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Arroyo, G.

Publications and source records attributed to Arroyo, G..

2 recordsLinked to original sources

Pericystic brain transcriptomics reveals molecular signatures of immune activation and neurovascular remodelling in viable and post-treatment porcine neurocysticercosis

Neurocysticercosis (NCC), the infection of the central nervous system by Taenia solium larvae, is a leading cause of acquired epilepsy in endemic regions. While viable cysticerci can persist asymptomatically for extended periods, their spontaneous or drug-induced degradation triggers marked perilesional inflammation and severe neurological symptoms. Despite well-documented histopathological characterisation of these lesion states, the host transcriptional programmes associated with viable parasite persistence and early post-treatment lesion disruption remain poorly understood. To address this gap, we performed the first bulk RNA sequencing of pericystic brain tissue using a physiologically relevant porcine model of NCC. Comparing uninfected controls (n = 3), infected untreated pigs with intact viable cysts (n = 6), and antiparasitic-treated pigs with disrupted cysts (n = 3), we identified distinct transcriptional signatures associated with each disease state. Viable infection was associated with broad transcriptional changes (461 upregulated and 175 downregulated genes), characterised by local immune activation alongside suppression of blood-brain barrier (BBB) remodelling, vascular, and neuronal signalling molecular signatures. The post-treatment state with confirmed BBB disruption was associated with a smaller but directionally distinct response (160 upregulated and 57 downregulated genes), marked by inflammatory signalling and increased expression of genes associated with endothelial activation, vascular regulation, and BBB-associated remodelling. Together, these findings suggest that, while immune engagement is a feature shared across both lesion states, the BBB-associated transcriptional axis shifts substantially following treatment. These results provide an exploratory transcriptomic framework for understanding parasite persistence, treatment-induced neuroinflammation, and neurovascular remodelling in NCC, and highlight candidate pathways and genes for future mechanistic investigation. Author SummaryNeurocysticercosis is a major cause of epilepsy in regions where Taenia solium is endemic. Brain cysts can remain viable for long periods with limited symptoms, but parasite degeneration, whether spontaneous or drug-induced, can trigger damaging neuroinflammation. In this study, we used RNA sequencing in a pig model that closely resembles human disease to characterise how brain tissue responds to viable cysts and to early treatment-induced cyst disruption. We found that viable infection was associated with local immune activation alongside reduced expression of genes involved in blood-brain barrier function. Following antiparasitic treatment, disrupted lesions showed an increased expression of genes linked to vascular and barrier remodelling. These findings suggest that the host transcriptional environment changes substantially after parasite disruption, and highlight molecular pathways that may contribute to neuroinflammation, blood-brain barrier changes, and neurological disease in NCC. As an exploratory first transcriptomic survey in this model, these results provide a candidate framework for future studies aimed at identifying biomarkers and adjunctive therapeutic targets in NCC.

genomics↗

Streptococcus pneumoniae infection of lung epithelial cells induces internalization of surface GPI-anchored proteins through pneumolysin-mediated activation of host Rho GTPases

A return to homeostasis after infection-associated cellular injury can be accelerated by a rapid damage response. S. pneumoniae, a typically asymptomatic colonizer of the host upper respiratory tract, can cause serious and life-threatening infections when it gains access to the lungs and other organs. The cholesterol binding S. pneumoniae pore-forming toxin, pneumolysin (PLY), is central to the induction of host cell damage. Here, we first found that mouse lung infection by S. pneumoniae diminished pulmonary expression of CD73, a glycosylphosphatidylinositol anchored protein (GPI-AP) that modulates inflammation. Infection of the human pulmonary epithelial cell line H292 resulted in a PLY-dependent reduction of not only cell surface CD73, but also the population of surface expressed GPI-APs. The decrease in cell surface GPI-APs was rapid, required pore-forming activity, and could be recapitulated by purified PLY and other cholesterol binding cytolysins. In response to PLY-mediated insult, GPI-APs were not released from the surface of epithelial cells in extracellular vesicles but rather internalized by a mechanism dependent on the Rho GTPases RhoA and Cdc42. Internalization of GPI-APs was associated with lower levels of PLY-induced apoptosis and membrane permeabilization. These findings suggest that internalization of GPI-APs from epithelial cell membranes may constitute a rapid innate repair response to cell damage induced by PLY and other pore forming toxins that could help bacteria evade host defenses as many GPI-APs have roles in immunity. Author summaryStreptococcus pneumoniae causes serious infections that can result in mortality. The pore- forming toxin, pneumolysin (PLY) produced by these bacteria is important for their ability to cause disease. Understanding how the host responds to damage by this toxin can result in better treatment against infection. In this study, we found that PLY-mediated injury results in decreased expression of glycosylphosphatidylinositol anchored proteins (GPI-AP) from the cell surface by internalization. GPI-AP co-localize in cholesterol-rich areas of the membrane where PLY inserts to form pores and cells with decreased surface GPI-APs were associated with less of PLY-induced cell death and membrane permeabilization. These results suggest that GPI-AP are internalized as part of repair mechanisms activated in response to infection-induced cell injury. As many GPI-APs have important roles in the immune response, their removal from the cell may inadvertently help the bacteria establish better infection.

microbiology↗