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Challenges in the computational design of proteins

机译:蛋白质计算设计中的挑战

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摘要

Protein design has many applications not only in biotechnology but also in basic science. It uses our current knowledge in structural biology to predict, by computer simulations, an amino acid sequence that would produce a protein with targeted properties. As in other examples of synthetic biology, this approach allows the testing of many hypotheses in biology. The recent development of automated computational methods to design proteins has enabled proteins to be designed that are very different from any known ones. Moreover, some of those methods mostly rely on a physical description of atomic interactions, which allows the designed sequences not to be biased towards known proteins. In this paper, we will describe the use of energy functions in computational protein design, the use of atomic models to evaluate the free energy in the unfolded and folded states, the exploration and optimization of amino acid sequences, the problem of negative design and the design of biomolecular function. We will also consider its use together with the experimental techniques such as directed evolution. We will end by discussing the challenges ahead in computational protein design and some of their future applications.
机译:蛋白质设计不仅在生物技术中而且在基础科学中都有许多应用。它利用我们目前在结构生物学中的知识,通过计算机模拟来预测会产生具有目标特性的蛋白质的氨基酸序列。就像其他合成生物学的例子一样,这种方法可以检验生物学中的许多假设。设计蛋白质的自动计算方法的最新发展使得能够设计与任何已知蛋白质截然不同的蛋白质。此外,这些方法中的某些方法主要依赖于原子相互作用的物理描述,这使设计的序列不会偏向已知蛋白质。在本文中,我们将描述能量函数在蛋白质的计算设计中的应用,原子模型在未折叠和折叠状态下的自由能的评估,氨基酸序列的探索和优化,负设计问题以及氨基酸的使用。生物分子功能设计。我们还将考虑将其与实验技术(例如定向进化)一起使用。我们将在最后讨论计算蛋白设计及其未来应用中的挑战。

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