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Biology subjects

Ward, E. L.

Publications and source records attributed to Ward, E. L..

2 recordsLinked to original sources

Regulation of Diseases-Associated Microglia in the Optic Nerve by Lipoxin B4 and Ocular Hypertension

BackgroundThe resident astrocyte-retinal ganglion cell (RGC) lipoxin circuit is impaired during retinal stress, which includes ocular hypertension-induced neuropathy. Lipoxin B4 produced by homeostatic astrocytes directly acts on RGCs to increase survival and function in ocular hypertension-induced neuropathy. RGC death in the retina and axonal degeneration in the optic nerve are driven by the complex interactions between microglia and macroglia. Whether LXB4 neuroprotective actions include regulation of other cell types in the retina and/or optic nerve is an important knowledge gap. MethodsCellular targets and signaling of LXB4 in the retina were defined by single-cell RNA sequencing. Retinal neurodegeneration was induced by injecting silicone oil into the anterior chamber of the mouse eyes, which induced sustained and stable ocular hypertension. Morphological characterization of microglia populations in the retina and optic nerve was established by MorphOMICs and pseudotime trajectory analyses. The pathways and mechanisms of action of LXB4 in the optic nerve were investigated using bulk RNA sequencing. Transcriptomics data was validated by qPCR and immunohistochemistry. Differences between experimental groups were assessed by Students t-test and one-way ANOVA. ResultsSingle-cell transcriptomics identified microglia as a primary target for LXB4 in the healthy retina. LXB4 downregulated genes that drive microglia environmental sensing and reactivity responses. Analysis of microglial function revealed that ocular hypertension induced distinct, temporally defined, and dynamic phenotypes in the retina and, unexpectedly, in the distal myelinated optic nerve. Microglial expression of CD74, a marker of disease-associated microglia in the brain, was only induced in a unique population of optic nerve microglia, but not in the retina. Genetic deletion of lipoxin formation correlated with the presence of a CD74 optic nerve microglia population in normotensive eyes, while LXB4 treatment during ocular hypertension shifted optic nerve microglia toward a homeostatic morphology and non-reactive state and downregulated the expression of CD74. Furthermore, we identified a correlation between CD74 and phospho-phosphoinositide 3-kinases (p-PI3K) expression levels in the optic nerve, which was reduced by LXB4 treatment. ConclusionWe identified early and dynamic changes in the microglia functional phenotype, reactivity, and induction of a unique CD74 microglia population in the distal optic nerve as key features of ocular hypertension-induced neurodegeneration. Our findings establish microglia regulation as a novel LXB4 target in the retina and optic nerve. LXB4 maintenance of a homeostatic optic nerve microglia phenotype and inhibition of a disease-associated phenotype are potential neuroprotective mechanisms for the resident LXB4 pathway.

molecular biology↗

Jasmonic acid and methyl jasmonate attenuate neuroinflammation via crosstalk with the prostaglandin E2/receptor EP2 signaling axis

The jasmonates are a class of oxylipin phytohormones known to exhibit anti-inflammatory, antioxidant, and anti-cancer effects in mammalian cells. We investigated the ability of three jasmonate compounds (jasmonic acid, methyl jasmonate, and 12-OPDA) and two structurally distinct jasmonate precursors (alpha-linolenic acid and palmitic acid) to attenuate inflammation in an in vitro model of neurodegenerative disease, for which the mechanisms of action have not been well identified. The study modeled chronic neuroinflammation in SH-SY5Y neuroblastoma cells using exogenous prostaglandin E2 (PGE2) treatment. Prostaglandin E2 caused concentration-dependent levels of inflammation and SH-SY5Y cell death, which were attenuated by the jasmonates and their precursors. To this end, structural similarities between the jasmonates and PGE2 were correlated with increased potency of their anti-inflammatory effects. Downstream biomarkers of signaling through the pro-inflammatory E prostanoid receptor subtype 2 (EP2) were then quantified using enzyme-linked immunosorbent assay methods. Of the compounds tested, only jasmonic acid and methyl jasmonate attenuated inflammation in the SH-SY5Y cells via crosstalk with the PGE2/EP2 signaling axis. Additionally, structural models and molecular binding simulations serve as evidence for our hypothesis that JA and MeJA achieve this crosstalk through competitive inhibition of the receptor EP2. This novel finding has implications in the study of neurodegenerative diseases for which the disease pathology is related to chronic neuroinflammation, including Alzheimers Disease (AD), Parkinsons Disease (PD), amyotrophic lateral sclerosis (ALS) and multiple sclerosis (MS). In addition, these findings add to the understanding of the relationship between pro-inflammatory prostaglandin E2 signaling and disease severity.

cell biology↗