Particle-Based Microarrays of Oligonucleotides and Oligopeptides.

Alexander Nesterov-Mueller, Frieder Maerkle, Lothar Hahn, Tobias Foertsch, Sebastian Schillo, Valentina Bykovskaya, Martyna Sedlmayr, Laura K Weber, Barbara Ridder, Miriam Soehindrijo, Bastian Muenster, Jakob Striffler, F Ralf Bischoff, Frank Breitling, Felix F Loeffler
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引用次数: 0

Abstract

In this review, we describe different methods of microarray fabrication based on the use of micro-particles/-beads and point out future tendencies in the development of particle-based arrays. First, we consider oligonucleotide bead arrays, where each bead is a carrier of one specific sequence of oligonucleotides. This bead-based array approach, appearing in the late 1990s, enabled high-throughput oligonucleotide analysis and had a large impact on genome research. Furthermore, we consider particle-based peptide array fabrication using combinatorial chemistry. In this approach, particles can directly participate in both the synthesis and the transfer of synthesized combinatorial molecules to a substrate. Subsequently, we describe in more detail the synthesis of peptide arrays with amino acid polymer particles, which imbed the amino acids inside their polymer matrix. By heating these particles, the polymer matrix is transformed into a highly viscous gel, and thereby, imbedded monomers are allowed to participate in the coupling reaction. Finally, we focus on combinatorial laser fusing of particles for the synthesis of high-density peptide arrays. This method combines the advantages of particles and combinatorial lithographic approaches.

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基于颗粒的寡核苷酸和寡肽微阵列。
在这篇综述中,我们描述了基于微颗粒/微珠的不同微阵列制造方法,并指出了颗粒基阵列的未来发展趋势。首先,我们考虑寡核苷酸头阵列,其中每个头是一个特定序列的寡核苷酸载体。这种基于珠子的阵列方法出现在20世纪90年代末,使高通量寡核苷酸分析成为可能,对基因组研究产生了重大影响。此外,我们考虑颗粒为基础的肽阵列制造使用组合化学。在这种方法中,粒子可以直接参与合成和将合成的组合分子转移到底物。随后,我们更详细地描述了用氨基酸聚合物颗粒合成肽阵列的方法,该方法将氨基酸嵌入聚合物基质中。通过加热这些颗粒,聚合物基体转变为高粘性凝胶,从而允许嵌入的单体参与偶联反应。最后,我们重点研究了用于合成高密度肽阵列的粒子组合激光聚变。该方法结合了颗粒法和组合光刻法的优点。
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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来源期刊
自引率
0.00%
发文量
0
审稿时长
11 weeks
期刊介绍: High-Throughput (formerly Microarrays, ISSN 2076-3905) is a multidisciplinary peer-reviewed scientific journal that provides an advanced forum for the publication of studies reporting high-dimensional approaches and developments in Life Sciences, Chemistry and related fields. Our aim is to encourage scientists to publish their experimental and theoretical results based on high-throughput techniques as well as computational and statistical tools for data analysis and interpretation. The full experimental or methodological details must be provided so that the results can be reproduced. There is no restriction on the length of the papers. High-Throughput invites submissions covering several topics, including, but not limited to: Microarrays, DNA Sequencing, RNA Sequencing, Protein Identification and Quantification, Cell-based Approaches, Omics Technologies, Imaging, Bioinformatics, Computational Biology/Chemistry, Statistics, Integrative Omics, Drug Discovery and Development, Microfluidics, Lab-on-a-chip, Data Mining, Databases, Multiplex Assays.
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