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Ghibaudi, M.

Publications and source records attributed to Ghibaudi, M..

2 recordsLinked to original sources

Phylogenetic variation of immature neurons in mammalian amygdala: high prevalence in primate expanded nuclei projecting to neocortex

Structural changes involving new neurons can occur through stem cell-driven neurogenesis and late-maturing "immature" neurons, namely undifferentiated neuronal precursors frozen in a state of arrested maturation. The latter exist in the cerebral cortex, being particularly abundant in large-brained mammals. Similar cells have been described in the amygdala of some species, although their interspecies variation remain poorly understood. Here, their occurrence, number, molecular expression, and morphology were systematically analyzed in eight diverse mammalian species widely differing in neuroanatomy, brain size, lifespan, and socioecology. We show remarkable phylogenetic variation of the immature neurons in the amygdala, with a significantly greater prevalence in primates. The cells are associated with the amygdalas basolateral complex that in evolution has expanded in primates in conjunction with cortical projections, thus mimicking the general trend of the neocortex. These results support the emerging view that large brains performing complex socio-cognitive functions rely on wide reservoirs of immature neurons.

neuroscience↗

Polysulfide Nanoparticles Ameliorate Ischaemia Reperfusion Injury in Renal Transplantation and Improve Kidney Function Post-Transplantation

Ischemia-reperfusion injury (IRI) is a significant complication in kidney transplantation, often affecting the viability and function of organs. Normothermic machine perfusion (NMP) is a technique used to improve the condition of organs prior to transplantation. In this study, we show that incorporating antioxidant poly(propylene sulfide) nanoparticles (PPS-NPs) during cold-storage and NMP significantly enhances its efficacy in reducing IRI upon porcine kidney transplantation. We found that by scavenging reactive oxygen species, PPS-NPs reduced oxidative stress and inflammation that occurs during ischemia-reperfusion with oxidized DNA reduced 5.3x and both TNF- and complement activation approximately halved. Our studies show that this approach led to significantly improved hemodynamics, better renal function, and tissue health compared to NMP alone. The results suggest that incorporating PPS-NPs into transplantation protocols may expand the pool of kidneys suitable for transplantation and enhance overall transplantation success rates. The broader impact of this work could extend to other organ transplants, suggesting a wider application for nanoantioxidant technologies in organ preservation.

synthetic biology↗