Abstract
With antimicrobial resistance becoming a major threat to healthcare settings around the world, there is a paramount need for rapid point-of-care antimicrobial susceptibility testing (AST) diagnostics. Unfortunately, most currently available clinical AST tools are lengthy, laborious, or are simply inappropriate for point-of-care testing. Herein, we design a 3D-printed microfluidic gradient generator that automatically produces two-fold dilution series of clinically relevant antimicrobials. We first establish the compatibility of these generators for classical AST (i.e., broth microdilution) and then extend their application to include a complete on-chip label-free and phenotypic AST. This is accomplished by the integration of photonic silicon chips, which provide a preferential surface for microbial colonization and allow optical tracking of bacterial behavior and growth at a solid-liquid interface in real-time by phase shift reflectometric interference spectroscopic measurements (PRISM). Using Escherichia coli and ciprofloxacin as a model pathogen-drug combination, we successfully determine the minimum inhibitory concentration within less than 90 minutes. This gradient generator-based PRISM assay provides an integrated AST device that is viable for convenient point-of-care testing and offers a promising and most importantly, rapid alternative to current clinical practices, which extend to 8-24 h.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 4950-4961 |
| Seitenumfang | 12 |
| Fachzeitschrift | LAB on a chip |
| Jahrgang | 22 |
| Ausgabenummer | 24 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 22 Nov. 2022 |
ASJC Scopus Sachgebiete
- Bioengineering
- Biochemie
- Allgemeine Chemie
- Biomedizintechnik
Publikationen
- 1 Dissertation
-
Silicon-Based Optical Sensors for Fungal Pathogen Diagnostics
Heuer, C., 24 Jan. 2024, Hannover: Leibniz Universität Hannover. 131 S.Publikation: Qualifikations-/Studienabschlussarbeit › Dissertation
Open Access
Projekte
- 2 Abgeschlossen
-
Ein universelles markierungsfreies Sensorsystem basierend auf Aptameren und porösem Silizium - Teil 2
Scheper, T. (Projektleiter*in (Principal Investigator)) & Beutel, S. (Projektleiter*in (Principal Investigator))
1 Feb. 2020 → 31 März 2023
Projekt: Forschung
-
Entwicklung von integrierten kontinuierlichen Fließsystemen für transiente Transfektion, Kultivierung und Überwachung von tierischen Zellen
Bahnemann, J. (Projektleiter*in (Principal Investigator))
1 Aug. 2017 → 31 Juli 2022
Projekt: Forschung
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