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Rapid identification of bacterial isolates using microfluidic adaptive channels and multiplexed fluorescence microscopy. | LitMetric

AI Article Synopsis

  • The study showcases a new technology, Adaptive Channel Bacterial Capture (ACBC), which effectively captures, enriches, and identifies bacterial pathogens from low-density samples with nearly perfect efficiency.
  • This method uses simple fabrication techniques and can capture various bacteria, including common pathogens, even when present in concentrations below 1000 cells per mL.
  • The ACBC device can also quickly determine antibiotic susceptibility of identified bacteria using fluorescence imaging and machine learning techniques, combining bacterial capture and rapid testing in a single tool.

Article Abstract

We demonstrate the rapid capture, enrichment, and identification of bacterial pathogens using Adaptive Channel Bacterial Capture (ACBC) devices. Using controlled tuning of device backpressure in polydimethylsiloxane (PDMS) devices, we enable the controlled formation of capture regions capable of trapping bacteria from low cell density samples with near 100% capture efficiency. The technical demands to prepare such devices are much lower compared to conventional methods for bacterial trapping and can be achieved with simple benchtop fabrication methods. We demonstrate the capture and identification of seven species of bacteria with bacterial concentrations lower than 1000 cells per mL, including common Gram-negative and Gram-positive pathogens such as and . We further demonstrate that species identification of the trapped bacteria can be undertaken in the order of one-hour using multiplexed 16S rRNA-FISH with identification accuracies of 70-98% with unsupervised classification methods across 7 species of bacteria. Finally, by using the bacterial capture capabilities of the ACBC chip with an ultra-rapid antimicrobial susceptibility testing method employing fluorescence imaging and convolutional neural network (CNN) classification, we demonstrate that we can use the ACBC chip as an imaging flow cytometer that can predict the antibiotic susceptibility of cells after identification.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11409657PMC
http://dx.doi.org/10.1039/d4lc00325jDOI Listing

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