Genetic Marker Detection

Genetic marker detection is the identification of specific DNA sequences or genetic variants that distinguish cells, organisms, or biological states, providing a foundation for studying heredity and engineered systems. It typically uses sequence-specific methods such as polymerase chain reaction, nucleic acid hybridization, or DNA sequencing to amplify, bind, or read target regions and compare them with reference sequences. In bioengineering, these markers help verify engineered constructs, track cells or traits, monitor genetic stability, and identify biomolecules linked to disease or production performance. Reliable detection supports quality control, strain development, diagnostics, and the evaluation of genetic modifications in research and biotechnology applications.

Genetic Marker Detection - Related Videos

Research

JoVE EoE - PCR Techniques

Duplex Digital PCR for Simultaneous Quantification of Dual Genetic Markers

0 Views •

2025

In this video, we demonstrate the duplex digital PCR (ddPCR) technique — a modification of the traditional PCR technique that is useful in detecting two different genetic markers simultaneously. A single PCR reaction is partitioned into nanoliter-sized emulsified droplets that are independently amplified, and the detection of differently colored fluorescence amplification signals from the fraction of droplets is used to compute the initial concentration of the target sequences.

Detection of Target Enzyme Expression in Genetically Modified Bacterial Cells

0 Views •

2025

Source: Kim, H. et. al., Multi-enzyme Screening Using a High-throughput Genetic Enzyme Screening System. J. Vis. Exp. (2016)This video demonstrates a genetic screening method to detect enzyme expression using metagenomic fosmid libraries and chromogenic substrates. Flow cytometry identifies and isolates single cells producing colored products, enabling high-throughput selection of active enzyme-expressing cells.

Education

JoVE Science Education - Environmental Sciences

Testing For Genetically Modified Foods

0 Views •

2023

Source: Laboratories of Margaret Workman and Kimberly Frye - Depaul University Genetic modification of foods has been a controversial issue due to debated concerns over health and environmental safety. This experiment demonstrates technical understanding of how food DNA is genetically identified, allowing for educated decision making about the safety and potential dangers of using genetically modified organisms (GMOs) in food supplies. Polymerase Chain Reaction (PCR) is used to amplify food DNA...

Whole Genome Sequencing of Candida glabrata for Detection of Markers of Antifungal Drug Resistance

0 Views •

Cited by 22 •

2017

This study implemented whole genome sequencing for analysis of mutations in genes conferring antifungal drug resistance in Candida glabrata. C. glabrata isolates resistant to echinocandins, azoles and 5-flucytosine, were sequenced to illustrate the methodology. Susceptibility profiles of the isolates correlated with presence or absence of specific mutation patterns in genes.

Genetic Screens

0 Views •

2023

Genetic screens are critical tools for defining gene function and understanding gene interactions. Screens typically involve mutating genes and then assessing the affected organisms for phenotypes of interest. The process can be “forward”, where mutations are generated randomly to identify unknown genes responsible for the phenotypes, or it can be “reverse”, where specific genes are targeted for mutation to observe what phenotypes are produced.Here, JoVE reviews various types of genetic...

View All Results

FAQs

Related Topics