Zinc Finger Nucleases

Zinc finger nucleases are engineered genome-editing proteins that recognize specific DNA sequences and create targeted double-strand breaks, making them important tools in genetics and functional genomics. Each nuclease combines a zinc finger DNA-binding domain, which can be designed to bind a chosen sequence, with the FokI cleavage domain; paired nucleases bind opposite DNA strands, allowing FokI dimerization and site-specific cutting. Cells repair these breaks through nonhomologous end joining, which can disrupt genes, or homology-directed repair, which can introduce defined sequence changes. Applications include gene-function studies, disease modeling, crop improvement, and development of therapeutic genome-editing strategies.

Zinc Finger Nucleases - Related Videos

Research

JoVE Journal - Biology
Free Sample

Genome Editing with CompoZr Custom Zinc Finger Nucleases (ZFNs)

0 Views •

Cited by 28 •

2012

The CompoZr Custom Zinc-Finger Nuclease (ZFN) Service enables precise genome editing in any organism or cell line at any locus defined by the user. This article describes the process for the design, manufacture, validation and implementation of the CompoZr Custom ZFN Service.

Research

JoVE Journal - Medicine
Free Sample

Production of Apolipoprotein C-III Knockout Rabbits using Zinc Finger Nucleases

0 Views •

Cited by 32 •

2013

Recent development in gene targeting tools makes production of knockout (KO) rabbits possible. In the present work, we generated five Apolipoprotein (Apo) C-III KO rabbits using Zinc Finger Nucleases (ZFN). This work demonstrated that ZFN is a highly efficient method to produce KO rabbits.

Research

JoVE EoE - Genome Editing Techniques

Zinc Finger Nuclease-Based Genome Editing: A Technique for Modifying Genome in Human Pluripotent Stem Cells by Double-Stranded Homology Dependant Repair Mechanism

0 Views •

2025

This video demonstrates a technique of zinc-finger nuclease-based genome editing in human pluripotent stem cells (hPSCs). As hPSCs can potentially be differentiated into various cell types, this technology is helpful for in vitro pathological and pharmacological studies in a patient-specific manner.

Zinc-finger Nuclease Enhanced Gene Targeting in Human Embryonic Stem Cells

0 Views •

Cited by 3 •

2014

Reporter cell lines offer a means to visualize, track and isolate cells of interest from heterogeneous populations. However, gene-targeting using conventional homologous recombination in human embryonic stem cells is extremely inefficient. Herein, we describe targeting CNS midbrain specific transcription factor PITX3 locus with EGFP using zinc-finger nuclease enhanced homologous recombination.

Direct Protein Delivery to Mammalian Cells Using Cell-permeable Cys2-His2 Zinc-finger Domains

0 Views •

Cited by 14 •

2015

Zinc-finger domains are intrinsically cell-permeable and capable of mediating protein delivery into a broad range of mammalian cell types. Here, a detailed step-by-step protocol for implementing zinc-finger technology for intracellular protein delivery is presented.

View All Results

FAQs

Related Topics