Please use this identifier to cite or link to this item: doi:10.22028/D291-38717
Title: Dynamic and static circulating cancer microRNA biomarkers : a validation study
Author(s): Abu-Halima, Masood
Keller, Andreas
Becker, Lea Simone
Fischer, Ulrike
Engel, Annika
Ludwig, Nicole
Kern, Fabian
Rounge, Trine B.
Langseth, Hilde
Meese, Eckart
Keller, Verena
Language: English
Title: RNA Biology
Volume: 20 (2023)
Issue: 1
Publisher/Platform: Taylor & Francis
Year of Publication: 2022
Free key words: microRNA
cancer
colon cancer
breast cancer
biomarker
miR-99a
miR155
DDC notations: 610 Medicine and health
Publikation type: Journal Article
Abstract: For cancers and other pathologies, early diagnosis remains the most promising path to survival. Profiling of longitudinal cohorts facilitates insights into trajectories of biomarkers. We measured microRNA expression in 240 serum samples from patients with colon, lung, and breast cancer and from cancerfree controls. Each patient provided at least two serum samples, one prior to diagnosis and one following diagnosis. The median time interval between the samples was 11.6 years. Using computational models, we evaluated the circulating profiles of 21 microRNAs. The analysis yielded two sets of biomarkers, static ones that show an absolute difference between certain cancer types and controls and dynamic ones where the level over time provided higher diagnostic information content. In the first group, miR-99a-5p stands out for all three cancer types. In the second group, miR-155-5p allows to predict lung cancers and colon cancers. Classification in samples from cancer and non-cancer patients using gradient boosted trees reached an average accuracy of 79.9%. The results suggest that individual change over time or an absolute value at one time point may predict a disease with high specificity and sensitivity.
DOI of the first publication: 10.1080/15476286.2022.2154470
URL of the first publication: https://doi.org/10.1080/15476286.2022.2154470
Link to this record: urn:nbn:de:bsz:291--ds-387173
hdl:20.500.11880/34891
http://dx.doi.org/10.22028/D291-38717
ISSN: 1555-8584
1547-6286
Date of registration: 17-Jan-2023
Description of the related object: Supplemental material
Related object: https://ndownloader.figstatic.com/files/38528190
Faculty: M - Medizinische Fakultät
Department: M - Humangenetik
M - Medizinische Biometrie, Epidemiologie und medizinische Informatik
Professorship: M - Univ.-Prof. Dr. Andreas Keller
M - Prof. Dr. Eckhart Meese
Collections:SciDok - Der Wissenschaftsserver der Universität des Saarlandes

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