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Humphrey, R.

Publications and source records attributed to Humphrey, R..

2 recordsLinked to original sources

Lowering glucose enhances BACE1 activity and Aβ generation in mouse brain slice cultures

Numerous environmental risk factors are now recognised as contributors to the onset and progression of Alzheimers disease (AD). It is probable that, in most instances, AD arises from a combination of genetic predisposition and environmental influences. In particular, there is a strong correlation between vascular impairment and dementia, yet the specific mechanisms by which vascular impairment and AD are linked, remain unknown. Hypoglycaemia can occur both due to vascular impairment, and due to fluctuating glucose levels in the context of diabetes, another risk factor for AD, and could potentially be involved in disease pathogenesis. To assess whether low glucose could contribute to the build-up of brain amyloid-{beta} (A{beta}) seen in AD, we exposed wildtype mouse organotypic hippocampal slice cultures (OHSCs) to varying glucose concentrations. Lowering glucose levels leads to an elevation in both A{beta}1-42 and A{beta}1-40 secreted into the culture medium, accompanied by an increased accumulation of A{beta} within the slice tissue. This effect is replicated in OHSCs derived from the TgCRND8 mouse model of overexpressed, mutant APP and in human SH-SY5Y cells. The heightened A{beta} levels are likely attributed to an upregulation of BACE1 activity, which is also observed with lowered glucose levels. In contrast, OHSCs subject to hypoxia exhibited no alterations in A{beta} levels whether singularly, or in combination of hypoglycaemia. Finally, we found that alternative energy sources such as pyruvate, fructose 1,6-bisphosphate, and lactate can alleviate heightened A{beta} levels, when given in combination with lowered glucose. This study underscores the capacity to induce an increase in A{beta} in a wildtype ex vivo system by selectively decreasing glucose levels.

neuroscience↗

Down-regulation of Drosophila Glutactin, a cholinesterase-like adhesion molecule of the basement membrane, impairs development, compromises adult function and shortens lifespan

Basement membranes (BM) play fundamental roles in morphogenesis and tissue maintenance in multicellular organisms. Glutactin is a BM protein that belongs to the Cholinesterase-Like Adhesion Molecules (CLAMs) protein family. In Drosophila embryos, Glutactin has been shown to outline internal organs and to play a role in synapse formation. Here, we report that Glutactin is broadly expressed in BM surrounding most vital tissues of the larva and the adult, and within the larval muscle sarcomere. Ubiquitous RNAi driven down-regulation of Glutactin expression (Tub>Glt-RNAi) resulted in pronounced impairments in larval and adult locomotor behavior, reduced oviposition, and shortened lifespan. Muscle-specific down-regulation of Glutactin resulted in reduced larval crawling speed indicating a secondary function for Glutactin independent of BM expression. Tub>Glt-RNAi pupa showed abdominal scars, suggestive of defects in histoblast nest expansion and replacement of larval epidermal cells, and a high mortality rate at eclosion. Surviving adults showed a range of morphological and physiological defects including excess melanization and pigmentation, incomplete rotation and duplication of the genitalia, and abnormal heart morphology and contraction. Insofar excess melanization is symptomatic of internal tissue damage, we propose that Glutactin is essential for the mechanical stabilization of the BM and for its ability to withstand internal stresses.

developmental biology↗