Cells

Progress in Gene Therapy for Beta-Thalassemia Using CRISPR and New Delivery Methods

Updated

Abstract

Essence

-based strategies for β-thalassemia may correct HBB defects or reactivate fetal hemoglobin, but delivery remains the bottleneck.

Evidence

This review summarizes preclinical and clinical progress in CRISPR/Cas β-thalassemia therapies and viral, lipid nanoparticle, and engineered exosome delivery systems.

Caveat

Viral delivery raises immunogenicity and insertional mutagenesis concerns, while non-viral systems have lower toxicity but targeting limitations.

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What this is

  • This review examines recent advancements in -based gene therapy for β-thalassemia.
  • It discusses the molecular basis of the disorder, current treatment limitations, and innovative gene editing technologies.
  • The focus is on the effectiveness of systems and the challenges of delivering these therapies safely and efficiently.

Essence

  • -based gene editing offers promising therapeutic strategies for β-thalassemia by correcting mutations or reactivating fetal hemoglobin production. However, effective delivery methods remain a significant challenge.

Key takeaways

  • technologies enable precise genetic modifications to correct β-thalassemia mutations or enhance fetal hemoglobin production. These methods can potentially alleviate symptoms and improve patient outcomes.
  • Viral vectors such as lentiviruses and AAVs offer high efficiency for gene delivery but raise concerns about safety and immunogenicity. Non-viral systems like lipid nanoparticles and engineered exosomes present alternative strategies with distinct advantages.
  • Clinical trials have demonstrated the efficacy of therapies in achieving transfusion independence for patients with β-thalassemia, indicating a significant step towards curative treatments.

Caveats

  • Current applications primarily focus on ex vivo editing, which limits accessibility and scalability. In vivo editing could simplify treatment but presents its own set of challenges.
  • Off-target effects and variable editing efficiency in primary human cells are significant concerns that need to be addressed to ensure patient safety and treatment effectiveness.
  • Regulatory and manufacturing hurdles complicate the clinical implementation of therapies, necessitating standardized guidelines and scalable production processes.

Definitions

  • β-thalassemia: An inherited blood disorder caused by mutations in the β-globin gene, leading to reduced or absent β-globin production and chronic anemia.
  • CRISPR: A gene editing technology that allows for precise modifications of DNA sequences to correct genetic defects or regulate gene expression.

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Funding

Competing interests

0 of 2
authors report competing interests
2 report none
PubMed

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