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Hartley-Tassell, L. E.

Publications and source records attributed to Hartley-Tassell, L. E..

2 recordsLinked to original sources

Calcium-phosphate bridge is a novel phosphorylation switch that stabilises protein-complexes during HIV assembly

Calcium (Ca2+) and phosphate (PO43-) are fundamental-element and -chemical group in biology. Specifically, the chemistry of both Ca2+ signalling and phosphorylation switch are independent mechanisms regulating a broad spectrum of biological processes. It is, however, not appreciated that a normal function of phospho-mimic amino acids (aspartate/glutamate) is to interact with Ca2+ at the atomic level. Here, we leveraged HIV-Ca2+ biology in primary cells to describe an unknown layer of regulatory processes via Ca2+-phosphate (PO43-) bridge to support protein complex formation. We identified novel HIV phosphorylation sites overlapping Ca2+ binding domains through phospho-proteomics. Integrating primary cells, molecular virology, structural biology, biophysical and ultrastructural analyses, we presented multiple examples of Ca2+-PO43- bridges that support HIV assembly and function. These include Ca2+-PO43- bridges: (i) stabilising Pr55Gag-Pr160GagPol complex for virus function; (ii) mediating p6Pol dimerization to support virion maturation; and (iii) modulating viral complex formation to package both viral enzymatic- and cellular-proteins. As the convergent enrichment of these signatured calcium-phosphorylation domains occurs across a wide range of viral and cellular proteins, we propose Ca2+-PO43- bridge to be a general principle for Ca2+-coordinated phosphorylation switch to regulate biological processes.

cell biology↗

The role of bacterial size, shape and surface in macrophage engulfment of uropathogenic E. coli cells

Uropathogenic Escherichia coli (UPEC) can undergo extensive filamentation in the host during acute urinary tract infections (UTIs). It has been hypothesised that this morphological plasticity allows bacteria to avoid host immune responses such as macrophage engulfment. However, it is still unclear what properties of filaments are important in macrophage-bacteria interactions. The aim of this work was to investigate the contribution of bacterial biophysical parameters, such as cell size and shape, and physiological parameters, such as cell surface and the environment, to macrophage engulfment efficiency. Viable, reversible filaments of known lengths and volumes were produced in the UPEC strain UTI89 using a variety of methods, including exposure to cell-wall targeting antibiotics, genetic manipulation and isolation from an in vitro human bladder cell model. Quantification of the engulfment ability of macrophages using gentamicin-protection assays and fluorescence microscopy demonstrated that the ability of filaments to avoid macrophage engulfment is dependent on a combination of size (length and volume), shape, surface and external environmental factors. UTI89 filamentation was also found to occur independently of the SOS-inducible filamentation genes, sulA and ymfM, demonstrating the non-essential requirement of these genes for UTI89 filamentation and their ability to avoid macrophage engulfment. With several strains of UPEC now resistant to current antibiotics, our work identifies the importance of bacterial morphology during infection and may provide new ways to prevent or treat these infections via immune modulation or antimicrobials. Author SummaryUrinary tract infections (UTIs) are one of the most common bacterial infections worldwide with 50% of women suffering from a UTI during their lifetime. Escherichia coli is the primary bacteria responsible for UTIs and is usually found in short rod forms. However, during UTIs E. coli can elongate into extremely long thin shapes called filaments. Filaments are thought to be advantageous during infections because they are too long to be engulfed and killed by immune cells called macrophages. Due to increasing antibiotic resistance in bacteria there is a strong need for the discovery of new ways to treat infections and this is only possible once we thoroughly understand the mechanisms bacteria employ to overcome our immune response. Therefore, we investigated the effect of E. coli filamentation on macrophage engulfment along with other aspects of bacteria reported to influence engulfment. We found that the ability of filaments to avoid macrophage engulfment is dependent on a combination of size (length and volume), shape, surface and external environmental factors. Our research has highlighted the importance of bacterial shape changes during infections and provided a foundational understanding of macrophage engulfment of filaments. Eventually, this knowledge may reveal new targets for treatment of infections.

microbiology↗