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Biology subjects

Cartwright, A. P.

Publications and source records attributed to Cartwright, A. P..

3 recordsLinked to original sources

Direct Optical Detection of Factor Xa Activity in Minimally Processed Whole Blood

The ability to measure factor Xa activity directly in whole blood samples offers a path toward point-of-care monitoring and personalized anticoagulant dosage, potentially reducing bleeding risk and other anticoagulant-associated complications. We present a strategy to enable direct optical detection of factor Xa in minimally processed whole blood samples. Our strategy relies on a custom FRET-pair labeled DNA-peptide substrate, allowing FRET ratio to be monitored as an indicator of factor Xa activity. Substrates are tethered to a tapered-fiber sensor to allow evanescent detection of fluorescence directly at the sensor surface, minimizing background media interference and enabling detection directly in blood samples. After characterizing the custom substrate and demonstrating the correlation of fiber-based measurements to an existing chromogenic assay, we demonstrate the detection of endogenous factor Xa activity in >85% whole blood. Finally, we demonstrate the detection of therapeutic concentrations of enoxaparin, a widely used anticoagulant, directly in 90% whole blood in less than an hour and correlate these measurements to activated partial thromboplastin time (aPTT) testing. Together, these results indicate a promising strategy to achieve point-of-care factor Xa detection, enabling personalized anticoagulant treatment and reducing adverse outcomes.

bioengineering↗

An Antibody-Based Molecular Switch for Continuous Biosensing

We present a generalizable approach for designing biosensors that can continuously detect specific biomarkers in real time and without sample preparation. This is achieved by converting existing antibodies into target-responsive "antibody-switches" that enable continuous optical biosensing. To engineer these switches, antibodies are linked to a molecular competitor through a DNA scaffold, such that competitive target binding induces scaffold switching and fluorescent signaling of changing target concentrations. As a demonstration, we designed antibody-switches that achieve rapid, sample-preparation-free sensing of digoxigenin and cortisol in undiluted plasma. We showed that, by substituting the molecular competitor, we can further modulate the sensitivity of our cortisol switch to achieve detection at concentrations spanning 3.3 nM to 3.3 mM. Finally, we integrated this switch with a fiber-optic sensor to achieve hours-long continuous sensing of cortisol in buffer with <5-minute time resolution. We believe this modular sensor design can enable continuous biosensor development for many biomarkers.

bioengineering↗

Continuous optical detection of small-molecule analytes in complex biomatrices

Current technology for measuring specific biomarkers - continuously in complex samples, without sample preparation - is limited to just handful of molecules such as glucose and blood oxygen. In this work, we present the first optical biosensor system that enables continuous detection of a wide range of biomarkers in complex samples, such as human plasma. Our system employs a modular duplex-bubble switch (DBS) architecture that converts aptamers into structure-switching fluorescence probes whose affinity and kinetics can be readily tuned. These DBS constructs are coupled to a fiber-optic detector that measures the fluorescence change only within an evanescent field, thereby minimizing the impact of background autofluorescence and enabling direct detection of analytes at physiologically relevant concentrations even in interferent-rich sample matrices. Using our system, we achieved continuous detection of dopamine in artificial cerebrospinal fluid for >24 hours with sub-second resolution and a limit of detection (LOD) of 1 {micro}M. We subsequently demonstrated the systems generalizability by configuring it to detect cortisol with nanomolar sensitivity in undiluted human plasma. Both sensors achieved LODs orders of magnitude lower than the KD of the DBS element, highlighting the potential to achieve sensitive detection even when using aptamers with modest affinity.

biophysics↗