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Mitchener, V.

Publications and source records attributed to Mitchener, V..

3 recordsLinked to original sources

TRPML1 loss drives lysosomal calcium failure and astrocyte dysfunction across Alzheimer's Disease progression

Astrocytes are among the earliest cells to exhibit dysfunction in Alzheimers disease (AD), developing profound calcium signalling deficits before amyloid plaques have formed, yet the underlying mechanisms remain unknown. Lysosomal dysfunction is a hallmark of AD, but whether it initiates this early functional impairment or arises as a consequence of established pathology remains unresolved. Here, we find that astrocytic cytosolic calcium activity is suppressed prior to amyloid plaque deposition and is accompanied by reduced lysosomal acidification in vivo. Using a lysosome-targeted calcium indicator selectively expressed in astrocytes, we directly visualise lysosomal calcium dynamics in vivo and reveal a profound early loss of lysosomal calcium release, identifying lysosomal failure as an initiating event in astrocyte dysfunction in AD. Reduced expression of the lysosomal calcium channel TRPML1 provides the mechanistic basis for this deficit. Astrocyte-specific restoration of TRPML1 expression rescues lysosomal homeostasis and cytosolic calcium signalling and prevents astrocyte reactivity and morphological hypertrophy. Strikingly, early TRPML1 restoration prevents both the initial calcium hypoactivity observed before plaque formation and the later hyperactivity that characterises post-plaque disease, demonstrating that lysosomal calcium homeostasis stabilises astrocyte function across the disease trajectory. TRPML1 restoration also reduces amyloid plaque burden, indicating that astrocytic lysosomal competence directly shapes disease pathology. These findings identify lysosomal calcium failure as an early organelle-level mechanism linking amyloid stress to astrocyte dysfunction in AD, and position TRPML1-mediated lysosomal calcium signalling as a tractable target for limiting disease progression.

neuroscience↗

Glycogen-Dependent Metabolic Reprogramming Regulates Microglial Activation and Dysfunction in Neurodegenerative Disease

Microglia are central regulators of neuroinflammation in Alzheimers disease (AD), yet how metabolic states modulate function remains unclear. Here we show that microglia from the APPNL-G-F mouse model revealed upregulation of glycolytic enzymes coinciding with onset of microglial activation. Surprisingly, this glycolytic shift occurred alongside reduced expression of glucose transporters, suggesting that extracellular glucose may not be the primary fuel source, implicating glycogenolysis as the potential metabolic driver. Consistent with this, significant microglial glycogen accumulation was noted in late disease, when cells exhibited features of metabolic exhaustion and functional impairment. Pharmacological inhibition of glycogenolysis blunted microglia responses to Abeta aggregates and markedly reduced Abeta uptake, confirming a functional role for glycogen metabolism in shaping microglial states. Together, these findings identify glycogen as a central regulator of microglial metabolic health and function, highlighting glycogen homeostasis as a potential therapeutic target for promoting Abeta clearance and preserving protective microglial functions in AD.

neuroscience↗

Sub-clinical glutamate receptor antagonist combinations prevent progressive demyelination.

Multiple sclerosis (MS) affects almost 3 million people globally who suffer demyelination as a series of relapses and remissions that tend towards progressive deterioration over time. The proximate cause is auto-immune attack by the adaptive immune system; therapies directed against this are effective during the relapsing-remitting phase but are less effective or ineffective during progression where other injury mechanisms may be significant. LPS- and cuprizone-induced experimental demyelination share features of progressive demyelination in MS but the underlying mechanisms are not well understood. We show here that these demyelination models can be reproduced ex vivo using short protocols, revealing that combined antagonism of two types of glutamate receptor, NMDA and AMPA, using clinically approved antagonists at sub-clinical doses, can protect against these forms of demyelination. Combined low dose therapy was subsequently shown to be effective in vivo against dietary cuprizone and experimental autoimmune-encephalomyelitis (EAE) models of demyelination and, in particular, protected the smaller myelinated axons that are the main substrate of the function loss in progressive MS.

neuroscience↗