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Using the Population-Shift Mechanism to Rationally Introduce 'Hill-type' Cooperativity into a Normally Non-Cooperative Receptor

机译:使用人口迁移机制将“山式”合作性合理地引入正常情况下不合作的受体

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Allosteric cooperativity, which nature uses to improve the sensitivity with which biomolecular receptors respond to small changes in ligand concentration, could likewise be of use in improving the responsiveness of artificial biosystems. Thus motivated, we demonstrate here the rational design of cooperative molecular beacons, a widely employed DNA sensor, using a generalizable population-shift approach in which we engineer receptors that equilibrate between a low-affinity state and a high-affinity state exposing two binding sites. Doing so we achieve cooperativity within error of ideal behavior, greatly steepening the beacon's binding curve relative to that of the parent receptor. The ability to rationally engineer cooperativity should prove useful in applications such as biosensors, synthetic biology and "smart" biomaterials, in which improved responsiveness is of value.
机译:自然用来提高生物分子受体对配体浓度的微小变化作出反应的敏感性的变构合作性同样可以用于改善人工生物系统的响应性。因此,在此基础上,我们使用一种可推广的种群转移方法,在其中证明了低亲和力状态和高亲和力状态之间平衡的暴露两个结合位点的受体的合理设计,证明了广泛应用的DNA传感器-合作分子信标的合理设计。 。这样做,我们可以在理想行为的误差范围内实现协作,从而使信标的绑定曲线相对于亲本受体的绑定曲线更加陡峭。在诸如生物传感器,合成生物学和“智能”生物材料之类的应用中,合理地设计协同能力的能力应被证明是有用的,在这些应用中,提高响应能力是很有价值的。

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