bioRxiv Science⌕ Search

Biology subjects

Fernando, A. J.

Publications and source records attributed to Fernando, A. J..

2 recordsLinked to original sources

Non-invasive quantification of hepatic necrosis from circulating alanine aminotransferase kinetics in acetaminophen-treated mice in vivo

Histological necrosis is the reference measure of hepatotoxicity but can only be obtained at terminal cull. A time course requires independent cohorts at every timepoint. Circulating alanine aminotransferase (ALT) can be sampled repeatedly in the same animal, and is released in liver injury. We asked whether serial ALT kinetics can be used to estimate histological necrosis in vivo. Forty-five fasted twelve-week-old male C57BL/6J mice received a single intraperitoneal dose of 350 mg/kg acetaminophen (paracetamol). Plasma ALT and microRNA-122 (miR-122) were measured serially from baseline to 48h as cumulative area-under-the-curve (AUC) to cull, against centrilobular necrosis on haematoxylin and eosin sections as reference (range 0 to 59%, mean 32%). A generalised additive model of necrosis on cumulative ALT AUC and time since dosing predicted necrosis with a leave-one-animal-out cross-validated mean absolute error of 7.7% necrotic area (95% CI 5.6 to 10.0; n=49). A panel of traditional regression and machine-learning models all gave equal or larger error, and adding an additional biomarker or regeneration information did not improve prediction. Serial ALT kinetics therefore provide a calibrated, longitudinal measure of hepatic necrosis in vivo and give a more stable estimate of within-group variance for study planning, while supporting reductions in animal use, because one serially-sampled cohort can replace separate cohorts at each timepoint.

pharmacology and toxicology↗

Fluorescence Characterization of Extracellular Vesicles using Single-Molecule Confocal Microscopy

Extracellular vesicles (EVs) are small, membrane-bound particles released by cells into the extracellular environment. They play a pivotal role in cell communication and have recently gained prominence as biomarkers. However, their low abundance and high heterogeneity challenges their accurate characterization using conventional approaches. To enable the specific detection of individual EVs, we coupled EV-specific antibodies labeled with two different fluorophores with fast-flow microfluidics and single-molecule confocal microscopy. This allowed us to determine the concentration of EVs down to femtomolar levels ([~]107 EVs/mL), and we demonstrated the approachs capacity to detect EVs even in the presence of other lipid vesicles. We highlighted the ability to quantify EVs in serum and plasma samples, without the need for purification. Furthermore, we compared the yield of EVs extracted from both serum and plasma using ultracentrifugation and various size exclusion chromatography approaches. Overall, our method offers a highly specific, sensitive and easy-to-use solution for characterizing EVs from different sources.

biophysics↗