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支撑微阵列和下一代测序实验的物理化学基础。

Physico-chemical foundations underpinning microarray and next-generation sequencing experiments.

机构信息

University of Essex-Mathematical Sciences, Colchester CO4 3SQ, Essex, United Kingdom.

出版信息

Nucleic Acids Res. 2013 Mar 1;41(5):2779-96. doi: 10.1093/nar/gks1358. Epub 2013 Jan 9.

Abstract

Hybridization of nucleic acids on solid surfaces is a key process involved in high-throughput technologies such as microarrays and, in some cases, next-generation sequencing (NGS). A physical understanding of the hybridization process helps to determine the accuracy of these technologies. The goal of a widespread research program is to develop reliable transformations between the raw signals reported by the technologies and individual molecular concentrations from an ensemble of nucleic acids. This research has inputs from many areas, from bioinformatics and biostatistics, to theoretical and experimental biochemistry and biophysics, to computer simulations. A group of leading researchers met in Ploen Germany in 2011 to discuss present knowledge and limitations of our physico-chemical understanding of high-throughput nucleic acid technologies. This meeting inspired us to write this summary, which provides an overview of the state-of-the-art approaches based on physico-chemical foundation to modeling of the nucleic acids hybridization process on solid surfaces. In addition, practical application of current knowledge is emphasized.

摘要

核酸在固体表面的杂交是高通量技术(如微阵列)中的一个关键过程,在某些情况下,还涉及下一代测序(NGS)。对杂交过程的物理理解有助于确定这些技术的准确性。一个广泛的研究计划的目标是在技术报告的原始信号和来自核酸集合的单个分子浓度之间建立可靠的转换。这项研究涉及许多领域,从生物信息学和生物统计学,到理论和实验生物化学和生物物理学,再到计算机模拟。一组领先的研究人员于 2011 年在德国普伦开会,讨论我们对高通量核酸技术的物理化学理解的现有知识和局限性。这次会议启发我们撰写了这份总结,该总结概述了基于物理化学基础的最先进方法,用于模拟固体表面上的核酸杂交过程。此外,还强调了当前知识的实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b44/3597649/13d753cb8f41/gks1358f1p.jpg

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