Stable Gene Integration

Stable gene integration is the durable insertion of a DNA sequence into a cell’s genome, allowing the added gene to persist as cells divide and providing consistent expression for long-term studies. The process uses delivery systems such as integrating viral vectors or targeted recombination to place DNA within chromosomal material, where regulatory elements control its activity. In immunology and infection research, stable integration supports the generation of engineered immune cells, reporter cell lines, and host or pathogen models for analyzing gene function, cellular responses, and infection dynamics. These systems improve experimental reproducibility and enable sustained evaluation of immune signaling, pathogen interactions, and therapeutic strategies.

Stable Gene Integration - Related Videos

Research

JoVE EoE - Genome Editing Techniques

PiggyBac Transposon-Mediated Gene Editing in Human iPSCs: A Procedure to Integrate Gene of Interest in Human iPSCs Using PiggyBac Transposon System

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2025

This video demonstrates the procedure to generate motor neurons by transfection of human iPSCs with PiggyBac transposon system by the ectopic expression of lineage-specific transcription factors.

AAV-Mediated Gene Delivery for Visualization of Compromised Retinal Membrane Integrity

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2026

Source: Vacca, O., et al. Using Adeno-associated Virus as a Tool to Study Retinal Barriers in Disease. J. Vis. Exp. (2015).This video demonstrates the method of AAV-mediated gene delivery in a transgenic mouse retina, followed by tissue dissection and staining to assess inner limiting membrane integrity.

TALEN-Mediated Targeted Gene Integration: Using Engineered Sequence-Specific Nucleases for the Precise Insertion of Fluorescent Protein Gene into hiPSCs

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2025

This video describes a precise genome editing technique in human induced pluripotent stem cells, or hiPSCs, using TALENs to create double-stranded breaks at a targeted locus, inducing homology-directed repair for fluorescence protein gene integration.

Reliably Engineering and Controlling Stable Optogenetic Gene Circuits in Mammalian Cells

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Cited by 4 •

2021

Reliably controlling light-responsive mammalian cells requires the standardization of optogenetic methods. Toward this goal, this study outlines a pipeline of gene circuit construction, cell engineering, optogenetic equipment operation, and verification assays to standardize the study of light-induced gene expression using a negative-feedback optogenetic gene circuit as a case study.

Fluorescence-microscopy Screening and Next-generation Sequencing: Useful Tools for the Identification of Genes Involved in Organelle Integrity

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Cited by 4 •

2012

A fundamental quest in cell biology is to define the mechanisms that underlie the identity of the organelles that make eukaryotic cells. Here we propose a method to identify the genes responsible for the morphological and functional integrity of plant organelles using fluorescence microscopy and next-generation sequencing tools.

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