Point of Care Landmark-class

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
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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.