Dried whole blood protocol enables extraction-free RNA detection for point-of-care diagnostics
The study reports a blood drying protocol that enables direct RNA amplification from whole blood without extraction, purification, or cold-chain logistics. Investigators demonstrated high detection sensitivity, achieving 10 copies per microliter for Zika virus and 1 international unit per microliter for hepatitis C virus, with scalability to single-copy sensitivity and multiplexed target detection. By combining thermal stabilization with primer-limited reverse transcription, the platform preserves RNA in a dried matrix that can be repeatedly accessed for spatially resolved enzymatic amplification. The system operates with lyophilized reagents and a portable fluorometer, offering a field-deployable, extraction-free diagnostic approach particularly suited for decentralized testing in low-resource settings.
The original study
Amplification of RNA for identification of Zika and HCV in whole blood.
- Authors
- Lim J, Lee H, Wester M, Koprowski K, Van AB, Valera E, et al.
- Journal
- Science advances
- Type
- Journal Article
- PMID
- 42696600
Original abstract
Direct RNA amplification from whole blood is fundamentally limited by rapid enzymatic degradation and inhibitory matrix effects. Here, we present a blood drying protocol that enables sensitive and robust RNA detection without the need for extraction, purification, or cold-chain logistics. Using whole blood, the platform achieves high detection sensitivity, down to 10 copies per microliter for Zika virus and 1 international unit per microliter for hepatitis C virus (HCV). We further demonstrate that the protocol can be scaled to larger blood volumes and achieve single-copy sensitivity without any sample loss. This is accomplished through thermal treatments of the sample combined with a primer-limited reverse transcription step, which together stabilize RNA within a dried blood matrix and permit spatially resolved enzymatic amplification. The system supports multiplexed detection from a single sample, enabling simultaneous identification of multiple targets. Separately, we introduce a concept wherein the very few copies of the preserved RNA within the matrix can be accessed repeatedly for molecular analysis. Furthermore, we demonstrated the detection of Zika and HCV using a portable fluorometer for point-of-care (POC) uses. With lyophilized reagents and minimal instrumentation such as a heater and an inexpensive portable fluorometer, this platform enables robust, reusable, and field-deployable diagnostics, advancing toward truly accessible on-site RNA testing in urgent care or low-resource settings from whole blood.