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Pores and channels within complex porous structures, such as the soil or the human gut, influence fluid flow and thus bacterial colonization. Here, Scheidweiler et al. study bacterial colonization of a model complex porous structure and show how the interactions between fluid flow, microscale structure, chemotaxis, and gradients of a quorum-sensing signaling molecule control the heterogenous accumulation of bacterial biomass.
Wnt/β-catenin signalling activation in the dermis cause fibrosis by cell-autonomous program and by a non-cell-autonomous program mediated by TGF-β niche formation based on Cxcl14-mediated interactions between stromal cells and M2 macrophages.
Neutrophils provide a critical early defense as part of our innate immune system. Here, authors performed a genome-wide assessment of the molecular factors critical to proliferation, differentiation, and cell migration in a neutrophil-like cell.
Neutrophil ontogeny in zebrafish may be a continuum or consist of distinct lineages. Here the authors characterise neutrophils derived from rostral blood island and caudal haematopoietic tissue lineages and show differential gene expression and function in steady state and during wound healing.
Leukotriene B4 (LTB4) is a potent lipid chemoattractant driving leukocyte migration and neutrophil swarming, but methods for its real-time detection are lacking. Here, the authors develop GEM-LTB4, a genetically encoded fluorescent biosensor, and use it to visualize leukocyte-derived LTB4 gradients.
Two recent studies find that pioneering bacterial cells use chemotaxis as a navigation strategy to boost range expansion, but colonizing too quickly can leave the population susceptible to invasion by competitors.