Real‐time analysis of the cancer genome and fragmentome from plasma and urine cell‐free DNA using nanopore sequencing

Author:

van der Pol Ymke12,Tantyo Normastuti Adhini12ORCID,Evander Nils12ORCID,Hentschel Anouk E13,Wever Birgit MM12ORCID,Ramaker Jip12,Bootsma Sanne456,Fransen Marieke F27,Lenos Kristiaan J456ORCID,Vermeulen Louis456,Schneiders Famke L27,Bahce Idris27ORCID,Nieuwenhuijzen Jakko A23ORCID,Steenbergen Renske DM12,Pegtel D Michiel12ORCID,Moldovan Norbert12ORCID,Mouliere Florent12ORCID

Affiliation:

1. Pathology Amsterdam UMC Location Vrije Universiteit Amsterdam Amsterdam The Netherlands

2. Cancer Center Amsterdam, Imaging and Biomarkers Amsterdam The Netherlands

3. Urology Amsterdam UMC Location Vrije Universiteit Amsterdam Amsterdam The Netherlands

4. Amsterdam UMC Location University of Amsterdam, Center for Experimental and Molecular Medicine, Laboratory for Experimental Oncology and Radiobiology Amsterdam The Netherlands

5. Cancer Center Amsterdam, Gastroenterology Endocrinology Metabolism Amsterdam The Netherlands

6. Oncode Institute Amsterdam The Netherlands

7. Pulmonology Amsterdam UMC Location Vrije Universiteit Amsterdam Amsterdam The Netherlands

Abstract

AbstractCell‐free DNA (cfDNA) can be isolated and sequenced from blood and/or urine of cancer patients. Conventional short‐read sequencing lacks deployability and speed and can be biased for short cfDNA fragments. Here, we demonstrate that with Oxford Nanopore Technologies (ONT) sequencing we can achieve delivery of genomic and fragmentomic data from liquid biopsies. Copy number aberrations and cfDNA fragmentation patterns can be determined in less than 24 h from sample collection. The tumor‐derived cfDNA fraction calculated from plasma of lung cancer patients and urine of bladder cancer patients was highly correlated (R = 0.98) with the tumor fraction calculated from short‐read sequencing of the same samples. cfDNA size profile, fragmentation patterns, fragment‐end composition, and nucleosome profiling near transcription start sites in plasma and urine exhibited the typical cfDNA features. Additionally, a high proportion of long tumor‐derived cfDNA fragments (> 300 bp) are recovered in plasma and urine using ONT sequencing. ONT sequencing is a cost‐effective, fast, and deployable approach for obtaining genomic and fragmentomic results from liquid biopsies, allowing the analysis of previously understudied cfDNA populations.

Funder

KWF Kankerbestrijding

Publisher

Springer Science and Business Media LLC

Subject

Molecular Medicine

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