Multiplex Array Printing

Multiplex array printing is a biochemistry technique that deposits many distinct biological probes or reagents in defined, spatially addressable patterns on a single substrate, enabling parallel analysis of molecular interactions. During printing, an automated system places separate samples as discrete spots, while their position and composition are recorded to preserve each assay’s identity and support simultaneous detection. The resulting arrays can contain proteins, peptides, antibodies, nucleic acids, or other capture molecules for binding studies, biomarker analysis, and high-throughput screening. By consolidating numerous assays on one surface, multiplex array printing reduces sample and reagent use while increasing experimental scale and comparative power.

Multiplex Array Printing - Related Videos

Research

JoVE Journal - Biology
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Design and Use of Multiplexed Chemostat Arrays

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Cited by 108 •

2013

We developed and validated a small-footprint array of miniature chemostats built from readily available parts for low cost. Physiological and experimental evolution results were similar to larger volume chemostats. The ministat array provides a compact, inexpensive, and accessible platform for traditional chemostat experiments, functional genomics, and chemical screening applications.

Research

JoVE EoE - Antibody-Based Technologies

Detecting Circulating Anti-Glycan Antibodies with a Printed Glycan Array

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2025

This video demonstrates printed glycan array technology for analyzing circulating anti-glycan antibodies in mouse serum. The antibodies in the serum interact with specific glycans on the chip, which is confirmed by immunostaining followed by fluorescence scanning.

Fabrication of a Multiplexed Artificial Cellular MicroEnvironment Array

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Cited by 1 •

2018

This article describes the detailed methodology to prepare a Multiplexed Artificial Cellular MicroEnvironment (MACME) array for high-throughput manipulation of physical and chemical cues mimicking in vivo cellular microenvironments and to identify the optimal cellular environment for human pluripotent stem cells (hPSCs) with single-cell profiling.

Planar and Three-Dimensional Printing of Conductive Inks

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Cited by 58 •

2011

Planar and three-dimensional printing of conductive metallic inks is described. Our approach provides new avenues for fabricating printed electronic, optoelectronic, and biomedical devices in unusual layouts at the microscale.

A 3-dimensional (3D)-printed Template for High Throughput Zebrafish Embryo Arraying

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Cited by 5 •

2018

Here, we present a protocol to design and fabricate a zebrafish embryo arraying template, followed by a detailed procedure on the use of such template for high throughput zebrafish embryo arraying into a 96-well plate.

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