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Biology subjects

Courtman, D. W.

Publications and source records attributed to Courtman, D. W..

2 recordsLinked to original sources

Single-cell microencapsulation improves lung retention of endothelial colony forming cells after intravascular delivery and unmasks therapeutic benefit in severe pulmonary arterial hypertension

BackgroundPulmonary arterial hypertension (PAH) is triggered by pulmonary vascular endothelial cell apoptosis and microvascular loss; therefore, therapies that can regenerate lost vasculature may offer therapeutic benefit. Endothelial colony forming cells (ECFCs) can directly repair damaged blood vessels and may have therapeutic potential for the treatment of PAH. However, poor retention of ECFCs in the lungs following intravenous delivery greatly limits their therapeutic application. Therefore, we studied whether cellular microencapsulation could enhance ECFCs viability and retention in the lung after systemic delivery and improve therapeutic efficacy of ECFCs in a rat monocrotaline (MCT) PAH model. MethodsECFCs were encapsulated by vortex-emulsion using various concentrations of agarose, and capsule size and initial cell viability were assessed. Encapsulated and free ECFCs were transduced with luciferase and administered to Sprague-Dawley rats three days after injection of MCT. ECFCs were tracked in vivo by bioluminescence imaging (BLI) to assess cell persistence and bio-distribution. At end-study, right ventricular systolic pressure (RVSP) and right ventricular hypertrophy were assessed for therapeutic efficacy. ResultsMicrogel encapsulation using 3.5% agarose improved cells survival and supported cell migration from capsules. At 15 minutes after delivery, BLI radiance were similar for free and microencapsulated ECFCs; however, only encapsulated cells could be detected by BLI at 4 and 24 hours. Transplantation of microencapsulated ECFCs led to significant improvement in RVSP three weeks after delivery compared to non-encapsulated ECFCs. ConclusionTogether, microencapsulation increased retention of ECFCs within the lungs. Furthermore, even a modest increase in ECFCs persistence over 24 hours can provide an important therapeutic benefit in the rat MCT model of PAH.

bioengineering↗

Targeting extracellular vesicle delivery to the lungs by microgel encapsulation

Extracellular vesicles (EVs) secreted by stem and progenitor cells have significant potential as cell-free cellular therapeutics. Yet, small EVs (<200 nm) are rapidly cleared after systemic administration, mainly by the liver, presenting challenges targeting EVs to a specific organ or tissue. Microencapsulation using natural nano-porous hydrogels (microgels) has been shown to enhance engraftment and increase the survival of transplanted cells. We sought to encapsulate EVs within microgels to target their delivery to the lung by virtue of their size-based retention within the pulmonary microcirculation. Mesenchymal stromal cell (MSC) derived EVs were labelled with the lipophilic dye (DiR) and encapsulated within agarose-gelatin microgels. Endothelial cells and bone marrow derived macrophages were able to take up EVs encapsulated in microgels in vitro, but less efficiently than the uptake of free EVs. Following intrajugular administration, microgel encapsulated EVs were selectively retained within the lungs for 72 hours, while free EVs were rapidly cleared by the liver. Furthermore, microgel loaded EVs demonstrated greater uptake by lung cells, in particular CD45+ immune cells, as assessed by flow cytometry compared to free EVs. Microencapsulation of EVs may be a novel tool for enhancing targeted delivery of EVs for future therapeutic applications.

bioengineering↗