Toward integration of in vivo molecular computing devices: successes and challenges.

Hfsp Journal Pub Date : 2008-10-01 Epub Date: 2008-08-13 DOI:10.2976/1.2968443
Sikander Hayat, Thomas Hinze
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引用次数: 5

Abstract

The computing power unleashed by biomolecule based massively parallel computational units has been the focus of many interdisciplinary studies that couple state of the art ideas from mathematical logic, theoretical computer science, bioengineering, and nanotechnology to fulfill some computational task. The output can influence, for instance, release of a drug at a specific target, gene expression, cell population, or be a purely mathematical entity. Analysis of the results of several studies has led to the emergence of a general set of rules concerning the implementation and optimization of in vivo computational units. Taking two recent studies on in vivo computing as examples, we discuss the impact of mathematical modeling and simulation in the field of synthetic biology and on in vivo computing. The impact of the emergence of gene regulatory networks and the potential of proteins acting as "circuit wires" on the problem of interconnecting molecular computing device subunits is also highlighted.

迈向体内分子计算装置的整合:成功与挑战。
基于生物分子的大规模并行计算单元所释放的计算能力已经成为许多跨学科研究的焦点,这些研究结合了数学逻辑、理论计算机科学、生物工程和纳米技术的最新思想来完成一些计算任务。输出可以影响药物在特定靶点的释放、基因表达、细胞群,或者是一个纯粹的数学实体。对几项研究结果的分析导致了一套关于体内计算单元的实施和优化的通用规则的出现。本文以最近两项关于体内计算的研究为例,讨论了数学建模和仿真在合成生物学领域以及对体内计算的影响。基因调控网络的出现和蛋白质作为“电路线”的潜力对分子计算设备亚单位互连问题的影响也得到了强调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Hfsp Journal
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