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Brandner, S.

Publications and source records attributed to Brandner, S..

2 recordsLinked to original sources

Amyloid β oligomers constrict human capillaries in Alzheimer’s disease via signalling to pericytes

Vascular compromise occurs early in Alzheimers disease (AD) and other dementias1-3. Amyloid {beta} (A{beta}) reduces cerebral blood flow4-6 and, as most of the cerebral vasculature resistance is in capillaries7, A{beta} might mainly act on contractile pericytes on capillary walls8-10. Employing human tissue to establish disease-relevance, and rodent experiments to define mechanism, we now show that A{beta} constricts brain capillaries at pericyte locations in human subjects with cognitive decline. Applying soluble A{beta}1-42 oligomers to live human cortical tissue constricted capillaries. Using rat cortical slices, this was shown to reflect A{beta} evoking capillary pericyte contraction, with an EC50 of 4.7 nM, via the generation of reactive oxygen species and activation of endothelin ET-A receptors. In freshly-fixed diagnostic biopsies from human patients investigated for cognitive decline, mean capillary diameters were less in subjects showing A{beta} deposition than in subjects without A{beta} deposition. For patients with A{beta} deposition, the capillary diameter was 31% less at pericyte somata than away from somata, predicting a halving of blood flow. Constriction of capillaries by A{beta} will contribute to the energy lack1-3 occurring in AD, which promotes further A{beta} generation11,12. This mechanism reconciles the amyloid hypothesis13-15 with the earliest events in AD being vascular1.

neuroscience

Quantitation of brain tumour microstructure response to Temozolomide therapy using non-invasive VERDICT MRI

There has been slow progress in the development of new therapeutic strategies for treating brain tumours, partly because assessment of treatment response is difficult and largely reliant on simple bi-dimensional measurements of MRI contrast-enhancing regions. Hence, there is a clinical need to develop improved imaging techniques for monitoring treatment response. In this study, we evaluate VERDICT (Vascular, Extracellular and Restricted Diffusion for Cytometry in Tumors) MRI in mouse glioblastomas for the quantification of tumour microstructure and assessment of response to Temozolomide (TMZ) chemotherapy, and, we investigate the feasibility of applying VERDICT MRI in a range of human gliomas. VERDICT MRI detected response to TMZ earlier than structural and apparent diffusion coefficient (ADC) measurements. A significant reduction in the cell radius parameter was detected three days earlier than ADC and six days earlier than structural MRI. Histological analysis showed the same trend as VERDICT of decreased intracellular volume fraction in the TMZ-treated mice. Vascular volume fraction was not altered by TMZ, which was consistent with optical projection tomography measurements. In patients, glioblastoma compartmental volume fractions showed good agreement with mouse glioblastoma parameters. The VERDICT parameters varied across the human gliomas, with raised intracellular volume fraction in the oligodendrogliomas and elevated cell radius in both low-grade tumours subtypes. In conclusion, our results suggest that VERDICT MRI is more sensitive at detecting TMZ response than structural or ADC measurements. In patients, VERDICT is feasible within clinical scan times, and performed best at characterising glioblastoma. Further optimisation should improve assessment of different glioma subtypes.

biophysics