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Reimertz, J. M.

Publications and source records attributed to Reimertz, J. M..

2 recordsLinked to original sources

Conserved phenotype and function of human brain border-associated macrophages in iPSC-derived models

Border-associated macrophages (BAMs) are increasingly implicated in protective brain functions including the removal of pathogenic material such as amyloid-beta (A{beta}). However, there is a lack of available and deeply characterized human BAM models. Here, we report that postnatal transplantation of induced pluripotent stem (iPS) cell-derived hematopoietic progenitors to the murine brain sufficiently chimerizes the brain border immune compartment to allow functional interrogations. Human xenotransplanted BAMs (xBAMs) line the leptomeninges and brain vasculature beyond the glia limitans. Via single-cell RNA sequencing, we show that a conserved transcriptional signature distinguishes BAMs from microglia across species origin, age, and genetic background. Both xBAMs and murine BAMs are defined by a hyper-endocytic phenotype and function, surpass other brain macrophages in acute A{beta} scavenging, and exhibit compartment-restricted sampling of parenchymal material. Using a modified differentiation protocol, we find that we can generate iPS-derived BAM-like cells (iBAMs) in vitro, which are also characterized by a hyper-endocytic phenotype and enhanced engulfment capacity relative to iPS-derived microglia-like cells (iMGLs). Together, these data define a conserved hyper-endocytic BAM phenotype and provide a toolbox for studying human BAMs both in vivo and in vitro.

neuroscience↗

The circadian clock regulates scavenging of fluid-borne substrates by brain border-associated macrophages

Circadian disruptions perturb the brain and immune system and increase the risk of developing Alzheimers Disease (AD), yet whether this involves dysregulation of brain immunity remains less clear. Here, we perform single-cell RNA sequencing of the brain immune compartment around the day-night cycle and identify brain border-associated macrophages (BAMs) as highly rhythmic cells. During the rest phase, we find that BAMs exhibit coordinated upregulation of endocytic genes and enhanced uptake of extracellular fluid-borne material including amyloid-beta (A{beta}). Rhythmicity in BAM scavenging is regulated by the clock gene Bmal1, mediated by the endocytic receptor CD206, and perturbed with age. In a mouse model of AD, we show that deletion of Bmal1 in BAMs worsens perivascular and leptomeningeal A{beta} plaque burden. Our results identify endocytosis as a specialized and rhythmic BAM function and identify perturbed timing of brain border immune functions as a potential mechanism by which circadian disruptions precipitate amyloidosis.

neuroscience↗