Abstract
CRISPR-based diagnostics are powerful tools for nucleic acid detection due to their high specificity and programmability. However, assay sensitivity is often limited by the slow kinetics of the trans-cleavage reaction, which typically proceeds at a rate of ∼0.1 to 1 turnover per second. Here, we present a reaction-transport model and experimental study that analyze and accelerate this limiting step using electric-field-driven isotachophoresis (ITP). Building on the work of Ramachandran and Santiago, we develop a model that captures the coupling among ITP focusing, mixing, and preconcentration with CRISPR enzymatic reaction kinetics. Our analysis identifies two key regimes in ITP-coupled CRISPR reactions and derives analytical approximations for the limiting behaviors in each. Compared to a standard, well-mixed assay, we predict a 10- to 100-fold reduction in reaction duration using ITP. We validate the model with experiments across a range of target concentrations. Our work offers a quantitative framework for understanding and optimizing CRISPR trans-cleavage dynamics and provides guidance to design assays that use electric-field-mediated transport.
| Original language | English |
|---|---|
| Pages (from-to) | 27646-27653 |
| Number of pages | 8 |
| Journal | Analytical Chemistry |
| Volume | 97 |
| Issue number | 50 |
| DOIs | |
| Publication status | Published - 23 Dec 2025 |
| Externally published | Yes |
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