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Frigerio, C. S.

Publications and source records attributed to Frigerio, C. S..

2 recordsLinked to original sources

Differential neuronal vulnerability to C9orf72 repeat expansion driven by Xbp1 transcription signature

A G4C2 repeat expansion in the gene C9orf72 (C9) is the most common genetic cause of sporadic and familial frontotemporal dementia (FTD) and amyotrophic lateral sclerosis (ALS). What determines why cell death is triggered only in specific neuronal populations, while others remain protected or are less susceptible to disease is still an open question. In particular, whether it is the transcriptional response to the accumulation of toxic insults or the initial cellular state that determines their vulnerability is still unknown. We have carried out a large-scale profiling of single cell transcriptional signatures throughout disease development in a Drosophila model of C9 repeat toxicity. This enabled us to monitor transcriptional shifts and track changes in cell populations during disease progression. We have identified neuronal populations which are depleted in response to C9 repeat expression, and therefore vulnerable to toxicity. On the other hand, other neuron types are resistant to toxicity, and maintain their cell number during disease progression. Our findings suggest that a major determinant of vulnerability is the transcriptional state of the cell before it is exposed to C9 repeat expression. We have identified a conserved transcriptional profile that is associated with resistance to C9 repeat toxicity. Neurons resistant to disease display a higher expression of genes involved in protein homeostasis, with Xbp1 identified as a crucial transcription factor determining neuronal vulnerability.

neuroscience↗

Perivascular SPP1 Mediates Microglial Engulfment of Synapses in Alzheimers Disease Models

Microglia are phagocytes of the brain parenchyma, where they interact with neurons to engulf synapses in a context-dependent manner. Genetic studies in Alzheimers disease (AD) highlight dysfunctional phagocytic signaling in myeloid cells as disease-associated pathway. In AD models, there is a region-specific reactivation of microglia-synapse phagocytosis involving complement; however, what drives microglia-synapse engulfment remains unknown. Here, we show that SPP1 (Osteopontin), a glycoprotein associated with inflammation, is regionally upregulated and modulates microglial synaptic engulfment in AD mouse models. Ultrastructural examination revealed SPP1 expression predominantly by perivascular macrophages, a subtype of border-associated macrophages, in the hippocampus of mice and patient tissues. Cell-cell interaction networks of single-cell transcriptomics data suggested that perivascular SPP1 drives microglial functional states in the hippocampal microenvironment of AD mice. Absence of Spp1 expression resulted in failure of microglia to mediate synaptic phagocytosis. This study suggests a critical role for perivascular SPP1 in neuroimmune crosstalk in AD-relevant context.

neuroscience↗