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Tunable Protease-Activatable Virus Nanonodes

机译:可调节蛋白酶激活的病毒纳米节点

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We explored the unique signal integration properties of the self-assembling 60-mer protein capsid of adeno-associated virus (AAV), a clinically proven human gene therapy vector, by engineering proteolytic regulation of virus-receptor interactions such that processing of the capsid by proteases is required for infection. We find the transfer function of our engineered protease-activatable viruses (PAVs), relating the degree of proteolysis (input) to PAV activity (output), is highly nonlinear, likely due to increased polyvalency. By exploiting this dynamic polyvalency, in combination with the self-assembly properties of the virus capsid, we show that mosaic PAVs can be constructed that operate under a digital AND gate regime, where two different protease inputs are required for virus activation. These results show viruses can be engineered as signal-integrating nanoscale nodes whose functional properties are regulated by multiple proteolytic signals with easily tunable and predictable response surfaces, a promising development toward advanced control of gene delivery.
机译:我们通过对病毒-受体相互作用的工程蛋白水解调节,从而使衣壳的加工过程,探索了腺相关病毒(AAV)的自组装60聚体蛋白衣壳的独特信号整合特性,这是一种临床证明的人类基因治疗载体。蛋白酶是感染所必需的。我们发现,工程改造的蛋白酶可激活病毒(PAV)的传递函数与蛋白水解程度(输入)与PAV活性(输出)相关,是高度非线性的,可能是由于增加了多价引起的。通过利用这种动态多价性,结合病毒衣壳的自组装特性,我们表明可以构建在数字与门机制下运行的镶嵌PAV,其中病毒激活需要两个不同的蛋白酶输入。这些结果表明,可以将病毒工程化为信号整合的纳米级节点,其功能特性由具有易于调节和可预测的响应面的多个蛋白水解信号调节,这是朝高级控制基因传递的发展方向。

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