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Author Spotlight: Integrating Organoid Models with Single-Cell and Spatial Transcriptomics Technologies
Published on: March 29, 2024
Multidimensional fragmentomic profiling of cell-free DNA released from patient-derived organoids
Jaeryuk Kim1,2,3, Seung-Pyo Hong1,2,3, Seyoon Lee1,2,3
1Genomic Medicine Institute, Medical Research Center, Seoul National University, Seoul, Republic of Korea.
Background:
Fragmentomics, the investigation of fragmentation patterns of cell-free DNA (cfDNA), has emerged as a promising strategy for the early detection of multiple cancers in the field of liquid biopsy. However, the clinical application of this approach has been hindered by a limited understanding of cfDNA biology. Furthermore, the prevalence of hematopoietic cell-derived cfDNA in plasma complicates the in vivo investigation of tissue-specific cfDNA other than that of hematopoietic origin. While conventional two-dimensional cell lines have contributed to research on cfDNA biology, their limited representation of in vivo tissue contexts underscores the need for more robust models. In this study, we propose three-dimensional organoids as a novel in vitro model for studying cfDNA biology, focusing on multifaceted fragmentomic analyses.
Results:
We established nine patient-derived organoid lines from normal lung airway, normal gastric, and gastric cancer tissues. We then extracted cfDNA from the culture medium of these organoids in both proliferative and apoptotic states. Using whole-genome sequencing data from cfDNA, we analyzed various fragmentomic features, including fragment size, footprints, end motifs, and repeat types at the end. The distribution of cfDNA fragment sizes in organoids, especially in apoptosis samples, was similar to that found in plasma, implying occupancy by mononucleosomes. The footprints determined by sequencing depth exhibited distinct patterns depending on fragment sizes, reflecting occupancy by a variety of DNA-binding proteins. Notably, we discovered that short fragments (< 118 bp) were exclusively enriched in the proliferative state and exhibited distinct fragmentomic profiles, characterized by 3 bp palindromic end motifs and specific repeats.
Conclusions:
In conclusion, our results highlight the utility of in vitro organoid models as a valuable tool for studying cfDNA biology and its associated fragmentation patterns. This, in turn, will pave the way for further enhancements in noninvasive cancer detection methodologies based on fragmentomics.
Insights
Three-dimensional organoids offer a novel in vitro model for studying cell-free DNA (cfDNA) fragmentation. This research advances fragmentomics for improved noninvasive cancer detection.
Area of Science:
- Biochemistry
- Genomics
- Cancer Research
Background:
- Fragmentomics of cell-free DNA (cfDNA) shows promise for early cancer detection via liquid biopsy.
- Limited understanding of cfDNA biology and confounding hematopoietic cfDNA hinder clinical translation.
- Existing 2D cell lines inadequately represent in vivo tissue complexity, necessitating advanced models.
Purpose of the Study:
- To introduce three-dimensional (3D) organoids as a novel in vitro model for studying cfDNA biology.
- To perform comprehensive fragmentomic analyses on cfDNA derived from organoid cultures.
- To investigate the utility of organoids in understanding cfDNA fragmentation patterns relevant to cancer detection.
Main Methods:
- Established nine patient-derived organoid lines from normal and gastric cancer lung tissues.
- Extracted cfDNA from organoid culture medium in proliferative and apoptotic states.
- Analyzed cfDNA fragmentomic features (size, footprints, end motifs) using whole-genome sequencing.
Main Results:
- Organoid cfDNA fragment size distribution, particularly in apoptosis, mirrored plasma cfDNA, suggesting mononucleosome occupancy.
- Sequencing depth revealed distinct cfDNA footprints related to DNA-binding proteins.
- Short cfDNA fragments (<118 bp) were enriched in the proliferative state with unique 3 bp palindromic end motifs and repeats.
Conclusions:
- 3D organoid models are effective tools for studying cfDNA biology and fragmentation.
- Organoid-derived fragmentomic data enhance understanding of cfDNA characteristics.
- This approach facilitates advancements in noninvasive cancer detection using fragmentomics.
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