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Volz, M.

Publications and source records attributed to Volz, M..

2 recordsLinked to original sources

Human iPSC-derived CNS and retinal microvasculature-on-a-chip models recapitulate hallmarks of diabetic microvascular pathology

The central nervous system microvasculature (CNS-mv) protects neural tissue from harmful substances while supplying oxygen, nutrients, and signaling molecules. Metabolic diseases such as diabetes induce pathological changes in these microvasculatures, leading to severe outcomes including stroke and diabetic retinopathy. Blood vessels in the brain and retina share similarities and undergo comparable pathological alterations in diabetic patients. However, mechanistic understanding of CNS-mv pathogenesis remains limited due to the lack of physiologically relevant in vitro models. Here, we developed three complementary human iPSC-derived microvascular models: (1) a CNS-mv-on-a-chip for mechanistic studies, (2) scalable 3D microvasculature drops for high-throughput screening, and (3) an inner blood-retinal barrier-on-a-chip incorporating Muller glia. All platforms self-assembled into perfusable networks with high pericyte (PC) coverage and barrier function. We identified the TNF-/NF-{kappa}B pathway as the central mediator of hyperglycemia-induced vascular damage, accompanied by robust induction of inflammatory cytokines IL-1{beta} and IL-6. Importantly, cell-type-specific analysis revealed distinct inflammatory roles: endothelial cells (ECs) predominantly activated TNF-/NF-{kappa}B downstream signaling, whereas pericytes selectively upregulated IL-1{beta}, suggesting a coordinated EC-PC inflammatory crosstalk driving vascular pathology. Functionally, both hyperglycemia and TNF-/IL-1{beta} exposure induced vascular regression, reduced PC coverage, and increased ghost vessel formation, confirming these cytokines as key effectors of diabetic microvascular damage. Uniquely, Muller glia showed divergent behavior from PCs, enhancing their perivascular sheath under inflammation - indicating reactive gliosis rather than protection. Together, these in vitro platforms provide a versatile and physiologically relevant hiPSC-based system for mechanistic studies, screening anti-inflammatory therapeutics and developing glia-targeted interventions.

cell biology↗

Loss of myeloid cannabinoid CB1 receptor confers atheroprotection by reducing macrophage proliferation and immunometabolic reprogramming

Although the cannabinoid CB1 receptor has been implicated in atherosclerosis, its cell-specific effects in this disease are not well understood. Here, we report that male mice with myeloid-specific Cnr1 deficiency on atherogenic background developed smaller lesions and necrotic cores than controls, while only minor genotype differences were observed in females. Male Cnr1 deficient mice showed reduced arterial monocyte recruitment and macrophage proliferation with less inflammatory phenotype. The sex-specific differences were reproducible in bone marrow derived macrophages and blunted by estradiol. Kinase activity profiling revealed a CB1-dependent regulation of p53 and cyclin-dependent kinases. Transcriptomic profiling further unveiled chromatin modifications, mRNA processing and mitochondrial respiration among the key processes affected by CB1 signaling, which was supported by metabolic flux assays. Chronic administration of the peripherally-restricted CB1 antagonist JD5037 inhibited plaque progression and macrophage proliferation, but only in male mice. Finally, CNR1 expression was detectable in human carotid endarterectomy plaques and inversely correlated with proliferation, oxidative metabolism and inflammatory markers, hinting to a possible implication of CB1-dependent regulation in human pathophysiology. In conclusion, impaired CB1 signaling in macrophages is atheroprotective by limiting their arterial recruitment, proliferation and inflammatory reprogramming. The importance of macrophage CB1 signaling seems to be more pronounced in male mice. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=105 SRC="FIGDIR/small/535832v2_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@1d0b2f4org.highwire.dtl.DTLVardef@94f1b4org.highwire.dtl.DTLVardef@8868edorg.highwire.dtl.DTLVardef@1a0b151_HPS_FORMAT_FIGEXP M_FIG C_FIG Graphical summary (created with BioRender.com)

immunology↗