Multiparametric Quantitative Imaging Biomarker as a Multivariate Descriptor of Health: A Roadmap

被引:3
|
作者
Raunig, David L. [1 ]
Pennello, Gene A. [2 ]
Delfino, Jana G. [3 ]
Buckler, Andrew J. [4 ]
Hall, Timothy J. [5 ]
Guimaraes, Alexander R. [6 ]
Wang, Xiaofeng [7 ]
Huang, Erich P. [8 ]
Barnhart, Huiman X. [9 ]
deSouza, Nandita [10 ,11 ]
Obuchowski, Nancy
机构
[1] Takeda Pharmaceut, Data Sci Inst, Dept Stat & Quantitat Sci, Cambridge, MA 02421 USA
[2] US FDA, Div Imaging Diagnost & Software Reliabil, Ctr Devices & Radiol Hlth, Off Sci & Engn Lab, Silver Spring, MD USA
[3] US FDA, Ctr Devices & Radiol Hlth, Silver Spring, MD USA
[4] Elucid Bioimaging Inc, Boston, MA USA
[5] Univ Wisconsin, Dept Med Phys, Madison, WI USA
[6] Oregon Hlth & Sci Univ, Dept Diagnost Radiol, Portland, OR USA
[7] Lerner Res Inst, Dept Quantitat Hlth Sci, Cleveland, OH USA
[8] NCI, NIH, Biometr Res Program, Div Canc Treatment & Diag, Bethesda, MD USA
[9] Duke Univ, Dept Biostat & Bioinformat, Durham, NC USA
[10] Insitute Canc Res, Div Radiotherapy & Imaging, Dept Quantitat Hlth Sci, London, OH, England
[11] Royal Marsden NHS Fdn Trust, London, England
基金
加拿大健康研究院; 美国国家卫生研究院;
关键词
Multiparametric quantitative imaging biomarker (mp-QIB); Multivariate biomarker; Technical performance; Alzheimer?s Disease; QIBA; SURROGATE END-POINTS; MULTIPLE TESTING PROBLEMS; ALZHEIMERS-DISEASE; CLINICAL-TRIALS; TECHNICAL PERFORMANCE; STATISTICAL-METHODS; RESPONSE ASSESSMENT; SAMPLE-SIZE; CONSENSUS; EFFICACY;
D O I
10.1016/j.acra.2022.10.026
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Multiparametric quantitative imaging biomarkers (QIBs) offer distinct advantages over single, univariate descriptors because they provide a more complete measure of complex, multidimensional biological systems. In disease, where structural and functional disturbances occur across a multitude of subsystems, multivariate QIBs are needed to measure the extent of system malfunction. This paper, the first Use Case in a series of articles on multiparameter imaging biomarkers, considers multiple QIBs as a multidimensional vector to represent all relevant disease constructs more completely. The approach proposed offers several advantages over QIBs as multiple endpoints and avoids combining them into a single composite that obscures the medical meaning of the individual measurements. We focus on establishing statistically rigorous methods to create a single, simultaneous measure from multiple QIBs that preserves the sensitivity of each univariate QIB while incorporating the correlation among QIBs. Details are provided for metrological methods to quantify the technical performance. Methods to reduce the set of QIBs, test the superiority of the mp-QIB model to any univariate QIB model, and design study strategies for generating precision and validity claims are also provided. QIBs of Alzheimer's Disease from the ADNI merge data set are used as a case study to illustrate the methods described. (c) 2022 The Association of University Radiologists. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:159 / 182
页数:24
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