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报告题目:
Modeling Endoplasmic Reticulum Network Maintenance in a Plant Cell
 报告人:
林聪萍
副研究员,华中科技大学
报告时间:
2018-06-26 15:00
报告地点:
清华大学科学馆 118 报告厅
主办单位:
周培源应用数学研究中心
  简介:

The endoplasmic reticulum (ER) in plant cells forms a highly dynamic network of complex geometry. ER network morphology and dynamics are influenced by a number of biophysical processes, including filament/tubule tension, viscous forces, Brownian diffusion, and interactions with many other organelles and cytoskeletal elements. Previous studies have indicated that ER networks can be thought of as constrained minimal-length networks acted on by a variety of forces that perturb and/or remodel the network. Here, we study two specific biophysical processes involved in remodeling. One is the dynamic relaxation process involving a combination of tubule tension and viscous forces. The other is the rapid creation of cross-connection tubules by direct or indirect interactions with cytoskeletal elements. These processes are able to remodel the ER network: the first reduces network length and complexity whereas the second increases both. Using live cell imaging of ER network dynamics in tobacco leaf epidermal cells, we examine these processes on ER network dynamics. Away from regions of cytoplasmic streaming, we suggest that the dynamic network structure is a balance between the two processes, and we build an integrative model of the two processes for network remodeling. This model produces quantitatively similar ER networks to those observed in experiments. We use the model to explore the effect of parameter variation on statistical properties of the ER network.

报告人简介: I am trained in dynamical systems in my MSc and since my PhD in the University of Exeter, UK. I am inspired to apply dynamics to complex biological system. In my research, I have been using various numerical techniques and mathematical tools including stochastic process, statistical analysis, graph theory and differential equations. My current interdisciplinary research includes intracellular transport modelling, geometric network dynamics of Endoplasmic network (a large organelle in cells), transient network dynamics in brains with applications to neuron disease – epilepsy, as well as other

interdisciplinary researches in material science and astronomy.
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