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Quiroz, V.

Publications and source records attributed to Quiroz, V..

2 recordsLinked to original sources

Functional export of NDM-7 to outer membrane vesicles in Klebsiella pneumoniae compromises imipenem and cefiderocol activity

The carbapenemases KPC and NDM are the most widespread determinants of carbapenem resistance in Klebsiella pneumoniae. Whereas KPC is a soluble periplasmic serine-{beta}-lactamase, NDM is a membrane-anchored metallo-{beta}-lactamase (MBL), a feature that promotes its incorporation into outer membrane vesicles (OMVs). OMVs are naturally released nanoparticles that deliver diverse bioactive cargo, including enzymes, virulence factors, and signaling molecules, and may contribute to antibiotic resistance. Here, we investigated the export and activity of carbapenemases in OMVs produced by carbapenem-resistant Klebsiella pneumoniae clinical isolates expressing NDM-7, an emerging variant, or KPC-2, as well as in isogenic laboratory-derived K. pneumoniae strains producing NDM-1, NDM-7 or KPC-2. NDM enzymes were detected in vesicles released by NDM-producing strains, whereas KPC-2 remained confined to the cellular fraction and was not observed in OMVs. OMVs contained catalytically active NDM enzyme and conferred protection to susceptible K. pneumoniae against imipenem. Importantly, NDM-positive OMVs also partially restored bacterial growth in the presence of cefiderocol, a siderophore cephalosporin used to treat infections caused by MBL producers. This protective effect was more pronounced for NDM-7 than for NDM-1. Together, these findings show that the clinically emerging NDM-7 variant is efficiently packaged into OMVs in K. pneumoniae and remains enzymatically active, allowing extracellular antibiotic degradation and conferring protection to susceptible bacteria exposed to carbapenems and cefiderocol.

microbiology↗

Precision in Spinal Cord Injury Research: A Novel Electromagnetic Impactor for a Consistent Porcine Model

PurposeReplicating spinal cord injury (SCI) in large animals is necessary for evaluating therapeutics for potential human translation, yet there is currently no commercial, standardized device for inducing SCI. We present the fabrication and testing of a custom impactor device for producing repeatable contusion SCI in porcine models. MethodsWe first designed and built the device. Mechanical modeling was subsequently utilized to calibrate our benchtop testing setup. Benchtop verification was performed to measure impact force post calibration. We then used the device to generate a contusion SCI model in 2 pigs and the results were compared to an uninjured pig. Intraoperative ultrasound was used to visualize a hematoma in the injured spinal cord. Hematoxylin-eosin (H&E) and Massons trichrome staining were used to confirm injury presence on ex vivo spinal cord samples. ResultsMechanical modeling forces matched benchtop impact forces within 1.4 N, indicating successful calibration of the testing setup. Our device demonstrated repeatability and the potential for modulating injury severity on the benchtop. Impactor forces were demonstrated across a range from 12.8 to 67.6 N, with variability remaining within 0.2 to 0.7 N standard deviation. The device induced two contusion injuries of different severity in vivo, confirmed by intraoperative ultrasound imaging and post-excision histology of the spinal cord. ConclusionOur impactor device is a major advancement towards producing repeatable and titratable contusions in large animal SCI models.

bioengineering↗