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Biology subjects

Carlstrom, K.

Publications and source records attributed to Carlstrom, K..

2 recordsLinked to original sources

Oligodendroglia as functional effectors of Multiple Sclerosis risk variants

Multiple sclerosis (MS) is a neuroinflammatory disease for which a large number of non-coding single nucleotide polymorphisms (SNPs) have been associated with disease risk/susceptibility. Immune cells have been suggested as the principal functional effector cell types of these common variants. Here, we identify 76 MS-associated SNPs whose loci present accessible chromatin in homeostatic and diseased oligodendroglia (OLG), including both oligodendrocyte precursor cells (OPCs) and mature oligodendrocytes (MOLs). By applying high-throughput functional genomics, we found that a subset of these SNPs led to variant- and cell-specific regulatory effects in human induced pluripotent stem cell-derived oligodendroglia. Phenotypic profiling of these variants indicated that rs483180:PHGDH interfered with human OPC proliferation via long-range chromatin interactions with the S100A6 locus, while variants at rs2248137:CYP24A1 impaired oligodendrocyte differentiation by regulating BCAS1 expression. In addition, variants at rs1415069:DIPK1A enhanced secretion of the cytokine CCL2 by oligodendroglia, suggesting that these variants might be implicated in OLG-driven immune cell recruitment in MS. These findings position oligodendroglia as important drivers of MS pathogenesis through modulation of both their cell-intrinsic oligodendroglial function and intercellular communication by non-coding MS risk variants.

cell biology↗

Axonal mitochondria across species adjust in diameter depending on thickness of surrounding myelin

In the central nervous system (CNS), axons and its surrounding myelin sheaths, generated by oligodendrocytes, greatly depend on each other, where oligodendrocytes provide axons with both trophic and metabolic support. Across spices, assessment of the axon-myelin ultrastructure is the key-approach to visualize de- and re-myelination of axons. However, this assessment omits to provide information on axonal homeostasis or how axon-myelin influence one another. Since mitochondria may adjust in size thus mirroring the intracellular physiological and metabolic status we applied this to myelinated axons in the CNS. We herein show that a large axonal mitochondria diameter correlates with thinner surrounding myelin sheaths across different CNS tracts and species, including human. We also show that the relation between axonal mitochondria diameter and surrounding myelin thickness is a valuable measurement to verify advanced remyelination in two commonly used experimental demyelinating models, namely the cuprizone and the lysolecithin (LPC) model. Lastly, we show that axonal mitochondria adjust in diameter in response to the thickness of the axonal surrounding myelin whereas the opposite adaption was absent. In summary, the link between axonal mitochondria diameter and surrounding myelin thickness provide insight on the axon-myelin relation both during homeostasis and pathological conditions. This link is also translational applicable and can thus contribute to a better understanding on how to study remyelination using experimental models.

neuroscience↗