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Depletion of Mouse Cells from Human Tumor Xenografts Significantly Improves Downstream Analysis of Target Cells
Published on: July 29, 2016
Dissecting cell-free DNA fragmentation variation in tumors using cell line-derived xenograft mouse
Ruiqing Fu1, He Amy Su2, Yi Zhao3
1Singlera Genomics (Shanghai) Ltd., Shanghai, China.
Abstract:
Cell-free DNA (cfDNA) is increasingly studied for its diverse applications in non-invasive detection. Non-randomly cleaved by nucleases and released into the bloodstream, cfDNA exhibits a variety of intrinsic fragmentation patterns indicative of cell status. Particularly, these fragmentation patterns have recently been demonstrated to be effective in predicting cancer and its tissue-of-origin, owing to increased variation of fragmentation features observed in tumor patients. However, there remains a lack of detailed exploration of altered cfDNA fragmentation profiles in tumors, which consist of a mixture of both non-tumor cfDNA and circulating tumor DNA (ctDNA). Hence, we leveraged the human tumor cell line-derived xenograft (CDX) mouse model, where different tumor cell lines were implanted into different anatomical sites, to isolate pure ctDNA and separately investigate the fragment properties of CDX-cfDNA and ctDNA. We found an enrichment of short cfDNA fragments in both CDX-cfDNA and ctDNA compared to normal plasma cfDNA, with more elevated short fragments in ctDNA. Moreover, the CDX-cfDNA fragmentation features distinguished between CDX models of different tumor cell lines, while the ctDNA fragmentation features conversely discriminate between CDX models of different anatomical sites. The results suggested that both non-tumor cfDNA and ctDNA contribute to the increased variation observed in tumors, and that cfDNA fragmentation may be highly variable and susceptible to regulations by both original cells and cells within the local niche.
Insights
Cell-free DNA (cfDNA) fragmentation patterns reveal insights into cancer. Short cfDNA fragments are enriched in tumors, with distinct patterns differentiating cell lines and anatomical sites.
Area of Science:
- Biochemistry
- Genomics
- Molecular Biology
Background:
- Cell-free DNA (cfDNA) shows promise for non-invasive diagnostics.
- cfDNA fragmentation patterns can indicate cell status and predict cancer.
- Tumor cfDNA is a mix of tumor and non-tumor DNA, complicating analysis.
Purpose of the Study:
- To investigate cfDNA fragmentation profiles in a controlled xenograft model.
- To differentiate cfDNA and circulating tumor DNA (ctDNA) fragmentation.
- To understand the contributions of tumor and non-tumor cfDNA to fragmentation patterns.
Main Methods:
- Utilized human tumor cell line-derived xenograft (CDX) mouse models.
- Implanted different tumor cell lines into various anatomical sites.
- Isolated and analyzed cfDNA and ctDNA fragment properties.
Main Results:
- Enrichment of short cfDNA fragments observed in both CDX-cfDNA and ctDNA.
- ctDNA showed more elevated short fragments compared to CDX-cfDNA.
- CDX-cfDNA features distinguished tumor cell lines, while ctDNA features discriminated anatomical sites.
Conclusions:
- Both non-tumor cfDNA and ctDNA contribute to altered fragmentation in tumors.
- cfDNA fragmentation is highly variable and influenced by cellular origin and local environment.
- Fragmentation analysis offers a nuanced approach to understanding tumor biology.
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