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Design of versatile biochemical switches that respond to amplitude duration and spatial cues

机译:响应幅度持续时间和空间提示的通用生化开关设计

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摘要

Cells often mount ultrasensitive (switch-like) responses to stimuli. The design principles underlying many switches are not known. We computationally studied the switching behavior of GTPases, and found that this first-order kinetic system can show ultrasensitivity. Analytical solutions indicate that ultrasensitive first-order reactions can yield switches that respond to signal amplitude or duration. The three-component GTPase system is analogous to the physical fermion gas. This analogy allows for an analytical understanding of the functional capabilities of first-order ultrasensitive systems. Experiments show amplitude- and time-dependent Rap GTPase switching in response to Cannabinoid-1 receptor signal. This first-order switch arises from relative reaction rates and the concentrations ratios of the activator and deactivator of Rap. First-order ultrasensitivity is applicable to many systems where threshold for transition between states is dependent on the duration, amplitude, or location of a distal signal. We conclude that the emergence of ultrasensitivity from coupled first-order reactions provides a versatile mechanism for the design of biochemical switches.
机译:细胞通常会对刺激产生超敏感(类似开关的)反应。许多开关所基于的设计原理是未知的。我们通过计算研究了GTPases的开关行为,发现该一阶动力学系统可以显示超敏感性。分析解决方案表明,超敏感的一阶反应可以产生响应信号幅度或持续时间的开关。三组分GTPase系统类似于物理费米子气。这种类比可以分析了解一阶超灵敏系统的功能。实验显示了响应大麻素1受体信号的振幅和时间依赖性Rap GTPase转换。一阶转换是由相对反应速率和Rap活化剂与减活化剂的浓度比引起的。一阶超敏感性适用于许多系统,其中状态之间的转换阈值取决于远端信号的持续时间,幅度或位置。我们得出结论,耦合的一阶反应的超敏感性的出现为生化开关的设计提供了一种通用的机制。

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