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The limits of chemosensation vary across dimensions

机译:化学感觉的极限因尺寸而异

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Many biological processes rely on the ability of cells to measure local ligand concentration. However, such measurements are constrained by noise arising from diffusion and the stochastic nature of receptor–ligand interactions. It is thus critical to understand how accurately, in principle, concentration measurements can be made. Previous theoretical work has mostly investigated this in 3D under the simplifying assumption of an unbounded domain of diffusion, but many biological problems involve 2D concentration measurement in bounded domains, for which diffusion behaves quite differently. Here we present a theory of the precision of chemosensation that covers bounded domains of any dimensionality. We find that the quality of chemosensation in lower dimensions is controlled by domain size, suggesting a general principle applicable to many biological systems. Applying the theory to biological problems in 2D shows that diffusion-limited signalling is an efficient mechanism on time scales consistent with behaviour.
机译:许多生物学过程依赖于细胞测量局部配体浓度的能力。但是,此类测量受到扩散和受体-配体相互作用的随机性所产生的噪声的限制。因此,至关重要的是要了解原理上浓度测量的精确度。先前的理论工作主要在简化的无界扩散域假设下以3D对此进行了研究,但是许多生物学问题涉及到在有界域中进行2D浓度测量,因此扩散行为有很大不同。在这里,我们提出一种化学传感精度的理论,该理论涵盖了任何维度的有界域。我们发现较低尺寸的化学传感质量受域大小控制,这表明适用于许多生物系统的一般原理。将理论应用于二维生物问题表明,扩散受限信号是在与行为一致的时间尺度上有效的机制。

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