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Biology subjects

Bronowska, A. K.

Publications and source records attributed to Bronowska, A. K..

2 recordsLinked to original sources

NLRP3 is a thermosensor that is negatively regulated by high temperature

Inflammation is an essential response to infection and injury, but unregulated inflammation is damaging and must be limited by negative feedback signalling. Inflammasome signalling drives local inflammation and systemic responses like fever. However, our understanding of how inflammasome signalling is negatively regulated is limited. NLRP3 is activated by a vast number of stimuli and senses perturbations of cytoplasmic homeostasis. As temperature is a fundamental environmental stressor, we hypothesised that NLRP3 inflammasome signalling would be sensitive to increased temperatures and so we investigated the effects of high temperatures on NLRP3 in macrophages. Short-term incubation at high fever range temperatures significantly inhibits NLRP3 activation, while secretion of the inflammasome-independent cytokines TNF and IL-6 are much less affected. High temperature blocks NLRP3 inflammasome formation in a transcription-independent manner, and NLRP3 is highly sensitive to temperature-mediated inhibition relative to the NLRC4, AIM2, and NLRP1 inflammasomes. Using cellular assays and molecular simulations we show that the effect of high temperature on NLRP3 is protein intrinsic. NLRP3 activation is associated with a decrease in the thermal stability of the protein and multiscale molecular dynamics simulations identified a peptide in the C-terminal of the FISNA domain (COFI) that is highly flexible and undergoes a significant conformational shift at high temperature. Cellular assays demonstrate that the COFI regulates NLRP3 stability and is required for activation. Furthermore, mice exposed to high temperature display attenuated inflammatory cytokine production upon in vivo LPS challenge. Our studies thus reveal that high temperatures associated with fever limit NLRP3 activity and identify a novel role for NLRP3 as a protein thermosensor.

immunology↗

Molecular dynamics simulations reveal a mechanism of calcium homeostasis driving homotrimerisation and heterotrimerization of type I collagen

Type I collagen is the main structural protein of vertebrates and forms molecular trimers from the COL1A1 and COL1A2 gene products; pro-alpha-1(I) and pro-alpha-2(I)), during biosynthesis. The amino acid sequence of the C-propeptide of collagen, which is removed before collagen fibril formation, initially drives heterotrimerisation and calcium ions are required for trimers to form. The homotrimeric form is associated with age-related diseases including cancer, fibrosis, musculoskeletal and cardiovascular conditions but circumstances under which the abnormal homotrimer may form were poorly understood. Here we used molecular dynamics simulations of the C-propeptide protein structure, to show that intra- and intra-chain hydrogen bonding is affected by the loss of calcium and that chains become destablised, particularly at the interfaces of each chain. Loss of calcium resulted in an increased distances between cysteine residues that form inter-chain disulphide bonds, predicting an inability for disulphides to form in the absence of calcium. Pulling simulations and modeling calcium dissociation from monomers showed that calcium ions were more strongly bound to the alpha-1(I) than the alpha-2(I) chain. However, pulling a single alpha chain from the heterotrimer or homotrimer demonstrated that the alpha-2(I) chain had a higher affinity to trimers than a third alpha-1(I) chain. Hence although heterotrimerisation is normally favoured, in reduced calcium conditions the homotrimer can form by sequestering available calcium to the alpha-1(I) chains. This study provides a molecular explanation for a calcium-based mechanism driving heterotrimerisation versus homotrimerisation of type I collagen.

biophysics↗