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首页> 外文期刊>Biophysical Journal >The Costs of Close Contacts: Visualizing the Energy Landscape of Cell Contacts at the Nanoscale
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The Costs of Close Contacts: Visualizing the Energy Landscape of Cell Contacts at the Nanoscale

机译:密切联系人的成本:在纳米尺度上可视化细胞触点的能量景观

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Cell-cell contacts often underpin signaling between cells. For immunology, the binding of a T cell receptor to an antigen-presenting pMHC initiates downstream signaling and an immune response. Although this contact is mediated by proteins on both cells creating interfaces with gap sizes typically around 14 nm, many, often contradictory observations have been made regarding the influence of the contact on parameters such as the binding kinetics, spatial distribution, and diffusion of signaling proteins within the contact. Understanding the basic physical constraints on probes inside this crowded environment will help inform studies on binding kinetics and dynamics of signaling of relevant proteins in the synapse. By tracking quantum dots of different dimensions for extended periods of time, we have shown that it is possible to obtain the probability of a molecule entering the contact, the change in its diffusion upon entry, and the impact of spatial heterogeneity of adhesion protein density in the contact. By analyzing the contacts formed by a T cell interacting with adhesion proteins anchored to a supported lipid bilayer, we find that probes are excluded from contact entry in a size-dependent manner for gap-to-probe differences of 4.1 nm. We also observed probes being trapped inside the contact and a decrease in diffusion of up to 85% in dense adhesion protein contacts. This approach provides new, to our knowledge, insights into the nature of cell-cell contacts, revealing that cell contacts are highly heterogeneous because of topography- and protein-density-related processes. These effects are likely to profoundly influence signaling between cells.
机译:细胞 - 细胞接触经常在细胞之间支撑信号传导。对于免疫学,T细胞受体与抗原呈下PMHC的结合引发了下游信号传导和免疫应答。虽然这种接触由两种细胞上的蛋白质介导的蛋白质产生差距尺寸通常约为14nm,但是许多通常是矛盾的观察,通常是关于接触对信号传导蛋白的结合动力学,空间分布和扩散的影响的影响在联系处。了解这款拥挤环境中探针的基本物理限制将有助于为突触中的相关蛋白质信号传导的引导动力学和动态提供信息。通过在延长的时间段内跟踪不同尺寸的量子点,我们已经表明,可以获得进入接触的分子的可能性,其扩散在进入时的变化以及空间异质性的影响粘附蛋白质密度的影响联系人。通过分析由T细胞形成的与锚固到负载脂质双层的粘附蛋白相互作用的触点,发现探针以尺寸依赖性方式从接触条目中排除,以实现4.1nm的间隙探测差异。我们还观察到捕获的探针被困在接触内,并且在致密粘合蛋白触点中的扩散降低至85%。这种方法为我们的知识提供了新的,介绍了细胞 - 细胞接触性质的洞察力,揭示了由于与蛋白质密度相关的过程,细胞触点是高度异质的。这些效果可能会对细胞之间的信号传导深刻地影响信号。

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