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Modeling Maintenance of Long-Term Potentiation in Clustered Synapses: Long-Term Memory without Bistability

机译:集群突触中长期电位的建模维护:长期记忆,没有双稳态

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Memories are stored, at least partly, as patterns of strong synapses. Given molecular turnover, how can synapses maintain strong for the years that memories can persist? Some models postulate that biochemical bistability maintains strong synapses. However, bistability should give a bimodal distribution of synaptic strength or weight, whereas current data show unimodal distributions for weights and for a correlated variable, dendritic spine volume. Thus it is important for models to simulate both unimodal distributions and long-term memory persistence. Here a model is developed that connects ongoing, competing processes of synaptic growth and weakening to stochastic processes of receptor insertion and removal in dendritic spines. The model simulates long-term (>1 yr) persistence of groups of strong synapses. A unimodal weight distribution results. For stability of this distribution it proved essential to incorporate resource competition between synapses organized into small clusters. With competition, these clusters are stable for years. These simulations concur with recent data to support the “clustered plasticity hypothesis” which suggests clusters, rather than single synaptic contacts, may be a fundamental unit for storage of long-term memory. The model makes empirical predictions and may provide a framework to investigate mechanisms maintaining the balance between synaptic plasticity and stability of memory.
机译:存储器至少部分地存储作为强突触的模式。考虑到分子转交,如何在记忆可以持续存在的年份保持强大?一些模型假设生物化学双稳态保持强大的突触。然而,双稳态应给出突触强度或重量的双峰分布,而当前数据显示重量的单峰分布和相关变量,树突脊柱体积。因此,模型模拟单峰分布和长期内存持久性很重要。在这里,开发了一种模型,其连接持续的突触生长的竞争过程和削弱的受体插入随机过程和在树突刺中移除。该模型模拟了强大突触组的长期(> 1年)持久性。单透明度分布结果。对于这种分布的稳定性,它证明必须将组织成小集群组织的突触之间的资源竞争必要。随着竞争,这些集群多年来稳定。这些模拟与最近的数据同意支持“集群塑性假设”,该数据建议簇,而不是单个突触触点,可以是用于存储长期存储器的基本单元。该模型进行了经验预测,可以提供框架,以研究维持突触可塑性和记忆稳定性之间的平衡的机制。

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