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Stevenson, T. J.

Publications and source records attributed to Stevenson, T. J..

2 recordsLinked to original sources

Human pericytes degrade alpha-synuclein aggregates in a strain-dependent manner

Parkinsons disease (PD) is a progressive, neurodegenerative disorder characterised by the abnormal accumulation of -synuclein (-syn) aggregates. Central to disease progression is the gradual spread of pathological -syn. -syn aggregation is closely linked to progressive neuron loss. As such, clearance of -syn aggregates may slow the progression of PD and lead to less severe symptoms. Evidence that non-neuronal cells play a role in PD and other synucleinopathies such as Lewy body dementia and multiple system atrophy are increasing. Our previous work has shown that pericytes -- vascular mural cells that regulate the blood-brain barrier -- contain -syn aggregates in human PD brains. Here, we demonstrate that pericytes efficiently internalise fibrillar -syn irrespective of being in a monoculture or mixed neuronal cell culture. Pericytes efficiently break down -syn aggregates in vitro, with clear differences in the number of -syn aggregates/cell and average aggregate size when comparing five pure -syn strains (Fibrils, Ribbons, fibrils65, fibrils91 and fibrils110). Furthermore, pericytes derived from PD brains have a less uniform response than those derived from control brains. Our results highlight the vital role brain vasculature may play in reducing -syn burden in PD.

neuroscience↗

Epigenetic Control of Temperature-Dependent Female Reproductive Life History Trade-Offs in Seed Beetles, Callosobruchus maculatus

Many species are threatened by climate change and must rapidly respond to survive changing environments. Epigenetic modifications, such as DNA methylation, can facilitate plastic responses by regulating gene expression in response to environmental cues. Understanding epigenetic responses is therefore essential for predicting species ability to rapidly adapt in the context of global environmental change. Here, we investigated the functional significance of DNA methylation on temperature-dependent life history in seed beetles, Callosobruchus maculatus. We assessed changes in DNA methyltransferase (Dnmt1 and Dnmt2) expression levels under ambient conditions and thermal stress, and reproductive performance following artificially-induced epimutation via 3-aminobenzamide (3AB) and Zebularine (Zeb), at a range of ambient and warmer temperatures over two generations. We found that Dnmt1 and Dnmt2 were greatly expressed in females, throughout the body, and exhibited temperature-dependence; in contrast, Dnmt expression was minimal in males. Epimutation led to shifts in female reproductive life history trade-off allocation, and differentially altered thermal optima of fecundity and offspring viability. This study revealed the optimal allocation strategy among these fitness components is temperature-dependent, and trade-offs become increasingly difficult to resolve epigenetically under more extreme warming. Results suggest that epigenetic mechanisms are strongly implicated in, and perhaps limiting of, invertebrate life history responses to temperature change. Further investigation will reveal targeted DNA methylation patterns and specific loci associated with temperature-dependent life history trade-offs in seed beetles and other invertebrates.

evolutionary biology↗