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Verboven, R.

Publications and source records attributed to Verboven, R..

2 recordsLinked to original sources

S100A8-enriched microglia populate the brain of tau-seeded and accelerated aging mice

Long considered to fluctuate between pro- and anti-inflammatory states, it has now become evident that microglia occupy a variegated phenotypic landscape with relevance to aging and neurodegeneration. However, whether specific microglial subsets converge in or contribute to both processes that eventually affect brain function is less clear. To investigate this, we analyzed microglial heterogeneity in a tauopathy mouse model (K18-seeded P301L) and an accelerated aging model (senescence accelerated mouse prone 8, SAMP8) using cellular indexing of transcriptomes and epitopes by sequencing. We found that widespread tau pathology in K18-seeded P301L mice caused a significant change in the number and morphology of microglia, but only a mild overrepresentation of disease-associated microglia. At the cell population-level, we observed a marked upregulation of the calprotectin-encoding genes S100a8 and S100a9. In 9-months-old SAMP8 mice, we identified a unique microglial subpopulation that showed partial similarity with the disease-associated microglia phenotype and was additionally characterized by a high expression of the same calprotectin gene set. Immunostaining for S100A8 revealed that this population was enriched in the hippocampus, correlating with the cognitive impairment observed in this model. However, incomplete colocalization between their residence and markers of neuronal loss suggests regional specificity. Importantly, S100A8-positive microglia were also retrieved in brain biopsies of human AD and tauopathy patients as well as in a biopsy of an aged individual without reported pathology. Thus, the emergence of S100A8-positive microglia portrays a conspicuous commonality between accelerated aging and tauopathy progression, which may have relevance for ensuing brain dysfunction. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=162 SRC="FIGDIR/small/566543v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@d1e4e1org.highwire.dtl.DTLVardef@98adeorg.highwire.dtl.DTLVardef@7c15aaorg.highwire.dtl.DTLVardef@7265ca_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Enteric glia adopt an activated pro-inflammatory state in response to human and bacterial amyloids

Mounting evidence suggests a role for the microbiome-gut-brain axis in amyloid-associated neurodegeneration, but the pathogenic changes induced by amyloids in the gastro-intestinal tract remain elusive. To scrutinize the early response to amyloids of human and bacterial origin, we challenged primary murine myenteric networks with A{beta}1-42 (vs a scrambled version of A{beta}1-42) and curli (vs culture medium), respectively, and performed shotgun RNA sequencing. Both amyloid types induced a transcriptional signature of DNA damage and cell cycle dysregulation. Using in vitro neurosphere-derived cultures and in vivo amyloid injections we found that enteric glia and smooth muscle cells were the most responsive cell types, showing increased proliferation, {gamma}H2AX burden and SOD2 levels after amyloid challenge. Consistent with this activated state, we identified a pro-inflammatory hub in the transcriptional profile of amyloid-stimulated myenteric networks. Enteric glia were the principal source of the associated cytokines, and in vivo, this was accompanied by an influx of immune cells. Together, these results shed new light on the intrinsic vulnerability of ENS cells to both amyloid species and position enteric glial cell activation as an early driver of neurodegenerative disease progression. Significance statementThe increasing socio-economic impact of Alzheimers disease (AD), long sub-clinical disease progression window, and failure of drug candidates demand mechanistic insight into the early stages of disease development. Epidemiological associations and experimental studies in rodents suggest that the gut may be vulnerable to amyloids and mediate their transfer to the brain. However, whether and how amyloids induce local pathology in the gastro-intestinal wall is not known. We identified a pathogenic program that becomes activated in the gastro-intestinal tract after exposure to amyloid {beta} and curli (the main bacterial amyloid), and show that enteric glia are responsible for creating an amyloid-induced pro-inflammatory environment. This insight of an early response in a distant, more accessible organ than the brain, may have important implications for both disease diagnosis and therapy.

neuroscience↗