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Denley, M. C. S.

Publications and source records attributed to Denley, M. C. S..

3 recordsLinked to original sources

Disturbed mitochondrial energy production in methylmalonic aciduria is cell-type and variant-dependent

Methylmalonic aciduria (MMA) is caused by deficiency of methylmalonyl-CoA mutase (MMUT), which catalyses the final step of propionate catabolism and fuels the tricarboxylic acid cycle for energy production. Previous studies reported disrupted mitochondrial homeostasis in MMA, including reduced mitochondrial membrane potential and increased oxidative stress, especially in energetically demanding and chronically affected tissues like brain and kidneys. However, how these changes impact mitochondrial energy production remains unclear. Here, we systematically investigated mitochondrial energy production using extracellular flux analysis in cellular models of MMA, including 293T cells, patient-derived fibroblasts, urine-derived epithelial kidney cells and induced pluripotent stem cells (iPSCs) as well as iPSC-derived neurons harbouring either complete loss (knockout, KO) or pathogenic missense variants in MMUT. We found no impact on mitochondrial energy production in MMUT-KO 293T cells and fibroblasts compared to controls. In contrast, fibroblasts and 293T cells expressing the pathogenic MMUT-p.N219Y variant showed decreased energy production. This corresponds to the altered mitochondrial membrane potential in 293T cells, but contrasts with their unchanged mitochondrial abundance. Depletion of glucose, glutamine and pyruvate from the media or provision of each individually as sole fuel source exacerbated the phenotype of MMUT-p.N219Y clones, but did not induce a phenotype in MMUT-KO 293T cells. Finally, we confirmed reduced mitochondrial energy production in patient-derived kidney cells but found no evidence in MMUT-p.N219Y iPSCs and their derived neurons. Overall, our work suggests that the impact of MMUT-deficiency on mitochondrial energy production is cell type- and variant-dependent. Further investigations should clarify molecular mechanisms and their clinical impact.

cell biology↗

Mitochondrial dysfunction drives a neuronal exhaustion phenotype in methylmalonic aciduria

Methylmalonic aciduria (MMA) is an inborn error of metabolism resulting in loss of function of the enzyme methylmalonyl-CoA mutase (MMUT). Despite acute and persistent neurological symptoms, the pathogenesis of MMA in the central nervous system is poorly understood, which has contributed to a dearth of effective brain specific treatments. Here we utilised patient-derived induced pluripotent stem cells and in vitro differentiation to generate a human neuronal model of MMA. We reveal strong evidence of mitochondrial dysfunction caused by deficiency of MMUT in patient neurons. By employing patch-clamp electrophysiology, targeted metabolomics, and bulk transcriptomics, we expose an altered state of excitability, which is exacerbated by application of 2-dimethyloxoglutarate, and we suggest may be connected to metabolic rewiring. Our work provides first evidence of mitochondrial driven neuronal dysfunction in MMA, which through our comprehensive characterisation of this paradigmatic model, enables first steps to identifying effective therapies.

neuroscience↗

Social memory in female mice is rapidly modulated by 17β-estradiol through ERK and Akt modulation of synapse formation

BackgroundSocial memory is essential to the functioning of a social animal within a group. Estrogens can affect social memory too quickly for classical genomic mechanisms. Previously, 17{beta}-estradiol (E2) rapidly facilitated short-term social memory and increased nascent synapse formation, these synapses being potentiated following neuronal activity. However, what mechanisms underlie and co-ordinate the rapid facilitation of social memory and synaptogenesis are unclear. Here, the necessity of extracellular signal-regulated kinase (ERK) and phosphoinositide 3-kinase (PI3K) signaling for rapid facilitation of short-term social memory and synaptogenesis was tested. MethodsMice performed a short-term social memory task or were used as task-naive controls. ERK and PI3K pathway inhibitors were infused intra-dorsal hippocampally 5 minutes before E2 infusion. Forty minutes following intrahippocampal E2 or vehicle administration, tissues were collected for quantification of glutamatergic synapse number in the CA1. ResultsDorsal hippocampal E2 rapid facilitation of short-term social memory depended upon ERK and PI3K pathways. E2 increased glutamatergic synapse number (GluA1/bassoon colocalization) in task-performing mice but decreased synapse number in task-naive mice. Critically, ERK signaling was required for synapse formation/elimination in task-performing and task-naive mice, whereas PI3K inhibition blocked synapse formation only in task-performing mice. ConclusionsWhilst ERK and PI3K are both required for E2 facilitation of short-term social memory and synapse formation, only ERK is required for synapse elimination. This demonstrates previously unknown, bidirectional, rapid actions of E2 on brain and behaviour and underscores the importance of estrogen signaling in the brain to social behaviour.

neuroscience↗