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Quintana, J. F.

Publications and source records attributed to Quintana, J. F..

2 recordsLinked to original sources

Murine trypanosomiasis recapitulates transcriptomic features of acute kidney injury

The African trypanosome, Trypanosoma brucei, disseminates systemically in tissues of the infected host resulting in complex immunopathology. The kidneys which are important in the response to the anaemia characteristic of African trypanosomiasis, are prone to acute kidney injury (AKI) from multiple noxious stimuli. Little is known about the transcriptional responses of the kidney to trypanosome infection. To assess the tissue-specific response to infection with Trypanosoma brucei, we profiled the clinicopathologic and transcriptional responses of the kidney in BALB/C (susceptible) and C57BL/6 (tolerant) murine models, at early (7 dpi) and late (21 dpi) time points of infection. Trypanosomes in the renal interstitium, tubular necrosis and inflammation characterised early infection in both mouse strains. By late infection, we observed extensive tubular necrosis in the susceptible BALB/C but reparative tubular regeneration in the tolerant C57BL/6 mice. T.b. brucei infection resulted in significant increases in serum creatinine in both strains. Consistent with the clinicopathologic findings, RNA-seq detected both mouse strain- and time-dependent transcriptional responses in the kidney. These included perturbations in genes associated with solute/ion transport, upregulation of markers of tubular injury, hypoxia, glycolysis, and a profound inflammatory and immune response, mirroring the responses observed in other models of AKI. Differential tissue pathology at late time point is preceded by expansion of CD8+ T cells, profound expression of transcription factors and upregulation of anti-inflammatory pathways in C57BL/6 mice. Our findings demonstrate that experimental T. brucei infection-induced kidney injury (TIKI) is a model of AKI and may have clinical implications for Human African Trypanosomiasis cases, who currently are not routinely screened for markers of kidney function.

microbiology↗

Application of light-sheet mesoscopy to image host-pathogen interactions in intact organs

Human African Trypanosomiasis (HAT) is a disease caused by the extracellular parasite Trypanosoma brucei that affects the central nervous system (CNS) during the chronic stage of the infection, inducing neuroinflammation, coma, and death if left untreated. However, little is known about the structural change happening in the brain as result of the infection. So far, infection-induced neuroinflammation has been observed with conventional methods, such as immunohistochemistry, electron microscopy, and 2-photon microscopy only in small portions of the brain, which may not be representative of the disease. In this paper, we have used a newly-developed light-sheet illuminator to image the level of neuroinflammation in chronically infected mice and we use analyse these data to compare the infection in naive controls. This system was developed for imaging in combination with the Mesolens objective lens, providing sub-cellular resolution for imaging volumes exceeding 39 mm3 in an acquisition time of only 8 hours. The mouse brain specimens were cleared using CUBIC+, followed by antibody staining to locate Glial Fibrillary Acid Protein (GFAP) expressing cells, primarily astrocytes and ependymocytes, used here as a proxy for cell reactivity and gliosis. The large capture volume allowed us to detect GFAP+ cells and spatially resolve the innate responses to T. brucei infection. Based on morphometric analyses and spatial distribution of GFAP+ cells, our data demonstrates a significant increase in cell dendrite branching around the lateral ventricle, as well as dorsal and ventral third ventricles, that are negatively correlated with the branch extension in distal sites from the circumventricular spaces. To our knowledge, this is the first report highlighting the potential of light-sheet mesoscopy to characterise the inflammatory responses of the mouse brain to parasitic infection at the cellular level in intact cleared organs, opening new avenues for the development of new mesoscale imaging techniques for the study of host-pathogen interactions.

immunology↗