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Biology subjects

Moss, L.

Publications and source records attributed to Moss, L..

5 recordsLinked to original sources

The future is faeces: Using faecal genomic sequencing to understand dietary choices of an endangered arboreal marsupial

1. Understanding critical components of habitat use, such as dietary preferences, is crucial for creating and implementing effective conservation plans. This becomes challenging when species exhibit cryptic behaviours, such as arboreality and nocturnality, as seen in the endangered greater glider (Petauroides spp). Existing methods for determining greater glider diet are inadequate, time consuming and prone to human error. Furthermore, current literature lacks specificity, with most research stating simply that greater gliders are dietary eucalypt specialists, without providing additional insight into which species are eaten. 2. Here, we tested a non-invasive technique using targeted sequencing of species-specific single nucleotide polymorphisms from greater glider faecal samples to identify dietary components across multiple locations in Southeast Queensland. 3. Sequencing identified 17 plant species present in the faecal samples, including Angophora, Acacia and Casuarina spp. that were previously unknown to be feed tree taxa, profoundly increasing our understanding of the habitat requirements of this endangered marsupial. Four of these identified species were out of range of their natural occurrence, suggesting limitations to the accuracy of this technique. 4. This study demonstrates the value of using genomic sequencing for analysing diets of arboreal mammals and makes recommendations for improving the accuracy of this methodology for future studies. Our findings highlight key tree species to be considered important for future greater glider conservation plans and raises the question whether there are local drivers behind the differences in dietary choices across the landscape. Such information will be critical for greater glider conservation, particularly when management planning across multiple habitats.

molecular biology↗

Senescent Activated Naive B Cells Promote Anti-Citrullinated Antigen T Cell Responses and the Transition to Clinical Rheumatoid Arthritis

Rheumatoid arthritis (RA) is a chronic autoimmune disease marked by joint and systemic inflammation. Anti-citrullinated protein antibodies (ACPAs) define an at-risk stage that precedes clinically apparent inflammatory arthritis (clinical RA) onset, yet the molecular mechanisms driving progression remain poorly understood. Here, we applied single-cell multi-omics to profile B cells longitudinally collected from ACPA individuals who either convert to clinical RA (Converters) or do not (Nonconverters). We identified a striking expansion of CXCR5CD69 activated naive B cells (aNAVs) uniquely in Converters prior to clinical RA. These aNAVs exhibited a pro-inflammatory, senescent transcriptional program and persist through to clinical RA. In Converters, aNAVs expressed polyreactive, autoreactive IgM with distinctive V-J gene rearrangements that dominate the BCR repertoire. Furthermore, in Converters most IgM aNAVs were developmentally arrested in the peripheral blood, while a subset undergoes class switching and follows divergent somatic hypermutation trajectories. Mechanistically, aNAVs infiltrated RA synovium and served as potent antigen presenting cells to activate both anti-citrullinated antigen CD4 and CD8 T cells in an HLA-dependent manner. Chronic exposure to citrullinated antigens and CpG synergistically drove aNAV activation and senescence. These findings establish a mechanistic link between naive B cell senescence and clinical RA development in ACPA+ individuals, providing a rationale for therapeutically targeting aNAV B cells for the prevention of RA. Graphic abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=182 SRC="FIGDIR/small/682430v1_ufig1.gif" ALT="Figure 1"> View larger version (85K): org.highwire.dtl.DTLVardef@153b185org.highwire.dtl.DTLVardef@1aba6eeorg.highwire.dtl.DTLVardef@5c886eorg.highwire.dtl.DTLVardef@10109a3_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

Thrombocytopenia in murine schistosomiasis is associated with platelet uptake by liver macrophages that have a distinct activation phenotype

Alongside their well-established role in hemostasis, platelets are key modulators of immune cell function. This is particularly the case for macrophages, as platelets can either promote or dampen macrophage activation in a context-specific manner. Whilst the role of platelets in modulating classical (M1) macrophage activation following bacterial challenge is relatively well understood, whether platelets control other macrophage responses is less clear. We investigated the role of platelets in type 2 inflammation using a mouse model of chronic schistosomiasis. Schistosome infection caused thrombocytopenia which was partially reversed after drug-induced parasite death. Reduced platelet levels in infection were coincident with impaired thrombopoietin production by hepatocytes, reflecting the extensive liver damage caused by parasite eggs. Infection also reduced the ploidy and size (but not number) of bone marrow megakaryocytes, which was associated with reduced platelet output. We show schistosome infection accelerated platelet clearance and promoted the formation of platelet-leukocyte aggregates. This was particularly the case for liver macrophages and monocytes. Phenotypic analysis shows that platelet-associated liver macrophages had a distinct activation phenotype that included elevated expression of the alternative (M2) activation marker RELM. Despite this, in vitro studies indicated that platelets do not directly promote macrophage alternative activation. Similarly, whilst in vivo pharmacological treatment with a TPO mimetic enhanced platelet numbers and platelet-leukocyte aggregates, this did not alter macrophage phenotype. Conversely, antibody-mediated depletion of platelets or use of platelet-deficient mice both led to extensive bleeding following infection which impacted host survival. Together, these data indicate that whilst platelets are essential to prevent excessive disease pathology in schistosomiasis, they have a more nuanced role in myeloid cell activation and type 2 immune responses Author SummaryPlatelets are the second most abundant blood cell and are best known for their role in stopping bleeding after blood vessel damage. More recent studies have revealed another important function of platelets is their ability to control immune cell activation. Here, we investigate the role of platelets in immune responses to schistosomes, parasitic worms that cause the disease schistosomiasis that affects hundreds of millions worldwide. Schistosome worms live in our blood vessels and release large numbers of eggs that must exit the blood and move through our tissues to exit the body for onward transmission. However, a large number of eggs become trapped in different organs causing inflammation and disease pathology. We find that schistosome infection reduces the numbers of platelets in the blood of laboratory mice. Platelets are taken up by liver macrophages, and whilst these macrophages have a distinct activation profile compared to other cells, platelets themselves do not cause these changes. However, platelets are essential to survive schistosomiasis due to excessive bleeding in their absence. Together, this work shows that platelets are key to surviving schistosome infection but this reflects more their role in preventing bleeding rather than controlling immune cell function.

immunology↗

Systemic inflammation and lymphocyte activation precede rheumatoid arthritis

Some autoimmune diseases, including rheumatoid arthritis (RA), are preceded by a critical subclinical phase of disease activity. Proactive clinical management is hampered by a lack of biological understanding of this subclinical at-risk state and the changes underlying disease development. In a cross-sectional and longitudinal multi-omics study of peripheral immunity in the autoantibody-positive at-risk for RA period, we identified systemic inflammation, proinflammatory-skewed B cells, expanded Tfh17-like cells, epigenetic bias in naive T cells, TNF+IL1B+ monocytes resembling a synovial macrophage population, and CD4 T cell transcriptional features resembling those suppressed by abatacept (CTLA4-Ig) in RA patients. Our findings characterize pathogenesis prior to clinical diagnosis and suggest the at-risk state exhibits substantial immune alterations that could potentially be targeted for early intervention to delay or prevent autoimmunity. We provide a suite of tools at https://apps.allenimmunology.org/aifi/insights/ra-progression/ to facilitate exploration and enhance accessibility of this extensive dataset. One Sentence SummaryACPA+ at-risk individuals show RA-like inflammation and multi-compartment immune dysregulation during transition to clinically active RA

immunology↗

B Cell Division Capacity in Germinal Centers Depends on Myc Transcript Stabilization Through m6A mRNA Methylation and IGF2BP3 Functions

Long-lasting immunity from pathogens depends on the generation of protective antibodies through the germinal center (GC) reaction. The Myc gene produces highly short-lived transcripts which are essential for generation of high-affinity antibodies. mRNA lifetime is regulated by N6-methyladenosine (m6A)-modification of mRNAs through METTL3 activity; however, the role of this machinery in the GC remains unclear. Here, we find that m6A-modification of mRNAs is required for GC maintenance through Myc mRNA stabilization by the atypical m6A-interactor, IGF2BP3. MYC expression, activation of MYC transcriptional programs and cell-cycle progression were diminished in METTL3-deficient GC B cells. METTL3 attenuated Myc-transcript decay and overexpression of MYC in METTL3-deficient GC B cells restored the GC reaction. IGF2BP3 which was induced by CD40-signaling, reinforced MYC expression and MYC-related gene programs in GC B cells. Our findings explain how GC responses are maintained through regulation of Myc-transcript lifetime and expose new targets for manipulation in MYC-driven lymphoma. One Sentence SummaryGerminal centers depend on the m6A-machinery

immunology↗