Ultrasound-mediated delivery of novel tau-specific monoclonal antibody enhances brain uptake but not therapeutic efficacy.
Authors: Bajracharya R, Cruz E, Götz J, Nisbet RM
Tau-specific immunotherapy is an attractive strategy for the treatment of Alzheimer's disease and other tauopathies. However, effectively targeting tau in the brain remains a considerable challenge due to the restrictive nature of the blood-brain barrier (BBB), which excludes an estimated >99% of peripherally administered antibodies. However, their transport across the BBB can be facilitated by a novel modality, low-intensity scanning ultrasound used in combination with intravenously injected microbubbles (SUS<sup>+MB</sup>). We have previously shown that SUS<sup>+MB</sup>-mediated delivery of a tau-specific antibody in a single-chain (scFv) format to tau transgenic mice enhanced brain and neuronal uptake and subsequently, reduced tau pathology and improved behavioural outcomes to a larger extent than either scFv or SUS<sup>+MB</sup> on its own. Here we generated a novel tau-specific monoclonal antibody, RNF5, and validated it in its IgG format in the presence or absence of SUS<sup>+MB</sup> by treating K369I tau transgenic K3 mice once weekly for 12 weeks. We found that both RNF5 and SUS<sup>+MB</sup> treatments on their own significantly reduced tau pathology. In the combination group (RNF5 + SUS<sup>+MB</sup>), however, despite increased antibody localization in the brain, there were no further reductions in tau pathology when compared to RNF5 treatment alone. Furthermore, following SUS<sup>+MB</sup>, RNF5 accumulated heavily within cells across the pyramidal cell layer of the hippocampus, that were negative for MAP2 and p-tau, suggesting that SUS<sup>+MB</sup> may not facilitate enhanced RNF5 engagement of intraneuronal tau. Overall, our new findings reveal the complexities of combining tau immunotherapy with SUS<sup>+MB</sup> and challenge the view that this is a straight-forward approach.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To determine whether ultrasound-mediated delivery increases brain uptake and improves the therapeutic efficacy of a novel tau-specific monoclonal antibody.
Disease model
Alzheimer's disease (tauopathy)
Cargo name and characteristics
Novel tau-specific monoclonal antibody (protein therapeutic; monoclonal antibody targeting tau)
Outcomes and Safety
Summary of Outcomes
Ultrasound-mediated delivery of a novel tau-specific monoclonal antibody increased antibody brain uptake but did not improve therapeutic efficacy; specific focused ultrasound parameters were None.
Safety-related matter
No safety or adverse effects are mentioned in the provided text.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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