Computer Aided Classification of Diabetic Macular Edema
Computer Aided Classification of Diabetic Macular Edema
批准号:
8703708
负责人:
Sina Farsiu
金额:
$37.97万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-08-01 至 2017-07-31
关键词:
AblationAffectAgeAlgorithmsAmericanAngiographyArchivesAreaBiological MarkersBlindnessBlood VesselsBlood capillariesCapillary Endothelial CellCellsClassificationClinicalClinical TrialsComputer AssistedComputer softwareData SetDevelopmentDiabetic RetinopathyDiffuseDiseaseEdemaExtracellular FluidExtravasationEyeFluoresceinFluorescein AngiographyFunctional disorderGoalsImageImage AnalysisImaging technologyIndividualIntracellular FluidKnowledgeLasersLipidsLiquid substanceMeasuresMedical ImagingMethodologyMethodsMicroaneurysmMuller&aposs cellPatientsPatternPerformancePharmaceutical PreparationsPharmacotherapyPlasmaPopulationProcessProspective StudiesPumpReadingRelative (related person)ResearchRetinaRetinalSiteStructure of retinal pigment epitheliumSubgroupTechnologyTestingTherapeuticTherapeutic AgentsVascular Endothelial Growth FactorsVisual AcuityWorkbasecapillarycorticosteroid inhibitordiabeticdiabetic patientdisorder subtypeimage processingimprovedinnovationmaculamacular edemanew technologynovelopen sourcepilot trialresponsesoftware developmenttreatment response
中文摘要
描述(由申请人提供):目前还没有成熟的方法来识别和评估糖尿病性黄斑水肿(DME)病理生物学机制,这是美国工作年龄人群失明的主要原因之一。因此,针对二甲醚的病理生理特异性治疗剂的开发是有限的,针对个体患者的个性化治疗选择仍然是主观的。我们的长期目标是开发自动化方法,利用视网膜成像技术将二甲醚患者分层为反映特定病理生理机制的亚组。反过来,我们期望根据这些机制进行亚分组将有助于为每个患者提供个性化治疗的最佳选择。目前的范式分离出三种不同的病理生理机制,单独或共同作为DME的促成因素:a)毛细血管内皮细胞功能障碍,b)视网膜胶质细胞泵功能障碍,c)视网膜色素上皮细胞泵功能障碍。基于这一范式,我们提出了两个相互关联的假设:1)荧光素血管造影(FA)和SD-OCT可以使用自动算法进行定量分析,以推断特定的疾病机制。在FA上,弥漫性与局灶性泄漏面积(D/F)比将反映两种泵功能障碍DME亚型相对于毛细血管泄漏亚型的相对优势。在SD-OCT上,通过层分割可以识别黄斑增厚等表明弥漫性和局灶性DME的形态学特征。2)使用D/F比和SD-OCT定量分析的图像分析将作为治疗反应的预测性生物标志物。更具体地说,弥漫性DME的FA和SD-OCT标记物对药物治疗的反应更好,而局灶性DME的标记物对局灶性激光的反应更好。我们将通过追求以下三个具体目标来验证这些假设:目标一:开发自动化软件来量化FA和SD-OCT上的DME亚型成像生物标志物。目标II:使用存档的DME病例来完善和验证目标i中开发的自动化算法。目标III:进行一项试点试验,以确定D/F比率在“治疗na”和无偏倚人群中预测抗vegf反应性的功效。该项目意义重大,因为针对疾病亚型的个性化治疗需求尚未得到满足。本项目将提供客观的基于FA和SD-OCT的二甲醚分型方法,并为不同的二甲醚机制提供推理支持。这个项目在新技术和新知识方面具有创新性和影响力。我们将利用新颖的数学概念和开发算法,在临床环境中以自动化的方式可靠地测量二甲醚成像生物标志物。开发的软件将免费向公众分发,并有望成为临床医生个性化治疗选择或图像阅读中心对新二甲醚药物临床试验患者进行分层的标准方法。最后,我们期望
英文摘要
DESCRIPTION (provided by applicant): There are currently no well-established methods to identify and evaluate the mechanisms underlying diabetic macular edema (DME) pathobiology, one of the leading causes of blindness among working-age Americans. As such, the development of pathophysiology-specific therapeutic agents for DME is limited, and the selection of therapies personalized for individual patients remains subjective. Our long-term goal is to develop automated methods that exploit retinal imaging technologies to stratify DME patients into subgroups that reflect specific pathophysiological mechanisms. In turn, we expect that subgrouping according to these mechanisms will facilitate an optimal choice of personalized therapy for each patient. The current paradigm isolates three different pathophysiologic mechanisms, independently or together, as contributing factors to DME: a) capillary endothelial cell dysfunction, b) retinal glial cellular pump dysfunction, and c) retinal pigment epithelium cel pump dysfunction. We propose two interrelated hypotheses based on this paradigm: 1) Fluorescein angiography (FA) and SD-OCT can be quantitatively analyzed using automated algorithms to infer the specific disease mechanism. On FA, the diffuse to focal leakage area (D/F) ratio will reflect the relative predominance of the two pump dysfunction DME subtypes versus the capillary leakage subtype. On SD-OCT, macular thickening and other morphological features indicative of diffuse and focal DME can be identified through layer segmentation. 2) Image analysis using both the D/F ratio and quantitative analysis of SD-OCT will serve as predictive biomarkers for therapeutic responses. More specifically, the FA and SD-OCT markers of diffuse DME will respond better to pharmacotherapy, whereas the markers of focal DME will respond better to focal laser. We will test these hypotheses by pursuit of the following three specific aims: Aim I: Develop automated software to quantify DME subtype imaging biomarkers on FA and SD-OCT. Aim II: Use archived DME cases to refine and validate the automated algorithms developed in Aim I. Aim III: Perform a pilot trial to determine the efficacy of the D/F ratio in predicting anti-VEGF responsiveness in a "treatment na¿ve" and unbiased population. This project is significant because there is an unmet need for therapies personalized to disease subtype. This project will provide objective DME subtyping methods based on FA and SD-OCT and inferential support for different DME mechanisms. This project is innovative and impactful in terms of new technology and new knowledge. We will utilize novel mathematical concepts and develop algorithms to reliably measure DME imaging biomarkers in an automated fashion in a clinical setting. Developed software will be freely distributed to the public and are expected to become the standard methodology used by clinicians to personalize the choice of therapy or by image reading centers to stratify patients for clinical trials of new DME drugs. Finally, we expect
that our novel image processing algorithms and their underlying mathematical frameworks will have an immediate impact on a wide spectrum of medical image processing research applications.
期刊论文(0)
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科研奖励(0)
会议论文
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海外基金