Mining multi-site clinical data to develop machine learning MRI biomarkers: application to neonatal hypoxic ischemic encephalopathy

被引:22
作者
Weiss, Rebecca J. [1 ]
Bates, Sara, V [1 ]
Song, Ya'nan [2 ]
Zhang, Yue [2 ]
Herzberg, Emily M. [1 ]
Chen, Yih-Chieh [1 ]
Gong, Maryann [3 ]
Chien, Isabel [3 ]
Zhang, Lily [3 ]
Murphy, Shawn N. [4 ]
Gollub, Randy L. [5 ]
Grant, P. Ellen [2 ,6 ]
Ou, Yangming [2 ,6 ,7 ]
机构
[1] Harvard Med Sch, Massachusetts Gen Hosp, Dept Pediat, Div Newborn Med, Boston, MA 02114 USA
[2] Harvard Med Sch, FNNDSC, Boston Childrens Hosp, 401 Pk Dr,Landmark Ctr 7022, Boston, MA 02115 USA
[3] MIT, CSAIL, 77 Massachusetts Ave, Cambridge, MA 02139 USA
[4] Harvard Med Sch, Massachusetts Gen Hosp, Lab Comp Sci, Boston, MA 02114 USA
[5] Harvard Med Sch, Massachusetts Gen Hosp, Dept Psychiat & Dept Radiol, Boston, MA 02114 USA
[6] Harvard Med Sch, Boston Childrens Hosp, Dept Radiol, Neuroradiol Div, Boston, MA 02115 USA
[7] Harvard Med Sch, Boston Childrens Hosp, CHIP, Boston, MA 02115 USA
基金
美国国家卫生研究院;
关键词
Neonatal encephalopathy; Hypoxic ischemic encephalopathy; MRI; Biomarkers; Machine learning; Outcome prediction; Bioinformatics; WHOLE-BODY HYPOTHERMIA; DIFFUSION-COEFFICIENT MEASUREMENTS; BRAIN-TUMOR SEGMENTATION; THERAPEUTIC HYPOTHERMIA; PATTERN-CLASSIFICATION; PERINATAL ASPHYXIA; TERM INFANTS; APGAR SCORES; INJURY; OUTCOMES;
D O I
10.1186/s12967-019-2119-5
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Background Secondary and retrospective use of hospital-hosted clinical data provides a time- and cost-efficient alternative to prospective clinical trials for biomarker development. This study aims to create a retrospective clinical dataset of Magnetic Resonance Images (MRI) and clinical records of neonatal hypoxic ischemic encephalopathy (HIE), from which clinically-relevant analytic algorithms can be developed for MRI-based HIE lesion detection and outcome prediction. Methods This retrospective study will use clinical registries and big data informatics tools to build a multi-site dataset that contains structural and diffusion MRI, clinical information including hospital course, short-term outcomes (during infancy), and long-term outcomes (similar to 2 years of age) for at least 300 patients from multiple hospitals. Discussion Within machine learning frameworks, we will test whether the quantified deviation from our recently-developed normative brain atlases can detect abnormal regions and predict outcomes for individual patients as accurately as, or even more accurately, than human experts. Trial Registration Not applicable. This study protocol mines existing clinical data thus does not meet the ICMJE definition of a clinical trial that requires registration
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页数:16
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