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Updated: Sep 8, 2025

Determining Genome-wide Transcript Decay Rates in Proliferating and Quiescent Human Fibroblasts
Published on: January 2, 2018
Differential decay of multiple environmental nucleic acid components.
Pedro Fp Brandão-Dias1, Megan Shaffer2, Gledis Guri2
1School of Marine and Environmental Affairs, University of Washington, Seattle, WA, 98105, USA. pedrobdfp@gmail.com.
Environmental DNA (eDNA) and RNA persistence are crucial for biodiversity monitoring. This study reveals distinct degradation rates for various nucleic acid components, offering a molecular clock for precise eDNA dating.
Area of Science:
- Environmental DNA (eDNA) and RNA analysis
- Biodiversity monitoring
- Molecular ecology
Background:
- Environmental nucleic acids (eNA), including DNA and RNA, are vital for biodiversity assessment.
- Accurate interpretation of eNA detections hinges on understanding their environmental persistence and degradation rates.
- Variability in eNA stability complicates precise spatiotemporal monitoring efforts.
Purpose of the Study:
- To quantify the degradation rates of different environmental nucleic acid (eNA) components from bottlenose dolphins (Tursiops truncatus).
- To assess the influence of eNA type (mitochondrial eDNA, ribosomal eRNA, messenger eRNA) and eDNA fragment length on decay rates.
- To evaluate the potential of combining multiple eNA types as a molecular clock for inferring eNA age.
Main Methods:
- A controlled decay experiment was conducted over seven days at 15°C.
- Six eNA components from Tursiops truncatus were analyzed: mitochondrial eDNA of varying lengths, ribosomal eRNA, and messenger eRNA.
- Quantification of target eNAs was performed using digital droplet PCR (ddPCR).
Main Results:
- eNA degradation followed a biphasic exponential model with an initial rapid loss phase (approx. 24 hours) followed by slower degradation.
- Mitochondrial messenger eRNA exhibited the shortest persistence, degrading within four hours.
- Ribosomal eRNA degraded faster than its eDNA counterpart, and longer eDNA fragments degraded more rapidly than shorter fragments.
Conclusions:
- eDNA fragment length can serve as a proxy for degradation, aiding in age estimation.
- Integrating multiple eNA components with distinct stabilities offers a molecular clock approach to enhance spatiotemporal resolution in eNA monitoring.
- Distinguishing between RNA types (ribosomal vs. messenger) is critical due to their divergent stability and interpretability in environmental studies.
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