论文标题
蛋白质设计基于门的量子计算
Gate-based Quantum Computing for Protein Design
论文作者
论文摘要
蛋白质设计是一种通过修改其序列以获得新功能的技术来设计蛋白质的技术。在这种方法中,序列中的氨基酸被排列以找到满足构型的低能状态。但是,由于具有可设计位点的数量的指数增长,探索氨基酸的所有可能组合通常无法在常规计算机上实现。因此,采样方法目前被用作解决蛋白质设计问题的常规方法。最近,量子计算方法显示了解决相似类型问题的潜力。在目前的工作中,我们使用Grover算法(一种纯量子计算方法)的一般思想来设计基于门的级别的电路并解决蛋白质设计问题。在我们的量子算法中,我们使用由八个不同氨基酸组成的自定义配对能表。同样,在计算电路中的能量中,可设计位点之间的距离倒数也包括在内。由于当前量子计算机的嘈杂状态,我们主要使用量子计算机模拟器进行本研究。但是,我们的电路的非常简单的版本是在实际量子设备上实现的,以检查其运行这些算法的功能。我们的结果表明,使用$ \ Mathcal {O}(\ sqrt n)$迭代,这些电路在所有$ n $可能性之间找到了正确的结果,从而提供了格罗弗(Grover)算法对经典方法的预期二次速度。
Protein design is a technique to engineer proteins by modifying their sequence to obtain novel functionalities. In this method, amino acids in the sequence are permutated to find the low energy states satisfying the configuration. However, exploring all possible combinations of amino acids is generally impossible to achieve on conventional computers due to the exponential growth of possibilities with the number of designable sites. Thus, sampling methods are currently used as a conventional approach to address the protein design problems. Recently, quantum computation methods have shown the potential to solve similar types of problems. In the present work, we use the general idea of Grover's algorithm, a pure quantum computation method, to design circuits at the gate-based level and address the protein design problem. In our quantum algorithms, we use custom pair-wise energy tables consisting of eight different amino acids. Also, the distance reciprocals between designable sites are included in calculating energies in the circuits. Due to the noisy state of current quantum computers, we mainly use quantum computer simulators for this study. However, a very simple version of our circuits is implemented on real quantum devices to examine their capabilities to run these algorithms. Our results show that using $\mathcal{O}(\sqrt N)$ iterations, the circuits find the correct results among all $N$ possibilities, providing the expected quadratic speed up of Grover's algorithm over classical methods.