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Perry, J. S. A.

Publications and source records attributed to Perry, J. S. A..

6 recordsLinked to original sources

Modeling tissue-resident macrophage development from mouse pluripotent stem cells

Tissue-resident macrophages (TRMs) are innate immune cells that participate in tissue development, homeostasis, and immune surveillance. Extensive efforts have been made to recapitulate TRM development from pluripotent stem cells (PSCs) in vitro to study molecular and cellular mechanisms of TRM development and to create cellular models of disease. However, available PSC models of mouse TRM development exhibit low overall efficiencies of TRM generation, produce heterogeneous off-target populations, and rely upon undefined media components, thus limiting their reproducibility, scalability, and widespread application as an experimental platform for TRM biology. To address these important limitations, we developed an efficient and reproducible protocol to faithfully recapitulate the stepwise differentiation of mouse PSCs (epiblast stem cells) into unspecialized, proliferative TRMs through the pro-definitive hematopoietic program under defined conditions. These immature TRMs can stably integrate into developing mouse neural organoids in vitro and acquire features of microglia. In addition, PSC-derived immature TRMs can stably engraft into the lung niche in vivo and adopt alveolar macrophage characteristics. This new platform for modeling mouse TRM development represents a powerful experimental model system for studying TRM function and dysfunction in development and disease.

developmental biology↗

β2 integrins impose a mechanical checkpoint on macrophage phagocytosis

Phagocytosis is an intensely physical process that depends on the mechanical properties of both the phagocytic cell and its chosen target. Here, we employed differentially deformable hydrogel microparticles to examine the role of cargo rigidity in the regulation of phagocytosis by macrophages. Whereas stiff cargos elicited canonical phagocytic cup formation and rapid engulfment, soft cargos induced an architecturally distinct response, characterized by filamentous actin protrusions at the center of the contact site, slower cup advancement, and frequent phagocytic stalling. Using phosphoproteomics, we identified {beta}2 integrins and their downstream effectors as critical mediators of this mechanically regulated phagocytic switch. Indeed, comparison of wild type and {beta}2 integrin deficient macrophages indicated that integrin signaling acts as a mechanical checkpoint by shaping filamentous actin to enable distinct phagocytic engulfment strategies. Collectively, these results illuminate the molecular logic of leukocyte mechanosensing and reveal potential avenues for modulating phagocyte function in immunotherapeutic contexts.

cell biology↗

Plasma membrane abundance dictates phagocytic capacity and functional crosstalk in myeloid cells

Professional phagocytes like neutrophils and macrophages tightly control what they eat, how much they eat, and when they move after eating. We show that plasma membrane abundance is a key arbiter of these cellular behaviors. Neutrophils and macrophages lacking the G-protein subunit G{beta}4 exhibit profound plasma membrane expansion due to enhanced production of sphingolipids. This increased membrane allocation dramatically enhances phagocytosis of bacteria, fungus, apoptotic corpses, and cancer cells. G{beta}4 deficient neutrophils are also defective in the normal inhibition of migration following cargo uptake. In G{beta}4 knockout mice, myeloid cells exhibit enhanced phagocytosis of inhaled fungal conidia in the lung but also increased trafficking of engulfed pathogens to other organs. These results reveal an unexpected, biophysical control mechanism lying at the heart of myeloid functional decision-making.

cell biology↗

WNK1 enforces macrophage lineage fidelity

The appropriate development of macrophages, the bodys professional phagocyte, is essential for organismal development, especially in mammals. This dependence is exemplified by the observation that loss-of-function mutations in colony stimulating factor 1 receptor (CSF1R) results in multiple tissue abnormalities owing to an absence of macrophages. Despite this importance, little is known about the molecular and cell biological regulation of macrophage development. Here, we report the surprising finding that the chloride-sensing kinase With-no-lysine 1 (WNK1) is required for development of tissue-resident macrophages (TRMs). Myeloid-specific deletion of Wnk1 resulted in a dramatic loss of TRMs, disrupted organ development, systemic neutrophilia, and mortality between 3 and 4 weeks of age. Strikingly, we found that myeloid progenitors or precursors lacking WNK1 not only failed to differentiate into macrophages, but instead differentiated into neutrophils. Mechanistically, the cognate CSF1R cytokine macrophage-colony stimulating factor (M-CSF) stimulates macropinocytosis by both mouse and human myeloid progenitors and precursor cells. Macropinocytosis, in turn, induces chloride flux and WNK1 phosphorylation. Importantly, blocking macropinocytosis, perturbing chloride flux during macropinocytosis, and inhibiting WNK1 chloride-sensing activity each skewed myeloid progenitor differentiation from macrophages into neutrophils. Thus, we have elucidated a role for WNK1 during macropinocytosis and discovered a novel function of macropinocytosis in myeloid progenitors and precursor cells to ensure macrophage lineage fidelity. Highlights- Myeloid-specific WNK1 loss causes failed macrophage development and premature death - M-CSF-stimulated myeloid progenitors and precursors become neutrophils instead of macrophages - M-CSF induces macropinocytosis by myeloid progenitors, which depends on WNK1 - Macropinocytosis enforces macrophage lineage commitment

immunology↗

A microbiota-derived metabolite instructs peripheral efferocytosis

The phagocytic clearance of dying cells, termed efferocytosis, is essential for both tissue homeostasis and tissue health during cell death-inducing treatments. Failure to efficiently clear dying cells augments the risk of pathological inflammation and has been linked to a myriad of autoimmune and inflammatory diseases. Although past studies have elucidated local molecular signals that regulate efferocytosis in a tissue, whether signals arising distally also regulate efferocytosis remains elusive. Interestingly, clinical evidence suggests that prolonged use of antibiotics is associated with an increased risk of autoimmune or inflammatory disease development. We therefore hypothesized that intestinal microbes produce molecular signals that regulate efferocytotic ability in peripheral tissue phagocytes. Here, we find that macrophages, the bodys professional phagocyte, display impaired efferocytosis in peripheral tissues in both antibiotic-treated and germ-free mice in vivo, which could be rescued by fecal microbiota transplantation. Mechanistically, the microbiota-derived short-chain fatty acid butyrate directly boosted efferocytosis efficiency and capacity in mouse and human macrophages, with both intestinal and local delivery of butyrate capable of rescuing antibiotic-induced peripheral efferocytosis defects. Bulk mRNA sequencing of primary macrophages treated with butyrate in vitro and single cell mRNA sequencing of macrophages isolated from antibiotic-treated and butyrate-rescued mice revealed specific regulation of phagocytosis-associated transcriptional programs, in particular the induction of programs involved in or supportive of efferocytosis. Surprisingly, the effect of butyrate on efferocytosis was not mediated through G protein-coupled receptor signaling, but instead acted by inhibition of histone deacetylase 3. Strikingly, peripheral efferocytosis was impaired well-beyond withdrawal of antibiotics and, importantly, antibiotic-treated mice exhibited a poorer response to a sterile efferocytosis-dependent inflammation model. Collectively, our results demonstrate that a process essential for tissue homeostasis, efferocytosis, relies on distal molecular signals, and suggest that a defect in peripheral efferocytosis may contribute to the clinically-observed link between broad-spectrum antibiotics use and inflammatory disease.

immunology↗

Novel adaptation supports enhanced macrophage efferocytosis in limited-oxygen environments

Apoptotic cell clearance (efferocytosis), a process essential for organismal homeostasis, is performed by phagocytes that inhabit a wide range of environments, including physiologic hypoxia. Here, we find macrophages, the predominant tissue-resident phagocyte, display enhanced efferocytosis under prolonged (chronic) physiological hypoxia, characterized by increased internalization and accelerated degradation of apoptotic cells. Analysis of mRNA and protein programs revealed that chronic physiological hypoxia induces two distinct but complimentary states in macrophages. The first, primed state consists of concomitant induction of transcriptional and translational programs broadly associated with metabolism in apoptotic cell-naive macrophages that persist during efferocytosis. The second, poised state consists of transcription, but not translation, of phagocyte function programs in apoptotic cell-naive macrophages that are subsequently translated during efferocytosis. Importantly, we discovered that both states are necessary for enhanced continual efferocytosis. Mechanistically, we find that one such primed state consists of the efficient flux of glucose into a noncanonical pentose phosphate pathway (PPP) loop, whereby PPP-derived intermediates cycle back through the PPP to enhance production of NADPH. Furthermore, we found that PPP-derived NADPH directly supports enhanced continual efferocytosis under chronic physiological hypoxia via its role in phagolysosomal maturation and maintenance of cellular redox homeostasis. Thus, macrophages residing under chronic physiological hypoxia adopt states that both support cell fitness and ensure ability to perform essential homeostatic functions rapidly and safely. Highlights- Macrophages residing in chronic physiological hypoxia have enhanced apoptotic cell uptake and degradation - Chronic physiological hypoxia induces both primed and poised states in macrophages - Both primed and poised state programs directly support enhanced continual efferocytosis - A noncanonical PPP loop, a unique primed state, directly supports enhanced efferocytosis and maintains redox homeostasis

immunology↗