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A Novel Electrospun Vascular Graft

A Novel Electrospun Vascular Graft
新型静电纺血管移植物
批准号:
7805685
负责人:
DAVID J VACHON
金额:
$27.78万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-10 至 2013-07-31
关键词:
3-DimensionalAccountingAdhesionsAdsorptionAffectAgeAlbuminsAlkanesulfonatesAmericanAngioplastyAnti-Inflammatory AgentsAnti-inflammatoryAnticoagulationAtherosclerosisAutologous TransplantationBehaviorBindingBiocompatibleBiocompatible MaterialsBiologicalBiological AssayBiological MarkersBloodBlood CirculationBlood PlateletsBlood ProteinsBlood VesselsBlood flowBlood specimenBypassCaliberCardiovascular DiseasesCardiovascular systemCaringCathepsinsCathetersCause of DeathCell AdhesionCell SurvivalCerebrovascular DisordersCessation of lifeCharacteristicsChemicalsClinical ManagementCoagulation ProcessConnecticutConstruction MaterialsCoronary ArteriosclerosisCoronary Artery BypassDepositionDevicesDiseaseDrug FormulationsElastasesEngineeringEnvironmentEquipmentEquipment MalfunctionEvaluation StudiesEventExpenditureFamilyFatigueFiberFibrinFibrinogenFilamentForeign BodiesFrequenciesGenerationsGoalsHarvestHealthHealth Care CostsHealthcare SystemsHeartHeart DiseasesHospitalizationHumanHydrogelsImplantIn VitroInfiltrationInflammationInflammatoryInvestigationIschemiaLabelLeadLeukocyte ElastaseLimb structureMeasuresMechanicsMediatingMedicareMedicineMembraneMetalsMethodologyMethodsModificationMolecularMonoclonal AntibodiesMorbidity - disease rateMorphologyMusMyocardial InfarctionOperative Surgical ProceduresOutcomeP-SelectinPacemakersPatientsPeptide HydrolasesPerformancePeripheralPeripheral arterial diseasePermeabilityPharmaceutical PreparationsPhasePhysiologicalPlatelet Glycoprotein GPIIb-IIIa ComplexPlayPolymersPopulationPorosityPreparationProceduresProcessProductionProductivityPropertyProsthesisProteinsRecombinantsRecoveryResearchResearch PersonnelResidual stateResistanceResourcesRoleScanning Electron MicroscopySiteSmall Business Innovation Research GrantSmooth Muscle MyocytesSolutionsSolventsSourceSpectroscopy, Fourier Transform InfraredStainless SteelStenosisStentsSterile coveringsStrokeStroke preventionSumSurfaceSurgeonSystemTechniquesTestingTextilesTherapeutic AgentsThickThrombolytic TherapyThrombosisThrombusTimeTissue EngineeringTissuesTransplantationTransplanted tissueTubeTubular formationUnited StatesUniversitiesUrethaneVascular GraftVascular Graft OcclusionVascular remodelingVenousWhole BloodWomanaustinbasebiomaterial compatibilitycathepsin Kcerebrovascularclaudicationcopolymercostdesigndisabilitydrug developmenteconomic impactelastomerichuman capitalhydrophilicityimprovedinflammatory markerinhibitor/antagonistinnovationisobutylenemeltingmenneutrophilnoveloperationpolycarbonateprototypepublic health relevancepulmonary artery endothelial cellresearch studyresponsesuccesstotal artificial heartventricular assist devicewound

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中文摘要
翻译
描述(由申请人提供):一种新型磺化聚合物,具有独特的化学可定制特性和加工特性,作为抗血栓表面显示出相当大的前景,并已被证明是中性粒细胞衍生蛋白酶的有效抑制剂。第一期SBIR试验将研究该聚合物作为血管移植材料的共混物。该研究的主要目的是利用静电纺丝技术制造第一代血管移植物,并研究移植物在血流中的性能。主要目的是减少血小板粘附和活化。这种创新和合理的方法是建立在几个不同的研究的基础上,这些研究揭示了这种聚合物家族有希望的生物应用特性。第一阶段SBIR的最终目标是开发和鉴定一种固有的非血栓形成和抗炎水凝胶(混合物)表面,具有潜在的应用血管移植和其他挽救生命的心血管装置。
英文摘要
DESCRIPTION (provided by applicant): A novel sulfonated polymer with unique chemically tailorable properties and processing characteristics has shown considerable promise as a thrombo- resistant surface and has been proven to be an effective inhibitor against neutrophil-derived proteases. Phase 1 SBIR testing is proposed to investigate blends of this polymer as vascular graft material. The major specific aims of the proposed research involve the fabrication of a first generation vascular graft from these materials using an electrospinning technique and investigating the performance of the graft with blood under flow. The primary objective is to minimize platelet adhesion and activation. This innovative and rational approach to a thrombo-resistant blood conduit is founded on the basis of several different studies that have revealed promising bioapplicable attributes of this polymer family. The end-goal of this Phase 1 SBIR is to develop and identify an inherently non-thrombogenic and anti-inflammatory hydrogel (blend) surface with potential application as a vascular graft and other lifesaving cardiovascular devices. PUBLIC HEALTH RELEVANCE: Cardiovascular disease (CVD) is the leading cause of death and disability for both men and women in the U.S., presently affecting more than 70 million Americans. Overall, more than 6 million hospitalizations occur each year for treatment of cardiovascular diseases. Consequently, the economic impact of CVD on our nation's health care system continues to grow, especially as the population ages. The cost of heart disease and stroke in 2006 (U.S.) was greater than $400 billion, when healthcare cost expenditures and lost productivity from death and disability are accounted for. Under the umbrella of cardiovascular diseases, atherosclerosis-induced peripheral artery disease (PAD), coronary artery disease (CAD) and cerebrovascular disease all result from the primary event of vessel narrowing (stenosis) and/or occlusion due to dysregulated formation of clots and associated inflammatory events involving smooth muscle cell (SMC) infiltration, neointimal proliferation and maladaptive vascular remodeling. Stenosis and occlusion lead to reduction/loss of antegrade blood flow. For PAD, this may lead to claudication and tissue morbidity of peripheral extremities, while for CAD this can lead to ischemia and often fatal myocardial infarction and, for cerebrovascular situations, this may lead to stroke. Interventional endovascular and/or surgical treatment to remove thrombus and to reestablish vascular flow is necessary for clinical management of these diseases. Endovascular treatments involve mechanical approaches like catheter-mediated angioplasty, cryoplasty and enderactomy and, pharmacotherapeutic approaches like transcatheter delivery of thrombolytic, anti-platelet and anti-proliferative drugs. Often these approaches are combined with stenting. Recent years have seen the development of drug eluting stents (DES) where the metal stent surface is coated with a drug-loaded polymer matrix for sustained release of therapeutic agents. Surgical approaches involve bypass grafts, many of which are made of synthetic polymers (e.g. ePTFE). For other cardiovascular diseases biomaterials also play an important role. Devices including pacemakers, ventricular assist devices, and the total artificial heart are used. All of the aforementioned devices depend upon synthetic materials that come into contact with flowing blood. These materials are prone to rapid protein (e.g. fibrinogen, fibrin) deposition, denaturation and subsequent adhesion and activation of blood platelets potentially leading to clot formation and the subsequent activation of coagulation and inflammatory events. In turn, material performance can be compromised necessitating recurring endovascular or surgical procedures. As such, these patients generally require perpetual anticoagulation therapy in order to prevent stroke and/or device failure. Thus, protein- and platelet-resistant blood-contacting interfaces on devices as mentioned above can improve patient outcomes and reduce the overall cost of care. A first-generation synthetic vascular graft is the subject of our investigation. The polymer compositions in these studies are sulfonated block copolymer blends that have demonstrated low thrombogenicity, good (wet) mechanical properties, and can be electrospun into 3-D vascular graft constructs. Dynamic studies of the electrospun graft (under flow) will be used to understand the materials behavior in blood.
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