce and monitor synaptic transmission with sharp (intracellular) electrodes.

A Whole Mount In Situ Hybridization Method for the Gastropod Mollusc Lymnaea stagnalis

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Cited by 17 •

2016

The goal of this protocol is to provide users with a set of methods for the high-throughput decapsulation of Lymnaea stagnalis embryos and larvae in preparation for whole mount in situ hybridization, and for subsequent pre- and post-hybridization treatments.

A Strain Gauge Monitor (SGM) for Continuous Valve Gape Measurements in Bivalve Molluscs in Response to Laboratory Induced Diel-cycling Hypoxia and pH

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Cited by 4 •

2018

Understanding the behavioral responses of bivalve suspension-feeders to environmental variables, such as dissolved oxygen, can explain some ecosystem processes. We have developed an inexpensive, laboratory-based, strain gauge monitor (SGM) to measure valve gape responses of oysters, Crassostrea virginica, to diel-cycling hypoxia and cyclical pH.

Research

JoVE Journal - Biology
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In Vivo Modeling of the Morbid Human Genome using Danio rerio

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Cited by 66 •

2013

Here, we present a systematic approach for developing physiologically relevant, sensitive and specific in vivo assays for interpreting variation in human pathology. Transient genetic manipulation via microinjection of WT and mutant human mRNA and morpholino (MO) antisense oligonucleotides harness the tractability of the developing zebrafish embryo to rapidly assay pathogenic mutations, especially, but not exclusively, in the context of human developmental disorders.

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