EACR Liquid Biopsies

22 September 2026
to 24 September 2026
Amphitheatre Charles Merieux
, Lyon
, France

Visit biomodal at booth 

#16

About the event

Join biomodal at EACR Liquid Biopsies 2026, where world-leading experts and emerging investigators will explore the latest advances in circulating nucleic acids, circulating tumour cells, and extracellular vesicles across the cancer continuum.

biomodal is proud to contribute to the conference program with one talk and three poster presentations, showcasing how our 6-base sequencing technology is advancing ultrasensitive detection, fragmentomics, and biomarker discovery in liquid biopsy research.

Come visit us at Booth 16 to learn more about biomodal’s duet technology and see how our solutions are helping researchers uncover a more complete picture of disease biology.

Introducing duet mosaicâ„¢
biomodal is excited to introduce the newly launched duet mosaicâ„¢ family, new workflows designed for cfDNA and liquid biopsy research that combine genetic, epigenetic, and fragmentomic information from the same molecules, including short, damaged fragments other workflows may miss. When your sample is limited, every fragment matters, and duet mosaic helps researchers access more from every molecule.

Want to connect one-on-one? Complete the form below to schedule a meeting with the biomodal team before, during, or after the show.

Presenting at the event

A single stranded 6-base workflow optimises discovery of integrated genetic, epigenetic and fragmentomic biomarkers for sensitive ctDNA detection

Tom Charlesworth, PhD

Director of Market Strategy & Corporate Development

biomodal

Tuesday, 22 September 2026 | 4:40 PM

Sensitive detection of circulating tumour DNA (ctDNA) is critical for liquid biopsy applications including early cancer detection and minimal residual disease monitoring, where disease-associated molecules may be present at very low abundance. Genetic, epigenetic and fragmentomic alterations represent complementary information from cfDNA, yet are typically evaluated through multiple workflows. The duet platform provides complete genetics whilst simultaneously providing highly accurate epigenetic and fragmentomic information from a single low input sample, creating new opportunities for integrated biomarker discovery and more sensitive ctDNA detection.

Through a novel single-stranded ligation approach, we demonstrate improved methylation calling sensitivity and the elimination of hypomethylation artefacts associated with other epigenetic sequencing approaches, whilst maintaining high genetic and epigenetic accuracy. In clinical samples, duet 6-base data enabled concurrent extraction of epigenetic features derived from 5mC and 5hmC profiles, genetic features including sequence variation and mutational signatures, and fragmentomic features including fragment length distributions, nucleosome occupancy patterns and 6-base end motifs. We further assessed analytical limit of detection using contrived samples and evaluated the impact of integrating genetic and epigenetic features for ctDNA detection. Finally, we demonstrate elimination of hypomethylation artifacts that would otherwise confound deconvolution and tissue of origin (TOO) analyses of cfDNA.

Together, these data demonstrate that simultaneous profiling of genetics, epigenetic and fragmentatomic information with 6-base cfDNA data provides a more comprehensive view of tumour-associated biology than any single modality alone. The single stranded duet enables biomarker discovery supporting ctDNA detection, tissue-of-origin analysis, MRD assessment, disease monitoring and early cancer detection from liquid biopsy samples.

Poster Presentation: Integrated 6-base cfDNA profiling reveals complementary genetic, epigenetic and fragmentomic biomarkers, enabling the selection of the most powerful biomarker combinations for cancer detection

Annelie Johansson

Bioinformatics Scientist

biomodal

Cell-free DNA (cfDNA) contains multiple layers of biological information, including epigenetic modifications, genetic alterations and fragmentation patterns that are informative for cancer detection. However, these features are typically profiled using separate assays, increasing sample requirements and analytical complexity. We evaluated 6-base sequencing’s ability to simultaneously capture complementary cfDNA signals from a single sample and support multimodal biomarker discovery in colorectal cancer (CRC).

Using duet evoC, we sequenced 10 ng cfDNA from healthy individuals and patients with Stage I-IV CRC. The assay simultaneously identifies the four canonical bases, distinguishes 5-methylcytosine (5mC) and 5-hydroxymethylcytosine (5hmC) and preserves native fragmentomic information. This enabled concurrent extraction of epigenetic features derived from 5mC and 5hmC profiles, genetic features including sequence variation and mutational signatures, and fragmentomic features including fragment length distributions, nucleosome occupancy patterns and 6-base end motifs.

Independent machine-learning classifiers trained on epigenetic, genetic or fragmentomic features discriminated CRC from healthy, demonstrating that all modalities capture disease-associated information. However, the relative contribution of biomarker classes varied across disease stages and samples, indicating that distinct cfDNA features reflect complementary aspects of tumour biology. Epigenetic, genetic and fragmentomic classifiers showed overlapping but non-identical classification patterns, suggesting substantial orthogonality between modalities. Integration of modality-specific predictions consistently improved performance compared with individual models, highlighting the value of combining multiple cfDNA-derived signals within a unified analytical framework.

These findings demonstrate that simultaneous profiling of methylation, hydroxymethylation, mutations and fragmentation patterns can provide a more comprehensive view of tumour-associated biology than any single modality alone. By preserving multiple complementary biomarker classes within a single workflow, 6-base sequencing enables adaptive multimodal liquid biopsy strategies that accommodate biological heterogeneity across patients and disease stages. This integrated approach provides a foundation for next-generation biomarker models that leverage the most informative cfDNA signals, supporting more precise strategies for cancer detection and monitoring.

Poster Presentation: Fragment-level integration of epigenetic and genetic signals for ultra-sensitive ctDNA detection in liquid biopsy and MRD applications

Pawel Gardzielewski

Head of Sales, EMEA Region

biomodal

Sensitive detection of circulating tumour DNA (ctDNA) is critical for liquid biopsy applications including early cancer detection and minimal residual disease (MRD) monitoring, where disease-associated molecules may be present at very low abundance. Genetic and epigenetic alterations represent complementary sources of information within cfDNA, yet are typically evaluated independently. The 6-base genome, provided by duet evoC, provides the canonical 4-base genome whilst simultaneously distinguishing 5-methylcytosine (5mC) from 5-hydroxymethylcytosine (5hmC) to provide the 5th and 6th, epigenetic bases. The 6-base genome has been shown to be a powerful tool for the discovery of biomarkers of early biological change and provides mechanistic insight across important applications including oncology, liquid biopsy and neurology.

Here we present the next evolution of the duet product portfolio. Through a novel single-stranded ligation approach, we demonstrate markedly improved material recovery and methylation calling sensitivity, whilst maintaining high genetic and epigenetic accuracy. Single-stranded ligation preserves original cfDNA strands, whereas traditional end-repair fills in 5′ overhangs with unmodified cytosines, reducing sensitivity, and degrades 3′ overhangs, lowering information content. Benchmarking against alternative sequencing workflows confirmed improved methylation calling performance, accurate genetic variant calling performance, including C>T variants at CpG sites, and accurate determination of fragmentomic features.

Using contrived samples containing methylated and unmethylated samples of genetically distinct backgrounds, we assessed analytical limit of detection from genetic features, epigenetic features, and both combined. Combining accurate methylation and genetic calls enabled detection in the low parts-per-million range. By simultaneously capturing genetic variation, 5mC and 5hmC, 6-base sequencing provides multiple independent layers of evidence from a single cfDNA sample, offering a clinically relevant framework for ctDNA detection in MRD monitoring and early cancer detection.

Poster Presentation: Removal of end-repair from liquid biopsy library preparation reduces hypomethylation artefacts and improves fragment-level accuracy in duet cfDNA assays for improved ctDNA detection and tissue of origin determination

Tom Charlesworth, PhD

Director of Market Strategy & Corporate Development

biomodal

End-repair and A-tailing (ERAT) is a popular method in the preparation of DNA fragments for sequencing in methylation assays.

However, the end repair step introduces bases that were not originally present within the source material. This is particularly relevant when unmodified cytosines are added in the place of cytosines that were methylated or hydroxymethylated in the original DNA. Furthermore, the polymerases used in end repair can act from nicks internal to a DNA molecule and so can replace large portions of it with non-original nucleotides. This artificially suppresses the apparent levels of methylation that are detected in the assay and, in the most extreme cases, lead to fragments appearing to be artefactually heavily (or entirely) hypomethylated.

Analysis of methylation in cfDNA relies upon the accurate determination of the modification status of each cytosine at the level of individual DNA fragments. Hypomethylation artefacts can dramatically impede the utility of these assays in cases such as MRD detection in liquid biopsies where tumor-derived fragments are present at very low levels.

The duet cfDNA assays (both 5 base and 6 base) ligate sequencing adaptors directly to single-stranded molecules without an end-repair step. Here, we show that this removes the apparent hypomethylation artefact that is present in other assays that rely upon end repair followed by enzymatic conversion for methylation analysis.

The elimination of hypomethylation artifacts improves methylation limit of detection and therefore improves the ability of the assay to detect ctDNA when compared to approaches that use end repair and A-tailing. This distinction improves the power of the technology to discover the most performative liquid biopsy biomarkers using 5mC, 5hmC, complete genetics, including C>T variants, and fragmentomic information.

Find the venue

One sample. One workflow. One solution.

Here are the relevant biomodal resources for information. Find poster presentation information, case studies, interviews, and more.

Products

The duet family | biomodal The duet product family Have it all. Without compromise. Generate genetic and epigenetic insights from the same sample without compromising

Discover more

Attending from biomodal

Paweł Gardzielewski, PhD

Regional Head of Sales, EMEA
Tom Charlesworth

Tom Charlesworth, PhD

Director of Market Strategy and Corporate Development

Register now

Meet our team at the event

Meet us at the event!

EACR Lbx Lyon 22-24SEPT26

Stay up to date

Explore recent biomodal news and the events that we’ll be attending in the near future.

What are you looking for?