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Brelstaff, J.

Publications and source records attributed to Brelstaff, J..

2 recordsLinked to original sources

The delayed kinetics of Myddosome formation explains why Aβ aggregates trigger TLR4 less efficiently than LPS

The Myddosome is a key innate immune signalling platform. It forms at the cell surface and contains MyD88 and IRAK proteins which ultimately coordinate the production of pro-inflammatory cytokines. Toll-like receptor 4 signals via the Myddosome when triggered by Lipopolysaccharide (LPS) or Amyloid-Beta (A{beta}) aggregates but the magnitude and time duration of the response are very different for reasons that are unclear. Here we followed the formation of Myddosomes in live macrophages using local delivery of TLR4 agonist to the cell surface and visualisation with 3D rapid light sheet imaging. This was complemented by super-resolution imaging of Myddosomes in fixed macrophages to determine the size of the signalling complex at different times after triggering. Myddosomes formed more rapidly after LPS than in response to sonicated A{beta} 1-42 fibrils (80 seconds vs 372 seconds). The mean lifetimes of the Myddosomes was also shorter when triggered by LPS compared to sonicated A{beta} fibrils (170 and 220 s) respectively. In both cases a range of Myddosome of different sizes (50-500 nm) were formed. In particular, small round Myddosomes around 100 nm in size formed at early time points, then reduced in proportion over time. Collectively our data suggests that compared to LPS the multivalency of A{beta} fibrils leads to the formation of larger Myddosomes which form more slowly and, due to their size, take longer to disassemble. This explains why sonicated A{beta} fibrils results in less efficient triggering of TLR4 signalling and may be a general property of protein aggregates.

biophysics↗

Efficient methods for target gene manipulation in haematopoietic stem cell derived human neutrophils.

Neutrophils are the most abundant leukocyte in humans and the principal effectors of the innate immue response. Genetic modification of human neutrophils is challenging due to their short lifespan and tendency to activate in response to even minor perturbation. However, genetic manipulation of haematopoietic progenitor cells and subsequent directed differentation into neutrophils represents a potential avenue to study the contributions of individual genes and pathways to human neutrophil function. Here we present a method of directed granulocytic CD34+ progenitor differentiation into neutrophils capable of key functions such as priming and neutrophil extracellular trap (NET) formation. We further show that differentiating progenitors can be efficiently and stably modified by lentiviral gene delivery and Cas9-gRNP nucleofection to produce potent and activation-free gene knockdown in mature neutrophils, thereby providing new tools for understanding the contribution of neutrophils to health and disease. Using this model we have shown that, contrary to previous reports, CD11b is not required for phagocytosis of serum-opsonised bacterial particles.

cell biology↗