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Mapping the Pareto Optimal Design Space for a Functionally Deimmunized Biotherapeutic Candidate

机译:映射功能解除免疫的生物治疗候选人的帕累托最优设计空间

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摘要

The immunogenicity of biotherapeutics can bottleneck development pipelines and poses a barrier to widespread clinical application. As a result, there is a growing need for improved deimmunization technologies. We have recently described algorithms that simultaneously optimize proteins for both reduced T cell epitope content and high-level function. In silico analysis of this dual objective design space reveals that there is no single global optimum with respect to protein deimmunization. Instead, mutagenic epitope deletion yields a spectrum of designs that exhibit tradeoffs between immunogenic potential and molecular function. The leading edge of this design space is the Pareto frontier, i.e. the undominated variants for which no other single design exhibits better performance in both criteria. Here, the Pareto frontier of a therapeutic enzyme has been designed, constructed, and evaluated experimentally. Various measures of protein performance were found to map a functional sequence space that correlated well with computational predictions. These results represent the first systematic and rigorous assessment of the functional penalty that must be paid for pursuing progressively more deimmunized biotherapeutic candidates. Given this capacity to rapidly assess and design for tradeoffs between protein immunogenicity and functionality, these algorithms may prove useful in augmenting, accelerating, and de-risking experimental deimmunization efforts.
机译:生物治疗剂的免疫原性可能会阻碍开发流程,并成为广泛临床应用的障碍。结果,对改进的脱免疫技术的需求日益增长。我们最近描述了可同时针对减少的T细胞表位含量和高级功能同时优化蛋白质的算法。在对该双重目标设计空间的计算机分析中发现,就蛋白质脱免疫而言,没有单一的全局最优。取而代之的是,诱变抗原决定簇缺失产生了一系列设计,这些设计展现了免疫原性潜力和分子功能之间的平衡。该设计领域的前沿是Pareto前沿技术,即在其他两个标准中都没有其他单一设计表现出更好性能的无可匹敌的变体。在这里,已经设计,构建和评估了治疗性酶的帕累托前沿。发现蛋白质性能的各种量度可绘制与计算预测良好相关的功能序列空间。这些结果代表了对功能惩罚的首次系统和严格的评估,必须逐步寻求更多的免疫接种的生物治疗候选药物。鉴于具有快速评估和设计蛋白质免疫原性和功能之间折衷的能力,这些算法可能被证明可用于增强,加速和消除实验性的免疫工作。

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