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A machine learning approach for somatic mutation discovery

delete2018-09-05
delete74
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OA
AI
D
Derrick E. Wood
J
James R. White
A
Andrew Georgiadis
B
Beth Van Emburgh
S
Sonya Parpart-Li
J
Jason Mitchell
V
Valsamo Anagnostou
N
Noushin Niknafs
R
Rachel Karchin
E
Eniko Papp
C
Christine L. McCord
P
Peter R. LoVerso
D
David R. Riley
L
Luis A. Díaz
S
Siân Jones
M
Mark Sausen
V
Victor E. Velculescu *
S
Samuel V. Angiuoli *
DOI:10.1126/scitranslmed.aar7939delete
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摘要

摘要

En 中文
Variability in the accuracy of somatic mutation detection may affect the discovery of alterations and the therapeutic management of cancer patients. To address this issue, we developed a somatic mutation discovery approach based on machine learning that outperformed existing methods in identifying experimentally validated tumor alterations (sensitivity of 97% versus 90 to 99%; positive predictive value of 98% versus 34 to 92%). Analysis of paired tumor-normal exome data from 1368 TCGA (The Cancer Genome Atlas) samples using this method revealed concordance for 74% of mutation calls but also identified likely false-positive and false-negative changes in TCGA data, including in clinically actionable genes. Determination of high-quality somatic mutation calls improved tumor mutation load-based predictions of clinical outcome for melanoma and lung cancer patients previously treated with immune checkpoint inhibitors. Integration of high-quality machine learning mutation detection in clinical next-generation sequencing (NGS) analyses increased the accuracy of test results compared to other clinical sequencing analyses. These analyses provide an approach for improved identification of tumor-specific mutations and have important implications for research and clinical management of cancer patients.
Keyword:
COMPREHENSIVE MOLECULAR CHARACTERIZATION
GENERATION SEQUENCING PANEL
GENOMIC CHARACTERIZATION
CLINICAL VALIDATION
POINT MUTATIONS
READ ALIGNMENT
HUMAN BREAST
OPEN-LABEL
CANCER
TUMOR
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期刊

Science Translational Medicine 封面图
Science Translational Medicine
IF:
14.6
论文数:
4.9K
被引数:
5.3W

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J
Johns Hopkins University
学者数:
10.2W
论文数: 8.8W
被引数: 13.0W
J
Johns Hopkins Medicine
学者数:
1.8W
论文数: 1.3W
被引数: 5.0W
M
Memorial Sloan Kettering Cancer Center
学者数:
3.4W
论文数: 2.4W
被引数: 4.6W
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