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Updated: Aug 14, 2026

Production of Tissue Microarrays, Immunohistochemistry Staining and Digitalization Within the Human Protein Atlas
Published on: May 31, 2012
Tissue microarrays for miniaturized high-throughput molecular profiling of tumors
1Institute of Pathology, University of Basel, Schoenbeinstrasse 40, CH-4031 Basel, Switzerland.
Abstract:
New high-throughput screening technologies such as complementary (cDNA) microarrays allow identification of hundreds of candidate genes in one experiment. To prioritize the leads obtained in such studies, it is necessary to analyze a large number of tissues for candidate gene expression. Tissue microarray (TMA) technology greatly facilitates such analyses. In this method, hundreds of minute tissue samples (0.6-mm diameter) can be placed on one microscope glass slide. The TMA approach allows simultaneous analysis of all tissues with in situ methods (immunohistochemistry, fluorescence in situ hybridization, RNA in situ hybridization) of all tumors in one experiment under highly standardized conditions. TMAs are not restricted to solid tumors but can be manufactured from a variety of other sources, including cell lines, xenografts, and hematologic tissues. In addition to tumor type-specific applications that comprise large numbers of one particular tumor type with extensive histopathologic and clinical data, TMAs are well suited for large-scale molecular epidemiologic studies. For example, genes of interest can be analyzed in multitissue TMAs containing a variety of different human normal tissues and tumor entities. Once tumor types are identified, where a given molecular alteration plays a role, the clinical significance of this molecular alteration can be investigated on tumor-specific TMAs. Thus, TMA technology allows miniaturized high-throughput molecular epidemiologic studies. The TMA technique will markedly accelerate the transition from basic research to clinical applications.
Insights
Tissue microarray (TMA) technology enables high-throughput analysis of gene expression across numerous tissues simultaneously. This accelerates the identification and validation of candidate genes for clinical applications.
Area of Science:
- Molecular Biology
- Genomics
- Biotechnology
Background:
- High-throughput screening identifies numerous candidate genes.
- Analyzing gene expression in many tissues is crucial for prioritizing these candidates.
- Existing methods are often time-consuming and less efficient.
Purpose of the Study:
- To introduce and highlight the utility of tissue microarray (TMA) technology.
- To demonstrate how TMA facilitates large-scale gene expression analysis.
- To emphasize TMA's role in accelerating research to clinical applications.
Main Methods:
- Tissue microarray (TMA) technology involves placing hundreds of minute tissue samples on a single slide.
- Enables simultaneous analysis of all tissues using in situ methods (e.g., immunohistochemistry, FISH, RNA ISH).
- Applicable to solid tumors, cell lines, xenografts, and hematologic tissues.
Main Results:
- TMAs allow standardized, simultaneous molecular analysis of numerous samples in one experiment.
- Facilitates molecular epidemiologic studies by analyzing genes across diverse human tissues and tumor types.
- Enables investigation of molecular alterations' clinical significance on tumor-specific TMAs.
Conclusions:
- TMA technology offers a miniaturized, high-throughput approach for molecular epidemiologic studies.
- Streamlines the process of identifying and validating candidate genes.
- Significantly accelerates the translation of basic research findings into clinical practice.

