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由三态跃迁机制产生的两种神经放电节律
  • ISSN号:1000-6737
  • 期刊名称:生物物理学报
  • 时间:0
  • 页码:703-711
  • 分类:TP18[自动化与计算机技术—控制科学与工程;自动化与计算机技术—控制理论与控制工程] TM911.14[电气工程—电力电子与电力传动]
  • 作者机构:[1]Key Laboratory of MOE for Modern Teaching Technology and College of Life Sciences, Shaanxi Normal University, Xi'an 710062, China, [2]Institute of Theoretical & Computational Physics, School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710062, China
  • 相关基金:Project supported by the National Natural Science Foundation of China (Grant No. 30900443) and the Fundamental Research Funds for the Central Universities, China (Grant Nos. GK201302052 and GK261001007).
  • 相关项目:离子通道空间分布的变化在DRG神经元异常自发放电中的作用
中文摘要:

Neurons in the brain utilize various firing trains to encode the input signals they have received.Firing behavior of one single neuron is thoroughly explained by using a bifurcation diagram from polarized resting to firing,and then to depolarized resting.This explanation provides an important theoretical principle for understanding neuronal biophysical behaviors.This paper reports the novel experimental and modeling results of the modification of such a bifurcation diagram by adjusting small conductance potassium(SK)channel.In experiments,changes in excitability and depolarization block in nucleus accumbens shell and medium-spiny projection neurons are explored by increasing the intensity of injected current and blocking the SK channels by apamin.A shift of bifurcation points is observed.Then,a Hodgkin–Huxley type model including the main electrophysiological processes of such neurons is developed to reproduce the experimental results.The reduction of SK channel conductance also shifts the bifurcations,which is in consistence with experiment.A global bifurcation paradigm of this shift is obtained by adjusting two parameters,intensity of injected current and SK channel conductance.This work reveals the dynamics underpinning modulation of neuronal firing behaviors by biologically important ionic conductance.The results indicate that small ionic conductance other than that responsible for spike generation can modify bifurcation points and shift the bifurcation diagram and,thus,change neuronal excitability and adaptation.

英文摘要:

Neurons in the brain utilize various firing trains to encode the input signals they have received. Firing behavior of one single neuron is thoroughly explained by using a bifurcation diagram from polarized resting to firing, and then to depolarized resting. This explanation provides an important theoretical principle for understanding neuronal biophysical behaviors. This paper reports the novel experimental and modeling results of the modification of such a bifurcation dia- gram by adjusting small conductance potassium (SK) channel. In experiments, changes in excitability and depolarization block in nucleus accumbens shell and medium-spiny projection neurons are explored by increasing the intensity of injected current and blocking the SK channels by apamin. A shift of bifurcation points is observed. Then, a Hodgkin-Huxley type model including the main electrophysiological processes of such neurons is developed to reproduce the experimental results. The reduction of SK channel conductance also shifts the bifurcations, which is in consistence with experiment. A global bifurcation paradigm of this shift is obtained by adjusting two parameters, intensity of injected current and SK channel con- ductance. This work reveals the dynamics underpinning modulation of neuronal firing behaviors by biologically important ionic conductance. The results indicate that small ionic conductance other than that responsible for spike generation can modify bifurcation points and shift the bifurcation diagram and, thus, change neuronal excitability and adaptation.

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期刊信息
  • 《生物物理学报》
  • 北大核心期刊(2011版)
  • 主管单位:中国科协
  • 主办单位:中国生物物理学会
  • 主编:沈恂
  • 地址:北京朝阳区大屯路15号生物物理研究所内
  • 邮编:100101
  • 邮箱:acta@sun5.ibp.ac.cn
  • 电话:010-64888458
  • 国际标准刊号:ISSN:1000-6737
  • 国内统一刊号:ISSN:11-1992/Q
  • 邮发代号:
  • 获奖情况:
  • 二次获得中国科协优秀科技期刊奖
  • 国内外数据库收录:
  • 美国化学文摘(网络版),日本日本科学技术振兴机构数据库,中国中国科技核心期刊,中国北大核心期刊(2004版),中国北大核心期刊(2008版),中国北大核心期刊(2011版),中国北大核心期刊(2014版),中国北大核心期刊(2000版)
  • 被引量:7189