Simultaneous Xe129 MRI of Regional Lung Ventilation and Gas Uptake in COPD
COPD 局部肺通气和气体摄取的同步 Xe129 MRI
基本信息
- 批准号:8163570
- 负责人:
- 金额:$ 44.55万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2011
- 资助国家:美国
- 起止时间:2011-07-01 至 2016-05-31
- 项目状态:已结题
- 来源:
- 关键词:AcuteAddressAgeBehaviorBloodCause of DeathChestChronic Obstructive Airway DiseaseClinicalCouplingDataDeath RateDevelopmentDisease ProgressionEconomic InflationEnvironmental air flowErythrocytesFingerprintFoundationsFutureGasesGeneticGoalsHealthHumanImageLungLung diseasesMagnetic Resonance ImagingMeasurementMeasuresMedical ImagingMethodsMolecular GeneticsMonitorPathway interactionsPharmaceutical PreparationsPhasePhenotypePhysiologicalPlasmaProtocols documentationPulmonary function testsQuality of lifeResearchResolutionRespiratory physiologySeverity of illnessSignal TransductionSmokerSpeedSpirometryStagingStructure of parenchyma of lungTechniquesTissuesTreatment ProtocolsUnited StatesX-Ray Computed TomographyXenonattenuationbaseclinically relevantflexibilityhuman subjectimaging modalityimprovedin vivonovelphysical separationrespiratoryresponsetooluptake
项目摘要
DESCRIPTION (provided by applicant): Chronic obstructive pulmonary disease (COPD) is the fourth leading cause of death in the United States and is the only major cause of death for which the age-adjusted death rate has increased in recent years. As progress is made in understanding the genetic and molecular pathways involved in COPD, there is a growing need for improved tools to characterize lung function for applications such as coupling genetic subtypes to phenotype expression, monitoring functional response to new treatments, or aiding in the rapid development of novel respiratory drugs. Nonetheless, despite a myriad of technical advances in medical imaging, it remains challenging to obtain in-vivo regional depiction and quantification of the most basic physiological functions of the lung - gas delivery to the airspaces and gas uptake by the lung parenchyma and blood - in a manner suitable for routine application in humans. To address this unmet need, this project takes advantage of a method recently developed by our group, based on magnetic resonance imaging (MRI) of hyperpolarized xenon-129 (hypXe129), that permits simultaneous observation of the 3D distributions of ventilation (gas delivery) and gas uptake, as well as quantification of regional gas uptake based on the associated ventilation, from a single short breath-hold acquisition suitable for subjects with compromised respiratory function. The first aim of this project is to implement, and validate in human subjects, key improvements to this technique, including the ability to separately depict in the images the fraction of hypXe129 dissolved in red blood cells and that dissolved in lung parenchyma/plasma. The second aim is to characterize gas uptake in the healthy lung, as reflected by dissolved-hypXe129 signals, by measuring signal behaviors as a function of measurement parameters and lung inflation in healthy subjects, and then derive optimized protocols, based on the signal-behavior data, for measuring the associated 3D distributions of gas uptake. These optimized protocols will be validated in subjects with mild and severe COPD. The third and final aim is to perform an exploratory study in 20 healthy control subjects, 10 smokers with normal spirometry and 30 subjects with COPD, ranging from GOLD stage 1 to 3, to characterize, as a function of disease severity, the normalized gas- uptake distributions for dissolved hypXe129 and for the fractions of hypXe129 dissolved in red blood cells and lung parenchyma/plasma. These gas-uptake results will be compared to results from standard computed tomography (CT) of the chest and pulmonary function testing. Successful completion of the proposed project will result in an improved, optimized version of the method for simultaneous MR imaging of ventilation and gas uptake that provides normalized regional gas-uptake values, which can be quantitatively compared among subjects. This technique offers important functional information about the lung, which is not available from any existing clinical imaging modality, and has substantial potential to provide unique, physiologically relevant, and clinically important information about COPD.
PUBLIC HEALTH RELEVANCE: The proposed project aims to develop an optimized and improved version of a method based on magnetic resonance imaging that provides unique and important regional functional information about gas exchange in the lung. Results from the proposed studies in healthy subjects and subjects with COPD using this technique will lay the foundation for its application, in future projects, for purposes such as (i) improving our understanding of the functional manifestations of COPD progression, including the rapid changes in function that often occur with acute exacerbations, (ii) monitoring of the lung's functional response to modified or new treatment regimens for COPD, and (iii) providing an improved phenotypic description for correlation to genetic fingerprints of COPD.
DESCRIPTION (provided by applicant): Chronic obstructive pulmonary disease (COPD) is the fourth leading cause of death in the United States and is the only major cause of death for which the age-adjusted death rate has increased in recent years. As progress is made in understanding the genetic and molecular pathways involved in COPD, there is a growing need for improved tools to characterize lung function for applications such as coupling genetic subtypes to phenotype expression, monitoring functional response to new treatments, or aiding in the rapid development of novel respiratory drugs. Nonetheless, despite a myriad of technical advances in medical imaging, it remains challenging to obtain in-vivo regional depiction and quantification of the most basic physiological functions of the lung - gas delivery to the airspaces and gas uptake by the lung parenchyma and blood - in a manner suitable for routine application in humans. To address this unmet need, this project takes advantage of a method recently developed by our group, based on magnetic resonance imaging (MRI) of hyperpolarized xenon-129 (hypXe129), that permits simultaneous observation of the 3D distributions of ventilation (gas delivery) and gas uptake, as well as quantification of regional gas uptake based on the associated ventilation, from a single short breath-hold acquisition suitable for subjects with compromised respiratory function. The first aim of this project is to implement, and validate in human subjects, key improvements to this technique, including the ability to separately depict in the images the fraction of hypXe129 dissolved in red blood cells and that dissolved in lung parenchyma/plasma. The second aim is to characterize gas uptake in the healthy lung, as reflected by dissolved-hypXe129 signals, by measuring signal behaviors as a function of measurement parameters and lung inflation in healthy subjects, and then derive optimized protocols, based on the signal-behavior data, for measuring the associated 3D distributions of gas uptake. These optimized protocols will be validated in subjects with mild and severe COPD. The third and final aim is to perform an exploratory study in 20 healthy control subjects, 10 smokers with normal spirometry and 30 subjects with COPD, ranging from GOLD stage 1 to 3, to characterize, as a function of disease severity, the normalized gas- uptake distributions for dissolved hypXe129 and for the fractions of hypXe129 dissolved in red blood cells and lung parenchyma/plasma. These gas-uptake results will be compared to results from standard computed tomography (CT) of the chest and pulmonary function testing. Successful completion of the proposed project will result in an improved, optimized version of the method for simultaneous MR imaging of ventilation and gas uptake that provides normalized regional gas-uptake values, which can be quantitatively compared among subjects. This technique offers important functional information about the lung, which is not available from any existing clinical imaging modality, and has substantial potential to provide unique, physiologically relevant, and clinically important information about COPD.
PUBLIC HEALTH RELEVANCE: The proposed project aims to develop an optimized and improved version of a method based on magnetic resonance imaging that provides unique and important regional functional information about gas exchange in the lung. Results from the proposed studies in healthy subjects and subjects with COPD using this technique will lay the foundation for its application, in future projects, for purposes such as (i) improving our understanding of the functional manifestations of COPD progression, including the rapid changes in function that often occur with acute exacerbations, (ii) monitoring of the lung's functional response to modified or new treatment regimens for COPD, and (iii) providing an improved phenotypic description for correlation to genetic fingerprints of COPD.
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Talissa A Altes其他文献
Visualizing ventilation changes in asthmatics following methacholine challenge using hyperpolarized helium-3 MR
- DOI:
10.1016/s0091-6749(02)82232-1 - 发表时间:
2002-01-01 - 期刊:
- 影响因子:
- 作者:
Saba Samee;Talissa A Altes;John M Christopher;Eduard E De Lange;Thomas AE Platts-Mills - 通讯作者:
Thomas AE Platts-Mills
Talissa A Altes的其他文献
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{{ truncateString('Talissa A Altes', 18)}}的其他基金
Assessment of lung function in neonates and infants
新生儿和婴儿肺功能评估
- 批准号:
9110299 - 财政年份:2012
- 资助金额:
$ 44.55万 - 项目类别:
Simultaneous Xe129 MRI of Regional Lung Ventilation and Gas Uptake in COPD
COPD 局部肺通气和气体摄取的同步 Xe129 MRI
- 批准号:
8277874 - 财政年份:2011
- 资助金额:
$ 44.55万 - 项目类别:
Simultaneous Xe129 MRI of Regional Lung Ventilation and Gas Uptake in COPD
COPD 局部肺通气和气体摄取的同步 Xe129 MRI
- 批准号:
8676590 - 财政年份:2011
- 资助金额:
$ 44.55万 - 项目类别:
Simultaneous Xe129 MRI of Regional Lung Ventilation and Gas Uptake in COPD
COPD 局部肺通气和气体摄取的同步 Xe129 MRI
- 批准号:
8502752 - 财政年份:2011
- 资助金额:
$ 44.55万 - 项目类别:
ANALYSIS OF BODY FAT USING MRI/MRS IN HEALTHY CHILDREN AND IN CYSTIC FIBROSIS
使用 MRI/MRS 分析健康儿童和囊性纤维化患者的体脂
- 批准号:
8167202 - 财政年份:2010
- 资助金额:
$ 44.55万 - 项目类别:
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