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Identifying feasible operating regimes for early T-cell recognition: The speed, energy, accuracy trade-off in kinetic proofreading and adaptive sorting

机译:确定早期T细胞识别的可行操作方案:动力学校对和自适应分类中的速度,能量,准确性之间的权衡

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摘要

In the immune system, T cells can quickly discriminate between foreign and self ligands with high accuracy. There is evidence that T-cells achieve this remarkable performance utilizing a network architecture based on a generalization of kinetic proofreading (KPR). KPR-based mechanisms actively consume energy to increase the specificity beyond what is possible in equilibrium. An important theoretical question that arises is to understand the trade-offs and fundamental limits on accuracy, speed, and dissipation (energy consumption) in KPR and its generalization. Here, we revisit this question through numerical simulations where we simultaneously measure the speed, accuracy, and energy consumption of the KPR and adaptive sorting networks for different parameter choices. Our simulations highlight the existence of a “feasible operating regime” in the speed-energy-accuracy plane where T-cells can quickly differentiate between foreign and self ligands at reasonable energy expenditure. We give general arguments for why we expect this feasible operating regime to be a generic property of all KPR-based biochemical networks and discuss implications for our understanding of the T cell receptor circuit.
机译:在免疫系统中,T细胞可以快速准确地区分外源和自身配体。有证据表明,T细胞利用基于动态校对(KPR)的通用化的网络体系结构来实现这一卓越性能。基于KPR的机制积极消耗能量,以增加特异性,使其超出平衡所可能达到的水平。出现的一个重要的理论问题是要了解KPR及其推广中的准确性,速度和耗散(能耗)的取舍和基本限制。在这里,我们通过数值模拟重新审视了这个问题,其中我们同时针对不同的参数选择,测量了KPR和自适应分选网络的速度,准确性和能耗。我们的模拟突显了速度能量精确度平面中存在“可行的操作机制”,在此情况下,T细胞可以在合理的能量消耗下快速区分外源和自身配体。对于为什么我们希望这种可行的操作方式成为所有基于KPR的生化网络的通用属性,我们给出了一般性的论点,并讨论了对我们对T细胞受体电路的理解的含义。

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