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关于举行复旦大学于玉国研究员学术报告的通知

发布时间:2017-04-12文章来源:浏览次数:70

 

报告题目1神经元动作电位Hodgkin-Huxley典理模型的普适性

报告题目2Sparse Coding andLateral Inhibition Arising from Balanced and UnbalancedDendrodendritic Excitation and Inhibition

 

报 告 人:于玉国 研究员

 (复旦大学计算生物学中心,医学神经生物学国家重点实验室)

时   间20141214(周日)上午9:00-12:00

地   点:4号楼4318室。                                                  

 

欢迎广大师生参加。

                                数学学院

                            2014129

附:

报告1摘要:1952年基于冷血枪乌贼鱼突的描述神位的理Hodgkin-HuxleyHH)模型建立以来,被广泛用于描述不同物种的不同型的神位的生和传输实验现象。但基于低等物的HH模型是否也适用于温血物皮位的程一直作一个疑,不断受到实验现象的挑。在最近几年有两个来自实验现象的有力挑,均认为进化可能化了高等物的生机制。我对这实验现行了尽的检验,并研究了HH模型在什么情况下能释实验现象。我成功发现在考到温血物和冷血物的温度因素以及位的空间传播等特性的情况下,HH论对高等物神元的生机制仍然成立,从另一方面也明了神生机制于所有物的普适性。

 

报告2摘要:Theprecise mechanism by which synaptic excitation and inhibitioninteract with each other in odor coding through the uniquedendrodendritic synaptic microcircuits present in olfactory bulb isunknown. In the olfactory bulb, lateral inhibition mediated bygranule cells has been suggested to modulate the timing of mitralcell firing, thereby shaping the representation of input odorants.Current experimental techniques, however, do not enable a clear studyof how the mitral-granule cell network sculpts odor inputs torepresent odor information spatially and temporally. To address thiscritical step in the neural basis of odor recognition, we built alarge scale biophysical network circuit model of olfactory bulb withover 500 mitral and 10000 granule cells, corresponding to 1/100th ofthe real system in the rat, and used direct experimental imaging dataof glomeruli activated by various odors. The model allows thesystematic investigation of dendrodendritic processing ofexperimentally determined odor patterns. We found that theinteraction between excitation and inhibition is responsible for twofundamental computational mechanisms: (1) a balancedexcitation/inhibition in strongly activated mitral cells, leading toa sparse representation of odorant input, and (2) an unbalancedexcitation/inhibition (inhibition dominated) in surrounding weaklyactivated mitral cells, leading to lateral inhibition. These resultssuggest how both mechanisms can carry information about the inputpatterns, with optimal level of synaptic excitation and inhibitionproducing the highest level of sparseness and decorrelation in thenetwork response. The results suggesthowthe learning process, throughthe emergent development of these mechanisms, can enhance odorrepresentation of olfactory bulb.