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Henze, D. E.

Publications and source records attributed to Henze, D. E..

2 recordsLinked to original sources

Spatial and molecular insights into microglial roles in cerebellar aging

Aging induces region-specific functional decline across the brain. The cerebellum, critical for motor coordination and cognitive function, undergoes significant structural and functional changes with age. The molecular mechanisms driving cerebellar aging--particularly the role of cerebellar glia, including microglia--remain poorly understood. Here, we used single-nuclei RNA sequencing (snRNA-seq), microglial bulk RNA-seq, and multiplexed error-robust fluorescence in situ hybridization (MERFISH) to characterize transcriptional changes associated with cellular aging in the mouse cerebellum. We discovered that microglia exhibited the most pronounced age-related changes of all cell types and that their transcriptional signatures pointed to enhanced neuroprotective immune activation and reduced lipid-droplet accumulation compared to hippocampal microglia. Furthermore, cerebellar microglia in aged mice, compared to young mice, were found in closer proximity to granule cells. This relationship was characterized using the newly defined neuron-associated microglia score, which captures proximity-dependent transcriptional changes and suggests a novel microglial responsiveness. These findings underscore the unique adaptations of the cerebellum during aging and its potential resilience to Alzheimers disease (AD) related pathology, providing crucial insight into region-specific mechanisms that may shape disease susceptibility.

neuroscience↗

Simultaneous analysis of single-cell gene expression and morphology provides new insight into how microglia change with age

Cellular morphology is intimately connected with function. While the link between morphology and functional states has been studied extensively, the role of subcellular transcript localization in cellular function remains unclear. Here we use microglia, the brains resident macrophages, as a model to dissect the interaction of morphology, transcript localization, and function. Using multiplexed error-robust fluorescence in situ hybridization combined with fluorescent immunohistochemistry, we analyzed transcript distribution and morphology simultaneously in young and aged mouse brains. Our approach revealed how mRNA spatial organization varies across microglial states. We identified distinct transcript localization patterns within microglial processes and uncovered morphological heterogeneity within transcriptomically defined populations. Notably, we found a subpopulation of disease-associated microglia with a ramified morphology (displaying numerous processes), challenging the conventional assumption between morphology and microglial states. Finally, we found that aging not only alters the distribution of compartmentalized mRNAs but also reshapes their colocalization networks, shifting microglial functions from synaptic maintenance and phagocytic processes in younger brains to migration and catabolic pathways in older brains. Our findings highlight the role of subcellular transcript organization in shaping microglial morphology and function, offering new avenues for studying and modulating microglial states in health, disease, and aging.

neuroscience↗