Search bioRxiv⌕ Search

Biology subjects

Firth, W.

Publications and source records attributed to Firth, W..

2 recordsLinked to original sources

Bioenergetic dysfunction and inflammation in hiPSC-derived astrocytes from m.14484T>C Leber's Hereditary Optic Neuropathy

Lebers Hereditary Optic Neuropathy (LHON) is a maternally inherited mitochondrial disorder characterised by painless, progressive, and sequential visual failure. Most cases of LHON are driven by mitochondrial DNA mutations which cause dysfunction of respiratory Complex I, triggering retinal ganglion cell loss. Retinal ganglion cell degeneration in LHON is thought to be linked to reduced production of metabolic intermediates and adenosine triphosphate, and enhanced reactive oxygen species production. Thus, decades of research have focussed on LHON as a disease of the retinal ganglion cells, which has considerably improved our understanding of the pathology but has yielded few therapeutic interventions. In addition, some LHON-associated phenomena remain unclear. In particular, we still do not fully understand the mechanisms underlying the recorded phenomenon of spontaneous visual recovery, in which patients experience measurable increases in visual acuity following onset of LHON vision loss. Understanding this phenomenon may be critical for developing new therapeutic approaches for LHON. Moreover, the contribution of non-neuronal cell populations to LHON pathology remains poorly understood despite a growing appreciation for the roles played by these cells in other neurodegenerative conditions. Astrocytes are a highly heterogeneous group of glial cells, found throughout the central nervous system including the retina and optic nerve, and are well-known for their role as key homeostatic mediators. In recent years, our appreciation for the role played by astrocytes in neurodegenerative diseases has expanded considerably, and we are now aware that astrocytes undergo significant loss of their homeostatic functions in neurodegenerative disease, acting as key mediators of neuronal loss. Importantly, the contributions astrocytes make toward mediating LHON pathology and visual recovery remain unclear, and provide promising ground for potentially novel therapeutic angles and enhanced understanding of this complex pathology. Here, we leverage human iPSC-derived astrocytes from patients with the LHON m.14484T>C genotype, to explore the role astrocytes play in LHON pathology, stratifying cells by their visual recovery status. We report that astrocytes undergo significant morphological and bioenergetic compromise in LHON, and that differences between recovery and non-recovery astrocytes may explain individual capacity for visual recovery, potentially opening novel therapeutic approaches.

neuroscience↗

Regulation of astrocyte metabolism by mitochondrial translocator protein 18kDa

The mitochondrial translocator protein 18kDa (TSPO) has been linked to a variety of functions from steroidogenesis to regulation of cellular metabolism and is an attractive therapeutic target for chronic CNS inflammation. Studies in the periphery using Leydig cells and hepatocytes, as well as work in microglia, indicate that the function of TSPO may vary between cells depending on their specialised roles. Astrocytes are critical for providing trophic and metabolic support in the brain as part of their role in maintaining brain homeostasis. Recent work has highlighted that TSPO expression increases in astrocytes under inflamed conditions and may drive astrocyte reactivity. However, relatively little is known about the role TSPO plays in regulating astrocyte metabolism and whether this protein is involved in immunometabolic processes in these cells. Using TSPO-deficient (TSPO-/-) mouse primary astrocytes in vitro (MPAs) and a human astrocytoma cell line (U373 cells), we performed metabolic flux analyses. We found that loss of TSPO reduced basal astrocyte respiration and increased the bioenergetic response to glucose reintroduction following glucopenia, while increasing fatty acid oxidation (FAO). Lactate production was significantly reduced in TSPO-/- astrocytes. Co-immunoprecipitation studies in U373 cells revealed that TSPO forms a complex with carnitine palmitoyltransferase 1a, which presents a mechanism wherein TSPO may regulate FAO in astrocytes. Compared to TSPO+/+ cells, inflammation induced by 3h lipopolysaccharide (LPS) stimulation of TSPO-/- MPAs revealed attenuated tumour necrosis factor release, which was enhanced in TSPO-/- MPAs at 24h LPS stimulation. Together these data suggest that while TSPO acts as a regulator of metabolic flexibility in astrocytes, loss of TSPO does not appear to modulate the metabolic response of astrocytes to inflammation, at least in response to the stimulus/time course used in this study.

neuroscience↗