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CRISPR Gene Editing in Neurodegeneration

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technology2558 wordssynced 2026-04-02

Introduction

Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) and CRISPR-associated nucleases (such as Cas9) represent one of the most transformative technologies in modern biomedical research. As programmable genome-editing systems, they hold major translational potential for neurodegenerative diseases. CRISPR approaches are being explored to model disease biology, silence toxic gain-of-function alleles, and correct pathogenic variants in genes implicated in [Alzheimer's Disease](/diseases/alzheimers-disease), [Parkinson's Disease](/diseases/parkinsons-disease), [amyotrophic lateral sclerosis](/diseases/amyotrophic-lateral-sclerosis), and [Huntington's Disease](/diseases/huntingtons)[@doudna2014].

The development of CRISPR-Cas9 technology has revolutionized genetic engineering by providing a simple, efficient, and versatile method for editing genomes. Unlike previous gene-editing approaches that required custom-engineered nucleases for each target, CRISPR uses a short guide RNA to direct the Cas9 enzyme to any genomic sequence with a protospacer adjacent motif (PAM). This simplicity has accelerated the application of gene editing to previously intractable biological questions and therapeutic targets[@jinek2012].

Overview


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