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Abbott, C. A.

Publications and source records attributed to Abbott, C. A..

2 recordsLinked to original sources

Novel populations of Tr1 cells contribute to the resolution of acute influenza A virus infection.

Type I regulatory (Tr1) cells contribute to immune suppression in the context of chronic infection, autoimmunity, and transplant tolerance. However, their physiological relevance in the resolution of acute respiratory infection is not understood. Here, we identify Tr1 cells accumulating in the lung parenchyma during resolution of the response to sublethal influenza A virus infection in mice. Tr1 cells were dependent on IL-27R and in their absence recovery from IAV-induced weight loss is impaired. Notably, these Tr1 cells did not necessarily co-express the typical Tr1 markers LAG-3 and CD49b, with four distinct populations of Tr1 cells apparent in the lungs. Each population was suppressive and were differentially dependent on IL-10 to mediate suppression. Transcriptional analysis revealed a core Tr1 gene signature in each population and distinct expression profiles indicative of different states of activation and differentiation. Finally, sort-transfer experiments indicated non-linear plasticity between these subsets of Tr1 cells. Together, these data support Tr1 cells contributing to the resolution of acute inflammation and define novel Tr1 cell phenotypes in acute infection.

immunology↗

Biogeography of human-health associated butyrate-producing bacteria

AimButyrate-producing bacteria are found in many outdoor ecosystems and host organisms, including humans, and are vital to ecosystem functionality and human health. These bacteria ferment organic matter, producing the short-chain fatty acid butyrate. However, few (if any) studies have examined the macroecological influences on their large-scale biogeographical distribution. Here we aimed to characterise their global biogeography together with key explanatory climatic, geographic, and physicochemical variables. LocationGlobal, and the Australian continent Time period2005-2020 Major taxa studiedButyrate-producing bacteria MethodsWe developed new normalised butyrate production capacity (BPC) indices derived from global metagenomic (n=13,078) and Australia-wide soil 16S rRNA (n=1,331) data, using Geographic Information System (GIS) and modelling techniques to detail their ecological and biogeographical associations. ResultsThe highest BPC scores were found in anoxic and fermentative environments, including the human and non-human animal gut, and in some plant-soil systems. Within plant-soil systems, roots and rhizospheres had the highest BPC scores. Among soil samples, geographic and climatic variables had the strongest overall influence on BPC scores, with human influence also making key contributions. Higher BPC scores were in soils from seasonally productive sandy rangelands, temperate rural residential areas, and sites with moderate-to-high soil iron concentrations. Main conclusionsAbundances of butyrate-producing bacteria in outdoor soils follow complex ecological patterns influenced by geography, climate, soil chemistry, and hydrological fluctuations. Human population density and soil iron also play substantial roles, and their effects are dependent on a combination of ecological variables. These new biogeographical insights further our understanding of the global ecology patterns of butyrate-producing bacteria, with implications for emerging microbially-focussed ecological and human health policies.

ecology↗