Multiplex Imaging Capacity

Multiplex imaging capacity is the ability of an imaging system to detect and distinguish multiple molecular, cellular, or structural targets within the same specimen, enabling researchers to study complex biological organization in context. It works by assigning targets distinct optical, chemical, or spatial signatures and capturing their signals simultaneously or sequentially, with image processing often used to separate overlapping information. In bioengineering, this capacity supports quantitative analysis of cell states, tissue architecture, biomaterial interactions, and disease-associated changes. By extracting more information from a single sample, multiplex imaging strengthens engineered tissue evaluation, diagnostics research, and systems-level studies of biological function.

Multiplex Imaging Capacity - Related Videos

Research

JoVE Journal - Immunology and Infection

Highly Multiplexed, Super-resolution Imaging of T Cells Using madSTORM

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Cited by 5 •

2017

We demonstrate a method to image multiple molecules within heterogeneous nano-structures at single molecule accuracy using sequential binding and elution of fluorescently labeled antibodies.

Education

JoVE Core - Biology

Lung Capacity

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2019

The air in the lungs is measured in volumes and capacities. Lung volume measures reflect the amount of air taken in, released, or left over after a lung function, like a single inhalation. Lung capacity measures are sums of two or more lung volume measures. There are four defined lung volume measures: tidal volume, inspiratory reserve volume, expiratory reserve volume, and residual volume. Tidal volume is the amount of air inhaled and exhaled in a normal breath. Inspiratory...

Time Multiplexing Super Resolving Technique for Imaging from a Moving Platform

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2014

A method for overcoming the optical diffraction limit is presented. The method includes a two-step process: optical phase retrieval using iterative Gerchberg-Saxton algorithm, and imaging system shifting followed by repetition of the first step. A synthetically increased lens aperture is generated along the direction of movement, yielding higher imaging resolution.

Multiplexed Fluorescence Imaging of Viral Nucleic Acids and Protein in Infected Human Lymphocytes

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2026

Source: Shah, R., et al. Single-Cell Multiplexed Fluorescence Imaging to Visualize Viral Nucleic Acids and Proteins and Monitor HIV, HTLV, HBV, HCV, Zika Virus, and Influenza Infection. J. Vis. Exp. (2020)This video demonstrates simultaneous visualization of HIV-1 DNA, RNA, and capsid protein in infected human lymphocytes using branched DNA hybridization and immunofluorescence, enabling detailed analysis of viral replication stages within individual cells.

Super-Resolution Imaging and Shared Management: A Protocol for Confocal Microscopy with Multiplex Detection

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2026

This protocol details the advanced imaging applications, and shared-resource management of a laser-scanning confocal microscope system integrated with a multiplexed array detector for high-resolution cellular and subcellular imaging. The workflow enables multimodal imaging from confocal to super-resolution (~120 nm) within a single platform, making nanoscale visualization more accessible.

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