Zinc finger nucleases (ZFNs) are engineered restriction enzymes designed to target specific DNA sequences within the genome. Assembly of zinc finger DNA-binding domain to a DNA-cleavage domain enables the enzyme machinery to target unique locus in the genome and invoke endogenous DNA repair mechanisms. This machinery offers a versatile approach in allele editing and gene therapy. Here we discuss the architecture of ZFNs and strategies for generating targeted modifications within the genome. We review advances in gene therapy and modelling of the disease using these enzymes and finally, discuss the practical obstacles in using this technology
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
CONSPECTUS: The understanding of gene regulation and the structure and function of the human genome ...
Efficient methods for creating targeted genetic modifications have long been sought for the investig...
Genetic engineering has emerged as a powerful mechanism for understanding biological systems and a p...
Zinc-finger nucleases (ZFNs) are versatile reagents that have redefined genome engineering. Realizin...
The rational engineering of eukaryotic genomes would facilitate the study of heritable changes in ge...
Most genome disorders cause severe symptoms and are usually incurable. Recent, rapid development of ...
C2H2-zinc fingers (ZFs) are commonly found in transcription factors that code for nearly 3% of gene ...
AbstractGenome engineering with programmable nucleases depends on cellular responses to a targeted d...
Broad applications of zinc finger nuclease (ZFN) technology-which allows targeted genome editing-in ...
Recent studies have shown that zinc finger nucleases (ZFNs) are powerful reagents for making site-sp...
Artificial zinc finger proteins (ZFPs) consist of Cys<sub>2</sub>-His<sub>2</sub>-type modules compo...
With the development of next-generation sequencing technology, ever-expanding databases of genetic i...
Abstract The ability to create DNA double-strand breaks (DSBs) at specified genomic locations, which...
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
CONSPECTUS: The understanding of gene regulation and the structure and function of the human genome ...
Efficient methods for creating targeted genetic modifications have long been sought for the investig...
Genetic engineering has emerged as a powerful mechanism for understanding biological systems and a p...
Zinc-finger nucleases (ZFNs) are versatile reagents that have redefined genome engineering. Realizin...
The rational engineering of eukaryotic genomes would facilitate the study of heritable changes in ge...
Most genome disorders cause severe symptoms and are usually incurable. Recent, rapid development of ...
C2H2-zinc fingers (ZFs) are commonly found in transcription factors that code for nearly 3% of gene ...
AbstractGenome engineering with programmable nucleases depends on cellular responses to a targeted d...
Broad applications of zinc finger nuclease (ZFN) technology-which allows targeted genome editing-in ...
Recent studies have shown that zinc finger nucleases (ZFNs) are powerful reagents for making site-sp...
Artificial zinc finger proteins (ZFPs) consist of Cys<sub>2</sub>-His<sub>2</sub>-type modules compo...
With the development of next-generation sequencing technology, ever-expanding databases of genetic i...
Abstract The ability to create DNA double-strand breaks (DSBs) at specified genomic locations, which...
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
Zinc finger nuclease (ZFN) is a useful tool for endogenous site-directed genome modification. The de...
CONSPECTUS: The understanding of gene regulation and the structure and function of the human genome ...