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Biology subjects

Scarborough, H.

Publications and source records attributed to Scarborough, H..

2 recordsLinked to original sources

Non-invasive Bdnf mRNA therapy improves cognition in ageing and Alzheimers mouse models

Messenger RNA (mRNA) therapeutics have rapidly emerged as a transformative approach for treating a range of health challenges. Accelerated by the success of mRNA-lipid nanoparticle (LNP) vaccines during the COVID-19 pandemic, this platform holds promise beyond immunisation for the transient expression of therapeutic proteins in targeted tissues. Despite this promise, non-invasive delivery of mRNA to the brain, as with most therapeutics, remains a challenge due to the impermeability of the blood brain barrier. Here, we present a novel strategy to deliver neurotrophic factors to the brain via intranasal delivery of mRNA-LNP. As a proof of concept, we demonstrate that intranasal delivery of mRNA encoding the neurogenic factor BDNF (Brain Derived Neurotrophic Factor) enhances memory performance in both aged mice and a transgenic mouse model of Alzheimers disease. This approach offers a promising platform for delivering therapeutic proteins to the brain and opens new avenues for treating age-related and neurodegenerative disorders.

animal behavior and cognition↗

N-Cadherin mediated cell rearrangements shape embryonic macrophage cluster

Drosophila embryonic macrophages are highly motile phagocytic and secretory cells which are essential for embryonic development. Embryonic migration and dispersal of these cells along pre-determined routes is invariably tied to their functions such that misrouting or delay in macrophage migration has serious consequences for embryogenesis and adult homeostasis. In this study, we describe early steps of macrophage migration from their site of origin in the head mesoderm to the germband and show that hemocytes start moving as an epithelial-like cluster with N-Cadherin based Adherens junctions. The cells within the cluster move in a co-ordinated manner and exhibit cell rearrangements mediated through junction shrinkage. We found that N-Cadherin is dynamically relocalized during cluster extension and modulating N-Cadherin levels results in hemocyte dispersal away from their main axis of migration which affects migration into the germband. We therefore elucidate a novel multi-tiered mechanism which ensures that macrophages are positioned appropriately to regulate their distribution in the embryo.

developmental biology↗