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A Fuzzy-Logic Language for Encoding Multiple Physical Traits in Biomolecules

机译:一种模糊逻辑语言用于编码生物分子中的多种物理特征

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摘要

To carry out their activities, biological macromolecules balance different physical traits, such as stability, interaction affinity, and selectivity. How such often opposing traits are encoded in a macromolecular system is critical to our understanding of evolutionary processes and ability to design new molecules with desired functions. We present a framework for constraining design simulations to balance different physical characteristics. Each trait is represented by the equilibrium fractional occupancy of the desired state relative to its alternatives, ranging from none to full occupancy, and the different traits are combined using Boolean operators to effect a “fuzzy”-logic language for encoding any combination of traits. In another paper, we presented a new combinatorial backbone design algorithm AbDesign where the fuzzy-logic framework was used to optimize protein backbones and sequences for both stability and binding affinity in antibody-design simulation. We now extend this framework and find that fuzzy-logic design simulations reproduce sequence and structure design principles seen in nature to underlie exquisite specificity on the one hand and multispecificity on the other hand. The fuzzy-logic language is broadly applicable and could help define the space of tolerated and beneficial mutations in natural biomolecular systems and design artificial molecules that encode complex characteristics.
机译:为了执行其活动,生物大分子平衡了不同的物理特性,例如稳定性,相互作用亲和力和选择性。在大分子系统中如何如此频繁地编码相反的性状,对于我们对进化过程的理解以及设计具有所需功能的新分子的能力至关重要。我们提出了一个框架,用于约束设计仿真以平衡不同的物理特性。每个特征都由所需状态相对于其替代方案的平衡分数占用(从无到完全占用)表示,并且使用布尔运算符组合不同的特征以实现“模糊”逻辑语言,以对特征的任何组合进行编码。在另一篇论文中,我们提出了一种新的组合主链设计算法AbDesign,其中,模糊逻辑框架用于优化蛋白质主链和序列,以在抗体设计仿真中实现稳定性和结合亲和力。现在,我们扩展了这个框架,发现模糊逻辑设计仿真可重现自然界中看到的顺序和结构设计原理,一方面可为精巧的特异性奠定基础,另一方面可为多特异性提供基础。模糊逻辑语言具有广泛的适用性,可以帮助定义自然生物分子系统中可容许的有益突变的空间,并设计编码复杂特征的人工分子。

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