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Alsalman, M.

Publications and source records attributed to Alsalman, M..

2 recordsLinked to original sources

Hippocampal cell- and circuit-specific differences in mitochondrial form and function

Mitochondrial morphology varies by neuronal cell type and subcellular compartment; however, the functional significance of these differences is unclear. Hippocampal CA2 neurons are enriched for genes encoding mitochondrial proteins compared to CA1 neurons, suggesting a difference in metabolic demand across hippocampal circuits. However, whether CA2 neuron mitochondria are structurally or functionally distinct to support circuit-specific energy demands is unknown. Here we compared mitochondrial morphology, protein expression, and calcium levels across CA1 and CA2 circuits. We found mitochondria in CA2 dendrites were larger than mitochondria in CA1 dendrites. However, both subregions harbored larger mitochondria in the entorhinal cortex (EC)-contacting distal dendrites compared to CA3-contacting proximal dendrites. Together, these data demonstrate both cell type- and input-specific regulation of mitochondrial morphology that likely influences the function of these distinct circuits. To determine whether differences in mitochondrial fission or fusion account for cell and/or layer specific differences in morphology, we immunostained for OPA1 and MFF, which showed a general enrichment in distal dendrites relative to proximal dendrites, and an unexpected increase in CA1 distal dendrites compared to CA2 distal dendrites. To show whether these morphological differences result in functionally distinct mitochondria, we measured mitochondrial calcium levels in live slices. We found a striking enrichment of mitochondrial calcium levels in CA2 distal dendrites relative to proximal dendrites, and this layer-specific effect was significantly different from that in CA1 dendrites at baseline and after activity. Collectively, these findings reveal discrete morphological and functional differences in mitochondria across hippocampal subregions and dendritic layers, which likely confer unique circuit properties and/or vulnerabilities to disease.

neuroscience↗

Pericyte and Endothelial Cell Responses within Murine Cerebral Capillaries After Blood Flow Cessation

ABSTRACT/SUMMARYBlood flow provides critical inputs for mechanisms governing vascular homeostasis. Altered hemodynamics can therefore trigger a wide range of cellular responses in blood vessels. Endothelial cells (ECs) downstream of atherosclerotic plaques for instance are exposed to turbulent flow, activating inflammatory pathways that promote immune cell infiltration. In conditions like stroke and myocardial infarction, the abrupt loss of blood flow prompts responses in vascular cells such as ECs and pericytes (PCs) to adapt to ischemic or no-flow conditions. To better understand how cerebral capillary ECs and PCs react to the sudden loss of blood flow, we used a murine brain slice model cultured for 12- and 24-hours in artificial cerebrospinal fluid (aCSF) with 95% oxygen supplementation. As expected, inflammation mediators were upregulated in cultured slices compared to non-cultured samples, particularly those associated with leukocyte recruitment. Additionally, transcriptional markers of extracellular matrix (ECM) remodeling and cell-ECM interactions were elevated, consistent with reduced PC coverage along capillaries. We initially presumed these changes reflected blood-brain barrier (BBB) degradation, but instead we found an increase in mRNA transcripts for EC junctions and stable protein levels for junction molecules, with an apparent rearrangement of Claudin5-based tight junctions. Some capillaries also exhibited reduced diameters, suggesting constriction by PCs or a subset thereof. Consistent with these observations, we found an upregulation of the vasoconstrictor Endothelin-1 (ET-1) with its receptors and contractile proteins found in a subpopulation of PCs. Suppressing ET-1 activity prevented Claudin5 upregulation, indicating that ET-1 might regulate microvascular constriction and associated changes in endothelial tight junctions. Overall, these results suggest that in the absence of blood flow, PCs contribute to capillary wall remodeling by (i) potentially mediating a mechanism driven by ET-1 that affects EC Claudin5 dynamics, and (ii) reducing capillary ECM and detaching from microvessel walls.

cell biology↗