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自动化激光转移合成高密度微阵列用于传染病筛查。

Automated Laser-Transfer Synthesis of High-Density Microarrays for Infectious Disease Screening.

机构信息

Department of Biomolecular Systems, Max Planck Institute of Colloids and Interfaces, Am Muehlenberg 1, 14476, Potsdam, Germany.

Department of System Dynamics and Friction Physics, Institute of Mechanics, Technical University of Berlin, Str. des 17. Juni 135, 10623, Berlin, Germany.

出版信息

Adv Mater. 2022 Jun;34(23):e2200359. doi: 10.1002/adma.202200359. Epub 2022 Apr 28.

DOI:10.1002/adma.202200359
PMID:35429012
Abstract

Laser-induced forward transfer (LIFT) is a rapid laser-patterning technique for high-throughput combinatorial synthesis directly on glass slides. A lack of automation and precision limits LIFT applications to simple proof-of-concept syntheses of fewer than 100 compounds. Here, an automated synthesis instrument is reported that combines laser transfer and robotics for parallel synthesis in a microarray format with up to 10 000 individual reactions cm . An optimized pipeline for amide bond formation is the basis for preparing complex peptide microarrays with thousands of different sequences in high yield with high reproducibility. The resulting peptide arrays are of higher quality than commercial peptide arrays. More than 4800 15-residue peptides resembling the entire Ebola virus proteome on a microarray are synthesized to study the antibody response of an Ebola virus infection survivor. Known and unknown epitopes that serve now as a basis for Ebola diagnostic development are identified. The versatility and precision of the synthesizer is demonstrated by in situ synthesis of fluorescent molecules via Schiff base reaction and multi-step patterning of precisely definable amounts of fluorophores. This automated laser transfer synthesis approach opens new avenues for high-throughput chemical synthesis and biological screening.

摘要

激光诱导正向转移(LIFT)是一种快速的激光图案化技术,可直接在载玻片上进行高通量组合合成。由于缺乏自动化和精度,LIFT 的应用仅限于简单的概念验证合成,少于 100 种化合物。在这里,报告了一种自动化合成仪器,该仪器将激光转移和机器人技术结合在一起,以微阵列格式进行平行合成,每个反应的面积可达 10000 平方厘米。酰胺键形成的优化流水线是制备具有数千种不同序列的复杂肽微阵列的基础,具有高产率和高重复性。所得的肽阵列的质量高于商业肽阵列。在微阵列上合成了超过 4800 个类似于埃博拉病毒全蛋白的 15 个残基肽,以研究埃博拉病毒感染幸存者的抗体反应。鉴定出了现在可用作埃博拉病毒诊断开发基础的已知和未知表位。通过席夫碱反应原位合成荧光分子以及精确定义量的荧光团的多步图案化,证明了合成器的多功能性和精度。这种自动化的激光转移合成方法为高通量化学合成和生物筛选开辟了新途径。

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