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Microarray

a small-scale two-dimensional array of samples on a solid support

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Record originEnglish Wikipedia
Text licenseCC BY-SA 4.0
Source revisionSep 15, 2026
Entity authorityQ1931516
Source-derived summary

A microarray is a multiplex lab-on-a-chip. Its purpose is to simultaneously detect the expression of thousands of biological interactions. It is a two-dimensional array on a solid substrate—usually a glass slide or silicon thin-film cell—that assays (tests) large amounts of biological material using high-throughput screening miniaturized, multiplexed and parallel processing and detection methods. The concept and methodology of microarrays was first introduced and illustrated in antibody microarrays (also referred to as antibody matrix) by Tse Wen Chang in 1983 in a scientific publication and a series of patents. The "gene chip" industry started to grow significantly after the 1995 Science Magazine article by the Ron Davis and Pat Brown labs at Stanford University. With the establishment of companies, such as Affymetrix, Agilent, Applied Microarrays, Arrayjet, Illumina, and others, the technology of DNA microarrays has become the most sophisticated and the most widely used, while the use of protein, peptide and carbohydrate microarrays is expanding.

Types of microarrays include:

DNA microarrays, such as cDNA microarrays, oligonucleotide microarrays, BAC microarrays and SNP microarrays

MMChips, for surveillance of microRNA populations

Protein microarrays

Peptide microarrays, for detailed analyses or optimization of protein–protein interactions

Tissue microarrays

Cellular microarrays (also called transfection microarrays)

Chemical compound microarrays

Antibody microarrays

Glycan arrays (carbohydrate arrays)

Phenotype microarrays

Reverse phase protein lysate microarrays, microarrays of lysates or serum

Interferometric reflectance imaging sensor (IRIS)

People in the field of CMOS biotechnology are developing new kinds of microarrays. Once fed magnetic nanoparticles, individual cells can be moved independently and simultaneously on a microarray of magnetic coils. A microarray of nuclear magnetic resonance microcoils is under development.

Fabrication and operation of microarrays

A large number of technologies underlie the microarray platform, including the material substrates, spotting of biomolecular arrays, and the microfluidic packaging of the arrays.

Editorial summary

Begin with the source’s own compact description: “Microarray” is a small-scale two-dimensional array of samples on a solid support. The dossier treats that line as a proposition to test through Microarray, small-scale and two-dimensional, not as a finished interpretation.

Editorial reviewA concise reference frame for defining the subject, testing terminology and identifying the institution closest to the evidence. The current lead gives the account dated anchors—1983, 1995—that can be checked directly. The selected authority fields contribute no independent date. For this dossier, Microarray, small-scale and two-dimensional is the immediate research focus.
Editorial analysis

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Evidence profile

Named sources, stable identifiers and responsible institutions provide the strongest route from overview to verifiable evidence. The source revision retrieved here is dated Sep 15, 2026. The linked authority identifier is Q1931516. The Library of Congress control number is sh99000707. 1 of 1 selected statements include explicit references; 1 carry qualifiers and 0 use preferred rank. The first chronological checks are 1983 and 1995.

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Source & attribution

This entry incorporates text from Microarray” on English Wikipedia. Contributors are listed in the page history. Text is available under the Creative Commons Attribution-ShareAlike 4.0 License. Selected authority identifiers and statements are retrieved from Wikidata under CC0; their references and qualifiers remain part of the verification path.