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缝隙连接渗透率对钙离子传输的影响

Effect of Gap Junction Penetration Rate on Calcium Ions Transport
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摘要 已建立的渗透性模型主要基于连接蛋白的开关特性,却忽略实际蛋白间的差异,在应用上存在局限.从连接蛋白生物特征多样性的角度引入渗透率这一缝隙连接类型参数,对渗透性模型进行改进,分析渗透率对分子通信的时延、传输距离等参数的影响.选取钙离子为传输粒子进行仿真,实验结果验证了模型的准确性,在发送、传输条件一致的前提下,渗透率越高,接收钙离子波的幅度越大,对应的传输距离越远. The established permeability model is mainly based on the switching characteristics of connexin but ignores the differences between the actual proteins,which has limitations in application.The penetration rate is introduced from the perspective of the biological diversity of connexin,and the permeability model is improved to analyze the influence of penetration rate on parameters such as the time delay and transmission distance of molecular communication.Calcium ions are selected as the transmission particles for simulation.The experimental results verify the accuracy of the model.Under the premise of the same sending and transmitting conditions,the higher the penetration rate is,the larger the amplitude of the received calcium ion wave,and the longer the corresponding transmission distance is.
作者 宋正勋 马迪 崔焱旭 郎百和 杨立波 王作斌 SONG Zhengxun;MA Di;CUI Yanxu;LANG Baihe;YANG Libo;WANG Zuobin(School of Electronic and Information Engineering,Changchun University of Science and Technology,Changchun 130022,China;International Research Centre for Nano Handling and Manufacturing of China,Changchun University of Science and Technology,Changchun 130022,China;Overseas Expertise Introduction Project for Discipline Innovation(D17017),Changchun University of Science and Technology,Changchun 130022,China)
出处 《华侨大学学报(自然科学版)》 CAS 2021年第1期83-90,共8页 Journal of Huaqiao University(Natural Science)
基金 科技部国家重点研发计划项目(2017YFE0112100) 欧盟地平线H2020计划项目(734174)。
关键词 分子通信 缝隙连接 钙离子 渗透性 molecular communication gap junction calcium ion permeability
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  • 1Atakan B, Akan O B, Balasubramaniam S. Body area nanonetworks with molecular communications in nanomed- icine [ J ]. IEEE Communications Magazine, 2012, 50 (1): 28-34.
  • 2Anderson J C, Clarke E J, Arkin A P, et al. Environ- mentally controlled invasion of cancer cells by engineered bacteria [ J ] . Journal of Molecular Biology, 2006, 355 (4) : 619-627.
  • 3Movassaghi S, Abolhasan M, Lipman J, et al. Wireless body area networks: a survey[ J]. IEEE Communications Surveys & Tutorials, 2014, 16(3): 1658-1686.
  • 4Jornet J M. Akyildiz I F. Graphene-based nano-antennas for electromagnetic nanocommunications in the terahertz band [ C ] //Antennas and Propagation ( EuCAP), 2010 Proceedings of the Fourth European Conference on. [ S. 1. ] : IEEE, 2010: 1-5.
  • 5Akyildiz I, Pierobon M, Balasubramaniam S, et al. The internet of bio-nano things [ J ]. IEEE Communications Magazine, 2015, 53(3): 32-40.
  • 6Akyildiz I F, Jornet J M, Pierobon M. Nanonetworks: a new frontier in communications [J ]. Communications of the ACM, 2011, 54(11): 84-89.
  • 7Hiyama S, Moritani Y. Molecular communication: har- nessing biochemical materials to engineer biomimetic communication systems [ J ]. Nano Communication Net- works, 2010, 1(1) : 20-30.
  • 8Akyildiz I F, Brunetti F, Bldzquez C. Nanonetworks: a new communication paradigm [ J ]. Computer Networks, 2008, 52(12): 2260-2279.
  • 9Nakano T, Moore M J, Wei Fang, et al. Molecular communication and networking: opportunities and chal- lenges [ J ]. IEEE Transactions on NanoBioscience, 2012, 11(2): 135-148.
  • 10Pierobon M, Akyildiz I F. A physical end-to-end model for molecular communication in nanonetworks[ J ]. IEEE Journal on Selected Areas in Communications, 2010, 28 (4) : 602-611.

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