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Using Radiogenomics to Noninvasively Predict the Malignant Potential of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Uncover Hidden Biology

Using Radiogenomics to Noninvasively Predict the Malignant Potential of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Uncover Hidden Biology
利用放射基因组学无创预测胰腺导管内乳头状粘液性肿瘤的恶性潜能并揭示隐藏的生物学
批准号:
9912740
负责人:
Daniel Jeong
金额:
$66.81万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-07-01 至 2024-06-30
关键词:
3-DimensionalAddressAmericanAnxietyBenignBiological MarkersBiological ProcessBiologyBloodBlood TestsCarcinomaCategoriesCharacteristicsClinicalConsensusCystCystic NeoplasmDataDevelopmentDiagnosticDigit structureDiseaseDysplasiaEarly DiagnosisEnzyme-Linked Immunosorbent AssayEpidemicExcisionEyeFamilyFloridaFosteringGoalsGuidelinesHealthHigh grade dysplasiaHumanImageImmunohistochemistryIn Situ HybridizationIndividualInstitutionLesionLinkMalignant - descriptorMalignant NeoplasmsMalignant neoplasm of pancreasMeasuresMediatingMedical ImagingMicroRNAsModelingMonitorMorbidity - disease rateMucinous NeoplasmMucinsNomogramsOperative Surgical ProceduresOutcomePancreasPancreatic CystPapillaryPathologicPathologyPatientsPerformancePhysiciansPlasmaPortraitsPredictive ValuePreventionProceduresProspective cohortRadiogenomicsRadiology SpecialtyResearchRetrospective cohortRiskScanningSensitivity and SpecificitySeriesSerumSeveritiesSocietiesSolidSpecimenSurvival RateTechniquesTissue MicroarrayTissuesTranslational ResearchTumor PathologyTumor TissueX-Ray Computed Tomographybasecandidate markercirculating microRNAclinical decision-makingclinically actionablecostdiagnostic accuracygenomic signaturehigh rewardhigh riskimaging approachimaging biomarkerimaging modalityimprovedliquid biopsymolecular markermortalitynovelovertreatmentpancreatic neoplasmpersonalized carepredictive modelingpremalignantpreventprospectiveprototypepublic health relevancequantitative imagingradiomicstooltranslational studytumor

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PROJECT SUMMARY/ABSTRACT Approximately 700,000 pancreatic cysts are incidentally detected by imaging each year. Up to 70% of these radiologically-detected cysts are intraductal papillary mucinous neoplasms (IPMNs), bona fide precursor lesions to pancreatic cancer, the only solid malignancy with a 5-year relative survival rate in the single digits. Once detected, existing imaging modalities and molecular markers cannot reliably distinguish low/moderate grade (benign) IPMNs that merit surveillance from high-grade/invasive (malignant) IPMNs that warrant surgical resection, posing a great clinical challenge. Based on preliminary data generated by our group, we hypothesize that unexplored categories of quantitative ‘radiomic’ features extracted from preoperative computed tomography (CT) scans will have added diagnostic value in predicting malignant IPMN pathology, compared to standard radiologic features. We further hypothesize that a liquid biopsy that measures microRNAs circulating in blood plasma (a miRNA genomic classifier (MGC)) that we have developed may help to further enhance diagnostic accuracy. The goals of this proposal are to 1) Evaluate the diagnostic performance of novel radiomic CT features in predicting IPMN pathology, compared to standard radiologic features, using data and specimens from a retrospective series (Aim 1a) and a prospective multi-institutional series of IPMN cases (Aim 1b); 2) Generate prototype clinical decision-making models (nomograms) that take into account radiomic data, the MGC, and other clinical characteristics (Aim 2); and 3) Evaluate the relationship between radiomic features and biological processes that underlie IPMN tumor development and/or progression. By leveraging interdisciplinary expertise and largely existing data unique to our institutions, our long-term goal is to discover a combined quantitative imaging and biomarker approach that is noninvasive and has added value in predicting IPMN pathology beyond that provided by standard radiologic characteristics. This line of translational research has potential to foster clinically actionable information that could be used to rapidly and cost-effectively personalize care for individuals with IPMNs and ultimately reduce the burden of pancreatic cancer as a major health problem.
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Using Radiogenomics to Noninvasively Predict the Malignant Potential of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Uncover Hidden Biology
Using Radiogenomics to Noninvasively Predict the Malignant Potential of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Uncover Hidden Biology
Using Radiogenomics to Noninvasively Predict the Malignant Potential of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Uncover Hidden Biology
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