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Optimization of Focused Ultrasound-Mediated Blood–Brain Barrier Opening for CNS Therapeutic Delivery: Mechanistic Insights, Technical Parameters, and Clinical Translation

Aug 2026 · Journal of Molecular Pathology · Vol 7, pp. 29 · 0 citations · 88 references

TL;DR

BBB microdisruption, particularly through FUS with microbubbles, represents a transformative platform for central nervous system gene therapy, and continued research is needed to standardize treatment protocols, characterize long-term safety, and facilitate broader clinical translation.

Abstract

Background/Objectives: The blood–brain barrier (BBB) remains a major obstacle to effective gene therapy for neurological disorders by limiting delivery of viral vectors, nanoparticles, and biologics to the central nervous system. Multiple strategies have been developed to transiently disrupt or bypass the BBB, including focused ultrasound (FUS) with microbubbles, osmotic agents, biochemical modulators, and receptor-mediated transport systems. Among these approaches, FUS-mediated BBB opening has emerged as the most spatially precise and clinically advanced strategy. Methods: This narrative review synthesizes recent preclinical and clinical literature on BBB microdisruption technologies for central nervous system gene therapy, with primary emphasis on FUS combined with microbubbles. We review BBB physiology, gene delivery platforms, the development of FUS technologies, optimization parameters, and translational evidence across neurological diseases from animal models through early-phase human studies. Results: FUS-mediated BBB opening has emerged as the leading method for transient barrier modulation. Preclinical studies in Parkinson’s disease, Alzheimer’s disease, Huntington’s disease, glioblastoma, amyotrophic lateral sclerosis, and lysosomal storage disorders demonstrate enhanced gene delivery, increased transgene expression, and improved functional outcomes. Large-animal studies and early clinical trials indicate that BBB opening is reversible, spatially controlled, and generally well tolerated. Clinical investigations have demonstrated successful delivery of therapeutic agents across neurological indications, with preliminary efficacy signals including improved drug penetration, metabolic changes, and potential survival benefits. Optimization of acoustic parameters, microbubble characteristics, and real-time cavitation monitoring remains critical for maximizing safety and therapeutic efficacy. Conclusions: BBB microdisruption, particularly through FUS with microbubbles, represents a transformative platform for central nervous system gene therapy. Continued research is needed to standardize treatment protocols, characterize long-term safety, and facilitate broader clinical translation.

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