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Biology subjects

Akkermann, T.

Publications and source records attributed to Akkermann, T..

2 recordsLinked to original sources

Nucleic Acid Capture from Human Blood Plasma Uncovers G-Quadruplex Structures

Ultrashort (US) cell-free DNA (cfDNA) is a population of approximately 50-nucleotide single-stranded DNA molecules in human plasma.1-3 Although it holds biological and diagnostic potential, US cfDNA escapes detection by conventional double-stranded library preparation methods.1-3 Independent studies have linked US cfDNA to regulatory genomic regions and to sequences predicted to form noncanonical structures, prompting the hypothesis that higher-order DNA structure contributes to its molecular properties. This interpretation, however, has so far rested on computational prediction rather than experimental evidence. Here we test this hypothesis using computational, biophysical and biochemical approaches. In silico size-selected US cfDNA from 20 healthy donors was selectively enriched at putative quadruplex sequences (PQS) that overlap both experimentally observed quadruplex sequences and accessible chromatin of blood cells. Synthetic oligonucleotides corresponding to the most enriched of these loci adopted predominantly parallel G-quadruplex (G4) structures, as revealed by circular dichroism. Endogenous nucleic acids captured directly from pooled plasma by poly(A)-tailing and immobilization, without extraction, denaturation or annealing at any step, displayed folded G4 structures. Two orthogonal probes detected these structures: the BG4 antibody and the fluorogenic ligand N-methyl mesoporphyrin IX. Reciprocal competition with a third, chemically unrelated G4 ligand, pyridostatin, confirmed the signal. Together, these experiments provide direct experimental evidence for the presence of folded G4 structures in human blood plasma.

molecular biology↗

Primed-to-naive conversion of pluripotent stem cells can be tracked by specific DNA methylation changes for optimized culture conditions

During early embryonic development, cells transition from naive to primed pluripotent state. Various culture conditions have been established to revert primed cells back to naive state, to increase differentiation potential and to reset epigenetic abnormalities. In this study, we modified culture conditions to allow primed-to-naive conversion under feeder-independent and normoxic conditions (FINO medium), which exemplified the need for a quantitative measure of pluripotent states. DNA methylation (DNAm) profiling revealed extensive hypomethylation at naive state, but also significant gains of methylation at specific sites in the genome. We demonstrate that DNAm patterns can be used to benchmark culture protocols. Furthermore, we developed a naive-score based on DNAm at two genomic sites, which can be analyzed by digital PCR to monitor transition between pluripotent states. Our study describes a simplified culture protocol for primed-to-naive conversion, offers insights into the specific DNAm changes, and introduces a robust DNAm-based biomarker to track this process effectively.

cell biology↗