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The mechanism of pattern formation in the developing drosophila retina
作者姓名:SUN QiCheng Institute of Process Engineering  Chinese Academy of Sciences  Beijing  China
作者单位:SUN QiCheng Institute of Process Engineering,Chinese Academy of Sciences,Beijing 100080,China
摘    要:The biological patterning of the drosophila retina in vivo has striking resemblance to liquid bubbles, in which the surface mechanics due to N-cadherin within a sub-group of retina cells can be mimicked by surface tension. In this work, the aggregating patterns were reasonably simplified into 2D clusters consisting of 2—6 identical bubbles confined within a shrinking boundary. By using a hybrid fluid dy-namics model proposed for liquid foams, the aggregating process of 2―6 retina cells was studied. Assuming the minimal perimeter for patterning cells to be the condition of stability patterns, the stable converged patterns we simulated in this work are the same as the experimental observations. More importantly, a new pattern of 6 cells was obtained which was found physically more stable than the other two reported by Hayashi and Carthew1]. Aggregating perimeters of cells, i.e. the surface energy, showed a good linear fit with the cell numbers.

收稿时间:24 February 2006
修稿时间:25 April 2006

The mechanism of pattern formation in the developing drosophila retina
SUN QiCheng Institute of Process Engineering,Chinese Academy of Sciences,Beijing ,China.The mechanism of pattern formation in the developing drosophila retina[J].Science China Life sciences,2007,50(1):120-124.
Authors:SUN QiCheng
Institution:(1) Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100080, China
Abstract:The biological patterning of the drosophila retina in vivo has striking resemblance to liquid bubbles, in which the surface mechanics due to N-cadherin within a sub-group of retina cells can be mimicked by surface tension. In this work, the aggregating patterns were reasonably simplified into 2D clusters consisting of 2–6 identical bubbles confined within a shrinking boundary. By using a hybrid fluid dynamics model proposed for liquid foams, the aggregating process of 2–6 retina cells was studied. Assuming the minimal perimeter for patterning cells to be the condition of stability patterns, the stable converged patterns we simulated in this work are the same as the experimental observations. More importantly, a new pattern of 6 cells was obtained which was found physically more stable than the other two reported by Hayashi and Carthew1]. Aggregating perimeters of cells, i.e. the surface energy, showed a good linear fit with the cell numbers. Supported by the National Natural Science Foundation of China (Grant Nos. 20336040 and 20490201)
Keywords:drosophila retina  cone cell  foam physics  stability condition  complex system
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