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Biology subjects

Chan, W. C. W.

Publications and source records attributed to Chan, W. C. W..

2 recordsLinked to original sources

Defining the multiplex probe panel for detecting mutating viruses with high clinical sensitivity

Nucleic acid technology has emerged as an important diagnostic for infectious diseases, cancer, cardiovascular diseases, and other diseases. However, mismatches between the probes and targets can lead to misdiagnosis. Here we determine how many mismatches between the probe and target lead to poor clinical performance and respond by developing a rationale multiplex strategy to overcome this detection problem. We found that the probe-target mismatches of greater than 20% yielded clinical sensitivity of 22% or less, rendering the diagnostic test useless. We designed probe panels to improve the clinical sensitivity. We tested our multiplex probe strategy using hepatitis C virus as the model pathogen because this virus has high mutation rates. We showed that we can improve the clinical sensitivity for detecting hepatitis C virus from 31 to 89% when we designed and applied a four-probe panel to the diagnostic test instead of a single probe system. Interestingly, increasing beyond four probes did not significantly increase the clinical sensitivity. We present a strategy to overcome the poor clinical sensitivity of nucleic acid tests for mutating genetic targets. Incorporating this panel design strategy can lead to improved diagnostic test performance, fewer false negatives and more accurate treatment planning for patients.

molecular biology↗

Gas vesicle-blood interactions enhance ultrasound imaging contrast

Gas vesicles (GVs) are genetically encoded, air-filled protein nanostructures of broad interest for biomedical research and clinical applications, acting as imaging and therapeutic agents for ultrasound, magnetic resonance, and optical techniques. However, the biomedical applications of GVs as a systemically injectable nanomaterial have been hindered by a lack of understanding of GVs interactions with blood components, which can significantly impact in vivo performance. Here, we investigate the dynamics of GVs in the bloodstream using a combination of ultrasound and optical imaging, surface functionalization, flow cytometry, and mass spectrometry. We find that erythrocytes and serum proteins bind to GVs and shape their acoustic response, circulation time, and immunogenicity. We show that by modifying the GV surface, we can alter these interactions and thereby modify GVs in vivo performance. These results provide critical insights for the development of GVs as agents for nanomedicine.

synthetic biology↗