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Biology subjects

Farthing, A.

Publications and source records attributed to Farthing, A..

2 recordsLinked to original sources

Synovial lining expressed mechanosensor PIEZO1 drives inflammation-permissive macrophage phenotypes and joint inflammation

Synovial tissue-resident macrophages regulate immune homeostasis within the joint, but can adopt an inflammation-permissive phenotype that promotes immune cell infiltration in rheumatoid arthritis (RA). Understanding the factors that drive this phenotypic switch may help prevent the localisation of inflammation in the joints of individuals at-risk of RA. We identified the mechanosensitive ion channel PIEZO1 as a potential regulator of lining-layer synovial tissue macrophage (STM) function. PIEZO1 was highly expressed in homeostatic, tissue resident TREM2pos lining-layer STMs and in its pathogenic chemokine producing TREM2low phenotype that characterises the hyperplastic lining-layer in active RA. Intra-articular injection of a PIEZO1 agonist in mice induced neutrophil and monocyte infiltration, whereas inhibition of PIEZO1 signalling restored the protective macrophage phenotype. Thus, mechanosensing via PIEZO1 is a defining feature of the joint lining-layer, and its aberrant activation by mechanical stress may lead to the localisation of inflammation within the joint, facilitating a transition from asymptomatic autoimmunity of at-risk RA to clinical disease.

immunology↗

Intestinal helminth skews DC2 development towards regulatory phenotype to counter the anti-helminth immune response.

The intestinal immune system maintains a balance between active immunity needed for protection and tolerance towards harmless antigens. Dendritic cells (DCs) found in the intestinal mucosa are key to the adaptive arm of these immunoregulatory events. DCs sample antigens in the tissue and then migrate to the draining lymph nodes, where they prime the T cells that then migrate back to the tissue as effector or regulatory cells. Intestinal DC are highly heterogeneous, and it remains unclear exactly which subsets induces the different kinds of immune response, or what signalling molecules and cellular mechanisms are involved. Here, we have studied these issues using Heligmosomoides polygyrus bakeri (Hpb) infection in mice, a model which is uniquely suited to dissecting this regulatory circuit in the gut, where it drives type 2 protective immunity at the same time as inhibiting other aspects of the immune response. Here, we characterise intestinal DC during Hpb infection for the first time. We observed a dynamical change of intestinal DC populations throughout the course of infection that correlated with altered phenotype and function. In particular, Hpb infection saw a rise in a population of CD103+ DC2 that retained a potent ability to drive Tregs during the infection and unlike CD103-DC2, had a reduced ability to induce pro-inflammatory immune response. Furthermore, transcriptional analysis revealed that TGF{beta} signalling may be responsible for some of the changes observed. This was confirmed in vitro, where supplementation TGF{beta} or Hpb-produced TGF{beta} mimic (TGM) replicated the immunomodulatory effects seen in DCs in vivo. Together, these results present a mechanistic explanation of how helminths such as Hpb may modulate host immune responses by altering the differentiation and function of local DCs. Furthermore, our work provides the basis for understanding immune homeostasis in the intestine at the molecular and cellular levels. Thus, this work fills out a crucial gap in our knowledge of basic biology underlining the DC decision between pro- and anti-inflammatory immune response in the central circuit of adaptive immune response.

immunology↗