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Experimental evidence for constraints in amplitude-timescale co-variation of a biomolecular pulse generating circuit design

机译:生物分子脉冲发生电路设计的幅度 - 时间尺度共变化的限制实验证据

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摘要

Understanding constraints on the functional properties of biomolecular circuit dynamics, such as the possible variations of amplitude and timescale of a pulse, is an important part of biomolecular circuit design. While the amplitude-timescale co-variations of the pulse in an incoherent feedforward loop have been investigated computationally using mathematical models, experimental support for any such constraints is relatively unclear. Here, the authors address this using experimental measurement of an existing pulse generating incoherent feedforward loop circuit realisation in the context of a standard mathematical model. They characterise the trends of co-variation in the pulse amplitude and rise time computationally by randomly exploring the parameter space. They experimentally measured the co-variation by varying inducers and found that larger amplitude pulses have a slower rise time. They discuss the gap between the experimental measurements and predictions of the standard model, highlighting model additions and other biological factors that might bridge the gap.
机译:了解生物分子电路动力学功能特性的限制,例如脉冲的可能变化和脉冲少度,是生物分子电路设计的重要组成部分。虽然已经使用数学模型计算了不连贯的前馈回路中的脉冲的脉冲的幅度 - 时间尺度的协同变化,但对任何此类约束的实验支持相对尚不清楚。在这里,作者使用实验测量在标准数学模型的上下文中产生了现有脉冲产生了不连贯的前馈回路电路实现的实验测量。它们通过随机探索参数空间来表征脉冲幅度和上升时间的协同变化的趋势。他们通过改变诱导剂实验测量了共变化,并发现较大的幅度脉冲具有较慢的上升时间。他们讨论了标准模型的实验测量和预测之间的差距,突出显示可能弥合差距的模型添加和其他生物因素。

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