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Coherent directed movement toward food modeled in Trichoplax, a ciliated animal lacking a nervous system
by
Reese, Thomas S.
, Govezensky, Tzipe
, Barrio, Rafael A.
, Smith, Carolyn L.
in
Adherens junctions
/ Algae
/ Animals
/ Biological Sciences
/ Biophysics and Computational Biology
/ Chemotaxis
/ Chemotaxis - physiology
/ Cilia
/ Coherence
/ Epithelial cells
/ Epithelium
/ Feeding Behavior
/ Food
/ Gap junctions
/ Gliding
/ Marine animals
/ Mathematical models
/ Microalgae
/ Muscles
/ Nervous system
/ Organic chemistry
/ Placozoa - physiology
/ PNAS Plus
/ Signal Transduction
/ Substrates
/ Tight junctions
/ Viscoelasticity
2019
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Coherent directed movement toward food modeled in Trichoplax, a ciliated animal lacking a nervous system
by
Reese, Thomas S.
, Govezensky, Tzipe
, Barrio, Rafael A.
, Smith, Carolyn L.
in
Adherens junctions
/ Algae
/ Animals
/ Biological Sciences
/ Biophysics and Computational Biology
/ Chemotaxis
/ Chemotaxis - physiology
/ Cilia
/ Coherence
/ Epithelial cells
/ Epithelium
/ Feeding Behavior
/ Food
/ Gap junctions
/ Gliding
/ Marine animals
/ Mathematical models
/ Microalgae
/ Muscles
/ Nervous system
/ Organic chemistry
/ Placozoa - physiology
/ PNAS Plus
/ Signal Transduction
/ Substrates
/ Tight junctions
/ Viscoelasticity
2019
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Coherent directed movement toward food modeled in Trichoplax, a ciliated animal lacking a nervous system
by
Reese, Thomas S.
, Govezensky, Tzipe
, Barrio, Rafael A.
, Smith, Carolyn L.
in
Adherens junctions
/ Algae
/ Animals
/ Biological Sciences
/ Biophysics and Computational Biology
/ Chemotaxis
/ Chemotaxis - physiology
/ Cilia
/ Coherence
/ Epithelial cells
/ Epithelium
/ Feeding Behavior
/ Food
/ Gap junctions
/ Gliding
/ Marine animals
/ Mathematical models
/ Microalgae
/ Muscles
/ Nervous system
/ Organic chemistry
/ Placozoa - physiology
/ PNAS Plus
/ Signal Transduction
/ Substrates
/ Tight junctions
/ Viscoelasticity
2019
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Coherent directed movement toward food modeled in Trichoplax, a ciliated animal lacking a nervous system
Journal Article
Coherent directed movement toward food modeled in Trichoplax, a ciliated animal lacking a nervous system
2019
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Overview
Trichoplax adhaerens is a small, ciliated marine animal that glides on surfaces grazing upon algae, which it digests externally. It has no muscles or nervous system and only six cell types, all but two of which are embedded in its epithelium. The epithelial cells are joined by apical adherens junctions; neither tight junctions nor gap junctions are present. Monociliated epithelial cells on the lower surface propel gliding. The cilia beat regularly, but asynchronously, and transiently contact the substrate with each stroke. The animal moves in random directions in the absence of food. We show here that it exhibits chemotaxis, moving preferentially toward algae embedded in a disk of agar. We present a mathematical model to explain how coherent, directional movements could arise from the collective actions of a set of ciliated epithelial cells, each independently sensing and responding to a chemoattractant gradient. The model incorporates realistic values for viscoelastic properties of cells and produces coordinated movements and changes in body shape that resemble the actual movements of the animal. The model demonstrates that an animal can move coherently in search of food without any need for chemical signaling between cells and introduces a different approach to modeling behavior in primitive multicellular organisms.
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