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Osmond, M. J.

Publications and source records attributed to Osmond, M. J..

3 recordsLinked to original sources

Harnessing micrometer-scale tPA beads for high plasmin flux and accelerated fibrinolysis

Rapid restoration of blood flow is critical in treating acute ischemic stroke. Current fibrinolytic therapies using tissue plasminogen activator (tPA) are limited by low recanalization rates and risks of off-target bleeding. Here, we present a strategy using tPA immobilized on micrometer-scale beads to enhance local plasmin generation. We synthesized tPA-functionalized beads of varying sizes (0.1 m and 1.0 m) and evaluated their efficacy. In vitro assays demonstrated that 1.0 m tPA-beads generated higher plasmin generation compared to free tPA and 0.1 m beads, overcoming antiplasmin inhibition and promoting a self-propagating wave of fibrinolysis. In a murine model of acute ischemic stroke, intravenous administration of 1.0 m tPA-beads at doses nearly two orders of magnitude lower than the standard free tPA dose led to rapid and near-complete thrombus removal within minutes. This approach addresses kinetic and transport limitations of current therapies and may reduce the risk of hemorrhagic complications. TeaserMicrometer-scale tPA beads improve stroke treatment by enhancing local clot-dissolving action.

bioengineering↗

Magnetically Powered Microwheel Thrombolysis of Occlusive Thrombi in Zebrafish

Tissue plasminogen activator (tPA) is the only FDA approved treatment for ischemic stroke but carries significant risks, including major hemorrhage. Additional options are needed, especially in small vessel thrombi which account for [~]25% of ischemic strokes. We have previously shown that tPA-functionalized colloidal microparticles can be assembled into microwheels ({micro}wheels) and manipulated under the control of applied magnetic fields to enable rapid thrombolysis of fibrin gels in microfluidic models of thrombosis. Providing a living microfluidic analog, transparent zebrafish larvae have a highly conserved coagulation cascade that enables studies of hemostasis and thrombosis in the context of intact vasculature, clotting factors, and blood cells. Here we show that tPA-functionalized {micro}wheels can perform rapid and targeted recanalization in vivo. This effect requires both tPA and {micro}wheels, as minimal to no recanalization is achieved with tPA alone, {micro}wheels alone, or tPA-functionalized microparticles in the absence of a magnetic field. We evaluated tPA-{micro}wheels in CRISPR-generated plasminogen (plg) heterozygous and homozygous mutants and confirmed that tPA-{micro}wheels are dose-dependent on plasminogen for lysis. We have found that magnetically powered {micro}wheels as a targeted tPA delivery system are dramatically more efficient at plasmin-mediated thrombolysis than systemic delivery in vivo. Further development of this system in fish and mammalian models could enable a less invasive strategy for alleviating ischemia that is safer than directed thrombectomy or systemic infusion of tPA.

bioengineering↗

Magnetically powered chitosan milliwheels for rapid translation, barrier function rescue, and delivery of therapeutic proteins to the inflamed gut epithelium

Inflammatory bowel disease (IBD) is mediated by an overexpression of tumor necrosis factor- (TNF) by mononuclear cells in the intestinal mucosa. Intravenous delivery of neutralizing anti-TNF antibodies can cause systemic immunosuppression and up to one-third of people are non-responsive to treatment. Oral delivery of anti-TNF could reduce adverse effects; however, it is hampered by antibody degradation in the harsh gut environment during transit and poor bioavailability. To overcome these shortcomings, we demonstrate magnetically powered hydrogel particles that roll along mucosal surfaces, provide protection from degradation, and sustain local release of anti-TNF. Iron oxide nanoparticles are embedded into a crosslinked chitosan hydrogel and sieved to produce 100-200 m particles called milliwheels (m-wheels). Once loaded with anti-TNF, these m-wheels release 10% to 80% of their payload over one week at a rate that depends on crosslinking density and pH. A rotating magnetic field induces a torque on the m-wheels that results in rolling velocities greater than 500 m/s on glass and mucus-secreting cells. The permeability of TNF challenged gut epithelial cell monolayers was rescued in the presence of anti-TNF carrying m-wheels which both neutralized the TNF and created an impermeable patch over leaky cell junctions. With the ability to translate over mucosal surfaces at high speed, provide sustained release directly to the inflamed epithelium, and provide barrier rescue, m-wheels demonstrate a potential strategy to deliver therapeutic proteins for the treatment of IBD.

bioengineering↗