Quantification and expert evaluation of evidence for chemopredictive biomarkers to personalize cancer treatment. - PubMed - NCBI
Oncotarget. 2016 Nov 24. doi: 10.18632/oncotarget.13544. [Epub ahead of print]
Quantification and expert evaluation of evidence for chemopredictive biomarkers to personalize cancer treatment.
Rao S1,
Beckman RA1,2,3,
Riazi S1,
Yabar CS4,5,
Boca SM1,2,3,
Marshall JL2,6,
Pishvaian MJ2,6,
Brody JR4,
Madhavan S1,2.
Abstract
Predictive biomarkers have the potential to facilitate cancer precision medicine by guiding the optimal choice of therapies for patients. However, clinicians are faced with an enormous volume of often-contradictory evidence regarding the therapeutic context of chemopredictive biomarkers.We extensively surveyed public literature to systematically review the predictive effect of 7 biomarkers claimed to predict response to various chemotherapy drugs: ERCC1-platinums, RRM1-gemcitabine, TYMS-5-fluorouracil/Capecitabine, TUBB3-taxanes, MGMT-temozolomide, TOP1-irinotecan/topotecan, and TOP2A-anthracyclines. We focused on studies that investigated changes in gene or protein expression as predictors of drug sensitivity or resistance. We considered an evidence framework that ranked studies from high level I evidence for randomized controlled trials to low level IV evidence for pre-clinical studies and patient case studies.We found that further in-depth analysis will be required to explore methodological issues, inconsistencies between studies, and tumor specific effects present even within high evidence level studies. Some of these nuances will lend themselves to automation, others will require manual curation. However, the comprehensive cataloging and analysis of dispersed public data utilizing an evidence framework provides a high level perspective on clinical actionability of these protein biomarkers. This framework and perspective will ultimately facilitate clinical trial design as well as therapeutic decision-making for individual patients.
KEYWORDS:
biocuration; clinical utility; evidence framework; precision medicine; predictive biomarkers
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