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Suon, J. S.

Publications and source records attributed to Suon, J. S..

3 recordsLinked to original sources

Gelatin coating enhances flow diverting stent endothelial cell coverage, parent vessel healing and aneurysm occlusion

BackgroundFlow diversion stent treatment of cerebral aneurysms has demonstrated high rates of aneurysm occlusion and long-term durability. However, complete endothelization of the flow diverting stent is required for parent vessel healing which closes the aneurysm and metal stent from the circulation. Therefore, stent coatings which enhance endothelial migration and attachment may increase the rate of aneurysm occlusion and reduce complications associated with flow diversion treatment. Here we investigate the use of gelatin as a stent surface coating to enhance the rate of stent endothelialization and coverage and increase aneurysm healing. MethodsNitinol- Neuroform stents (Stryker, Kalamazoo, MI) and cobalt-chromium-Pipeline Flex flow diverting stents (Medtronic, Minneapolis, MN) were used for this study. The stents were coated with gelatin and endothelial cell attachment, proliferation and stent coverage were determined in vitro and compared to uncoated stent controls. A rabbit elastase-aneurysm model was used to determine the effects of endothelial cell seeded-gelatin coated flow diverting stents on aneurysm obliteration and parent vessel healing. ResultsIn vitro, gelatin coating of nitinol stents did not significantly alter endothelial cell attachment, proliferation, or stent coverage. However, gelatin coating of cobalt-chromium stents significantly increased endothelial cell attachment, proliferation and migration. In fact, gelatin coating significantly (p< 0.001) increased the rate of complete stent endothelization by 33% compared to unmodified controls. In vivo, treating aneurysm with endothelial cell seeded-gelatin coated stents resulted in aneurysm occlusion in 8 of 8 (100%) rabbit aneurysms at 90 days compared to only 4 of 7 (57%) in unmodified controls (p< 0.001). Histologically, there were trends in increased neoarterial wall thickness across the aneurysm neck and neointimal formation in the parent artery. Angiographic assessment demonstrated strong parent and side branch patency. ConclusionsGelatin coating enhances EC attachment and stent coverage which is dependent upon the type of stent. Endothelial cell seeded-gelatin coated-flow diverting stents allowed 100% aneurysm obliteration and neoarterial formation without affecting side branch patency or parent artery perfusion. Gelatin coating therefore represents a valuable strategy to enhance stent cellularization and aneurysm occlusion rates.

neuroscience↗

Rapamycin enhances VEGFA and VSMC contractile protein expression in MSCs via mTORC1 inhibition

IntroductionIntracranial aneurysm (ICA) rupture is the most common cause of non-traumatic subarachnoid hemorrhage, a devastating type of stroke. Vascular smooth muscle (VSMC) and endothelial cell (EC) dysfunction and death play important roles in the etiology of ICA formation, rupture and treatment failure. Mesenchymal stem cells (MSCs) have been extensively investigated for their therapeutic potential in vascular diseases. The mammalian target of rapamycin (mTOR) is a key regulatory pathway involved in cellular functions controlling intracellular anabolic and regulatory processes. Rapamycin, a specific mTOR complex 1 inhibitor, is widely used in the clinical management of cardiac and vascular pathologies. In this study, we explored MSCs potential to express VSMC and EC markers under the influence of rapamycin. MethodsHuman MSCs were treated with rapamycin for 2, 5, and 10 days, and cell death and proliferation determined by MTT analysis. Protein expression and phosphorylation levels were determined by western blot analysis. Calcein AM and PI staining was used to determine cell viability, and morphology. ResultsMTT and Calcein AM analysis demonstrated that prolonged rapamycin treatment did not affect MSC viability but was found to reduce MSC proliferation and cause a nearly threefold increase in cell size compared to controls. Rapamycin treatment increased expression of the VSMC protein markers, -SMA, and transgelin and was required to maintain elevated expression levels both proteins. In contrast, selective inhibition of mTORC2 with JR-AB2-01 caused a decrease in -SMA and trangelin expression, suggesting mTORC1 regulation of -SMA and transgelin expression, rather than mTORC2. Rapamycin treated MSC were also found to induce cell sprouting between adjacent cells. MSCs were found not to express endothelial protein markers under either basal conditions or following rapamycin treatment. However, rapamycin treatment was found to increase VEGFA expression, a known promoter of angiogenesis. ConclusionRapamycin has the potential to increase VSMC protein expression in MSCs by its action on mTORC1. The ability of rapamycin to increase VEGFA expression in MSCs could allow for a novel MSC-based therapeutic intervention in cerebral aneurysm management which could aid in ICA healing and reducing rupture risk.

neuroscience↗

Cerebral vascular tortuosity and aneurysm formation and rupture: a novel vessel tortuosity scale

Cerebral aneurysm (CA) rupture is the most common cause of nontraumatic subarachnoid hemorrhage. Recent data suggests that tortuosity is associated with aneurysm formation and rupture risk. We aimed to determine if tortuosity correlates with CA development and rupture in a mouse CA model and to develop a novel tortuosity scale to be used for in vivo CA studies. A highly validated, elastase-mouse CA model was used to assess cerebral vessel tortuosity with CA formation and rupture in sham and elastase groups. A 4-point ordinal scale was created to evaluate predictive capacity for vessel tortuosity level and CA formation and rupture. Nearly all sham animals (92%) had little to no vessel tortuosity on the visual scale (median, IQR: 1, [1-2]), compared to 24% in the elastase groups (2, [2-3]) (p=0.001). Sham cohorts had zero animals with highly tortuous vessels, while 3.5mU and 35mU cohorts had >35% of animals with significant visual tortuosity, p=0.003 and p<0.000, respectively. CA formation and rupture was higher in the elastase groups compared to the sham group (p=0.002). Both the visual scale and tortuosity index significantly predicted CA formation (p<0.001) and rupture (p<0.001). A novel tortuosity scale is highly predictive of CA formation and rupture in vivo. It may offer a new measurement to better understand vessel stress in the pathogenesis and progression of CAs.

neuroscience↗