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Biology subjects

Sistermans, E. A.

Publications and source records attributed to Sistermans, E. A..

2 recordsLinked to original sources

A machine learning approach to infer DNase1L3 activity from plasma cell-free DNA fragmentomics

DNase1L3 is an endonuclease that fragments DNA during apoptosis and digests DNA from microparticles in plasma, shaping key features of cell-free DNA (cfDNA) and maintaining extracellular DNA homeostasis, a process implicated in autoimmunity. The common missense variant p.Arg206Cys (R206C) affects cfDNA through a non-linear allele dosage effect, with limited effects in heterozygotes and strong effects in homozygotes. Therefore, commonly used models trained on fragmentomics from individuals with normal DNase1L3 activity perform poorly in R206C homozygotes. To address this, we analyzed cfDNA sequencing data from 129,676 Non-Invasive Prenatal Tests and validated R206C genotypes in a selection of 169 matching plasma samples. Supervised and unsupervised learning were used to infer DNase1L3 activity from cfDNA fragmentation properties. Our models accurately identify R206C homozygotes using as little as 10,000 cfDNA fragments, outperforming genotype imputation. However, unsupervised analysis reveals few samples that cluster with homozygotes but lack the corresponding genotype, suggesting that our method also identifies other or downstream effects of DNase1L3 impairment. Conversely, some R206C homozygotes initially lacked the aberrant fragmentome, but longitudinal follow-up across subsequent pregnancies shows that they develop aberrant fragmentomes over time. These findings enable the identification of samples with impaired DNase1L3 activity directly from sequencing data, providing a practical approach to improve interpretation and robustness of cfDNA-based diagnostics across clinical applications.

genomics↗

Breaking Bad: Exploring & Complementing the Effects of the DNASE1L3 p.Arg206Cys Variant on Cell-Free DNA from an Isogenic Cell Line Model

DNASE1L3 is a key endonuclease, essential for proper fragmentation and clearance of cell-free DNA (cfDNA). The p.R206C common variant impairs DNASE1L3 secretion and activity, causing aberrant cfDNA fragmentation and therefore affecting liquid biopsy-based screening and diagnostics. Existing studies on DNASE1L3 relied on resource-intensive murine models or plasmid-based overexpression, which do not accurately represent native expression. To address this, we developed an isogenic HEK293T cell line model by using CRISPR Prime Editing for endogenous expression of DNASE1L3R206C. We analyzed the cfDNA composition directly from conditioned culture medium and found that fragment size distributions in mutant cells mimics the hypofragmented profiles previously observed in plasma samples from p.R206C carriers. We also showed that in vitro treatment of hypofragmented cfDNA with recombinant wildtype DNASE1L3 could enrich for mononucleosomal fragments, with fragment end-motifs characteristic of DNASE1L3 cleavage activity. This could open avenues for DNASE1L3 as a candidate pre-treatment agent to improve the accuracy and efficiency of cfDNA sequencing-based diagnostics in hypofragmented liquid biopsies. These findings demonstrate that our isogenic cell line model provides a controlled system to study cfDNA fragmentation biology and DNASE1L3 function.

molecular biology↗