Research platform investigating how brain insulin receptor signaling regulates neuroinflammation in Alzheimer's disease. Preliminary data show that acute blockade of brain insulin receptors reduces blood-brain barrier permeability and peripheral inflammatory markers in response to inflammatory challenge, pointing to a novel therapeutic target.
Brain insulin resistance is a prominent feature of Alzheimer's disease, present in over 90% of affected individuals, yet its role in driving neuroinflammation has been poorly understood. This research program investigates brain insulin receptor signaling as a regulator of neuroinflammatory responses and a potential intervention point for Alzheimer's disease. Preliminary findings in healthy adult mice demonstrate that acute loss of brain insulin receptor signaling, achieved via intranasal delivery of the insulin receptor antagonist S961, alters inflammatory status and blood-brain barrier permeability in response to an inflammatory stimulus. The resulting data suggest that brain insulin resistance modulates the inflammatory cascade and may serve as a targetable mechanism for reducing neuroinflammation associated with Alzheimer's disease.
The research is currently at an early preclinical stage. Proof-of-concept data have been generated in healthy adult mice (n=10 per group) demonstrating that acute brain insulin receptor antagonism modulates inflammatory responses and blood-brain barrier permeability. The team is seeking collaborative partnerships to extend these findings by assessing neuroinflammatory markers directly in brain tissue and characterizing the metabolic phenotype, including extension into Alzheimer's disease mouse models. These follow-up studies are projected to be completable within one year and will help establish a new preclinical model for brain insulin resistance with relevance to Alzheimer's disease.
The University of Washington is a large public research university with campuses in Seattle, Bothell, and Tacoma, known for a broad portfolio from fundamental discovery to applied innovation. Industry partners engage through a South Lake Union research campus adjacent to a major life sciences district and through collaboration programs that place faculty and students alongside corporate R&D. The university’s integration with a major academic health system enables clinical translation and large-scale trials. Research is supported by competitive federal funding from NIH, NSF, DOE, and DoD. A dedicated technology transfer office manages IP, licensing, and startup incubation with prototyping resources.