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Michelangelo von Dassow

Publications and source records attributed to Michelangelo von Dassow.

3 recordsLinked to original sources

Function-dependent development in a colonial animal.

How does the way an organism functions affect its subsequent development? Bryozoans are colonial animals that capture suspended food particles from water currents they generate using crowns of ciliated tentacles (lophophores). In many encrusting bryozoans the water passes through and then under the lophophores until it exits the colony at "chimneys" where the lophophores spread apart to form an opening. To determine whether these water currents can induce the formation of new chimneys, I augmented the excurrent flow by injecting seawater into the colony. New chimneys began to develop near the site of seawater injection within as little as one to two days. New chimneys rarely began to develop within this time interval at control sites where I did not inject seawater. This shows that fluid flow controls development in an external fluid transport system lacking pipe-like conduits, as has been found in the vertebrate circulatory system, an internal fluid transport system with pipe-like conduits. These fluid transport systems show feedback between the way they function and their own development. This kind of "function-dependent development" should be differentiated from phenotypic plasticity, since the developing system, not the environment, produces the signals that induce morphological change.

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Flow and conduit formation in the external fluid-transport system of a suspension feeder.

To what extent is the development of a fluid-transport system related to flow within the system? Colonies of the bryozoan Membranipora membranacea have a simple external fluid-transport system with three components: the canopy of lophophores (crowns of ciliated tentacles), the edge of the canopy, and chimneys (raised openings in the canopy). The lophophores pump seawater into the colony and capture food particles from the seawater. The chimneys and canopy edge let the water back out of the colony. New chimneys form at the canopy edge as the colony grows. I tested whether there was a correlation between chimney formation and excurrent flow speed at the canopy edge by measuring excurrent flow speeds prior to chimney formation. Excurrent flow speeds were higher in regions that produced chimneys than in regions that did not form chimneys. Observations of changes in chimney shape after anesthetization with MgCl2 suggest that both growth and behavior determine chimney shape. Together, the results suggest that there is a strong correlation between growth and flow in this external fluid-transport system, with new chimneys forming at sites of high flow.

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Effects of ambient flow and injury on the morphology of a fluid transport system in a bryozoan.

Many organisms use fluid transport systems that are open to the external environment for suspension feeding or gas exchange. How do factors related to the environment, such as injuries and ambient currents, affect remodeling of these systems? In the bryozoan Membranipora membranacea, the lophophores (crowns of ciliated tentacles) form a canopy over the colony. The lophophores pump seawater from above the colony through themselves to capture food particles. The seawater then flows under the canopy to exit the colony at chimneys (openings in the canopy) or at the canopy edge. To test whether either ambient flow speed or injury affects remodeling of this system, I measured changes in chimney size and spacing in colonies grown in flow tanks at different ambient flow speeds, and in colonies in which I killed patches of zooids. There was no effect of either ambient flow speed or injury size on chimney remodeling. Injury did not induce chimney formation. In addition, chimneys formed at the canopy edge, indicating that high pressure under the canopy did not induce chimney formation. These results suggest that ambient flow, injury, and the pressure under the canopy may have little effect on the remodeling of this fluid transport system.

Animals↗