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非接触式激光显微切割与压力弹射:用于基因组、转录组和蛋白质组分析的样本制备

Noncontact laser microdissection and pressure catapulting: sample preparation for genomic, transcriptomic, and proteomic analysis.

作者信息

Niyaz Yilmaz, Stich Monika, Sägmüller Bernd, Burgemeister Renate, Friedemann Gabriele, Sauer Ulrich, Gangnus Rainer, Schütze Karin

机构信息

P.A.L.M. Microlaser Technologies AG, Bernried, Germany.

出版信息

Methods Mol Med. 2005;114:1-24. doi: 10.1385/1-59259-923-0:1.

Abstract

The understanding of the molecular mechanisms of cellular metabolism and proliferation necessitates accurate identification, isolation, and finally characterization of a specific cell or a population of cells and subsequently their subsets of biomolecules. For the simultaneous analysis of thousands of molecular parameters within a single experiment, as realized by DNA, RNA, and protein microarray technologies, a defined number of homogeneous cells derived from a distinct morphological origin is required. Sample preparation is therefore a very crucial step for high-resolution downstream applications. Laser microdissection and laser pressure catapulting (LMPC) enables such pure and homogeneous sample preparation, resulting in an eminent increase in the specificity of molecular analyses. For microdissection, the force of focused laser light is used to excise selected cells or large tissue areas from object slides or from living cell culture down to a resolution of individual single cells and subcellular components like organelles or chromosomes, respectively. After microdissection this sample is directly catapulted into an appropriate collection device. As the entire process works without any mechanical contact, it enables pure sample retrieval from morphologically defined origin without cross contamination. Wherever homogenous samples are required for subsequent analysis of, e.g., cell areas, single cells, or chromosomes, the PALM MicroBeam system is an indispensable tool. The integration of image analysis platforms fully automates screening, identification, and finally subsequent high-throughput sample handling. These samples can be directly linked into versatile downstream applications, such as single-cell mRNA-extraction, different PCR methods, microarray techniques, and many others. Acceleration in sample generation vastly increases the throughput in molecular laboratories and leads to an increasing knowledge about differentially regulated mRNAs and expressed proteins, providing new insights into cellular mechanisms and therefore enabling the development of systems for tumor biomarker identification, early detection of disease-causing alterations, therapeutic targeting and/or patient-tailored therapy.

摘要

要理解细胞代谢和增殖的分子机制,就必须准确识别、分离并最终鉴定特定的细胞或细胞群体,随后还要鉴定其生物分子亚群。DNA、RNA和蛋白质微阵列技术能够在单个实验中同时分析数千个分子参数,这就需要一定数量来自不同形态学来源的同质细胞。因此,样品制备对于高分辨率的下游应用来说是非常关键的一步。激光显微切割和激光压力弹射(LMPC)能够实现如此纯净且同质的样品制备,从而显著提高分子分析的特异性。对于显微切割,聚焦激光束的力量被用于从载玻片或活细胞培养物中切除选定的细胞或大的组织区域,分别达到单个细胞以及细胞器或染色体等亚细胞成分的分辨率。显微切割后,该样品会被直接弹射到合适的收集装置中。由于整个过程无需任何机械接触,所以能够从形态学明确的来源获取纯净样品而不会产生交叉污染。无论何时需要同质样品用于后续分析,例如细胞区域、单个细胞或染色体,PALM微束系统都是不可或缺的工具。图像分析平台的整合使筛选、识别以及最终的后续高通量样品处理完全自动化。这些样品可以直接与多种下游应用相连接,如单细胞mRNA提取、不同的PCR方法、微阵列技术等等。样品制备速度的加快极大地提高了分子实验室的通量,并带来了关于差异调节的mRNA和表达蛋白的更多知识,为细胞机制提供了新的见解,从而能够开发用于肿瘤生物标志物识别、致病改变的早期检测、治疗靶点和/或患者个体化治疗的系统。

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