Genetically Encoded Sensor

A genetically encoded sensor is a biological measurement tool whose DNA sequence directs cells to produce proteins that detect and report specific molecules, ions, or cellular conditions. Typically, a sensing domain binds its target and triggers a conformational change, altering fluorescence, enzyme activity, or gene expression in a measurable way. In bioengineering, these sensors enable real-time monitoring of signaling pathways, metabolism, pH, calcium, and other dynamic processes within living cells. Because they can be targeted to specific compartments and expressed over time, genetically encoded sensors support quantitative cell biology, biosynthetic pathway optimization, disease modeling, and the development of responsive therapeutic systems.

Genetically Encoded Sensor - Related Videos

Research

JoVE Journal - Bioengineering

Glutamine Flux Imaging Using Genetically Encoded Sensors

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Cited by 7 •

2014

This article will demonstrate how to monitor glutamine dynamics in live cells using FRET. Genetically encoded sensors allow real-time monitoring of biological molecules at a subcellular resolution. Experimental design, technical details of the experimental settings, and considerations for post-experimental analyses will be discussed for genetically encoded glutamine sensors.

Imaging Membrane Potential with Two Types of Genetically Encoded Fluorescent Voltage Sensors

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Cited by 5 •

2016

A method for imaging changes in membrane potential using genetically encoded voltage indicators is described.

Research

JoVE Journal - Biology
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Monitoring Dynamic Changes In Mitochondrial Calcium Levels During Apoptosis Using A Genetically Encoded Calcium Sensor

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Cited by 10 •

2011

This protocol describes a method for real-time measurement of mitochondrial calcium fluxes by fluorescent imaging. The method takes advantage of a circularly permutated YFP-based dual-excitation ratiometric calcium sensor (ratiometric pericam-mt) selectively expressed in mitochondria.

Real Time Monitoring of Intracellular Bile Acid Dynamics Using a Genetically Encoded FRET-based Bile Acid Sensor

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Cited by 8 •

2016

We provide a detailed protocol to study bile acid dynamics in living cells using a genetically encoded BAS FRET sensor. This Bile Acid Sensor represents a unique tool to study (regulation of) bile acid transport and FXR activation in a wide range of cell types.

Imaging Approaches to Assessments of Toxicological Oxidative Stress Using Genetically-encoded Fluorogenic Sensors

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Cited by 1 •

2018

This manuscript describes the use of genetically-encoded fluorogenic reporters in an application of live-cell imaging for the examination of xenobiotic-induced oxidative stress. This experimental approach offers unparalleled spatiotemporal resolution, sensitivity, and specificity while avoiding many of the shortcomings of conventional methods used for the detection of toxicological oxidative stress.

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