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Doering, C.-L.

Publications and source records attributed to Doering, C.-L..

3 recordsLinked to original sources

M-CSF drives alveolar macrophage plasticity during development and cytomegalovirus infection

Alveolar macrophages (AM), the most frequent resident immune cells of the lung, are at the first line of defence against respiratory pathogens and instruct structural lung cells, e.g. in tissue repair. They are long-lived and receive their terminal phenotypic imprint through signals originating from the unique location at the tissue-air interface, as well as through cytokines like granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor-{beta} (TGF-{beta}). However, the regulatory mechanisms governing their phenotypic plasticity, which is conceptually critical for their positioning and differentiation in early life and for their functional adaptation during infection, remain poorly defined. Here we explored respiratory tract infection with cytomegalovirus (CMV), which is closely linked to mammalian immune evolution. Complementary host-pathogen fate-mapping strategies revealed AM to constitute the bottleneck for efficient mouse (M)CMV infection. MCMV infection induced macrophage colony-stimulating factor (M-CSF) in the alveolar space, and culturing of AM in M-CSF led to a profound remodelling of morphology, immunophenotype, and transcriptional identity, e.g. it increased the expression of interferon-stimulated genes (ISG), which modulated susceptibility to infection. Notably, already at baseline recently differentiated neonatal AM across species retained an M-CSF-associated transcriptional program. This was linked to reduced permissiveness to respiratory MCMV infection in vivo. Overall, our findings identify the role of M-CSF-dependent signalling in conferring plasticity to AM, when it is most needed, particularly during early-life establishment and in response to viral infection.

immunology↗

Sensory neurons shape macrophage identity via TGF-β signalling

Macrophages play integral roles in maintaining homeostasis and function in their tissues of residence. In the skin, prenatally seeded and highly specialized macrophages physically interact with sensory nerves and contribute to their regeneration after injury. However, mechanisms underlying the development and maintenance of this potentially lifelong commitment of macrophages to nociceptors remain largely elusive. Here, we found that infiltrating myeloid progenitor cells approached the sprouting axons of sensory nerves and gradually adopted a nerve-associated macrophage-like profile. This change in identity was steered and maintained by the immediate microenvironment, in particular TGF-{beta}, which was locally activated by the physical interaction with nerves and integrin-mediated cleavage. Following injury, TGF-{beta} driven specification of macrophages essentially supported nerve regeneration. Overall, we identified TGF-{beta} as a central mediator governing local imprinting and long-term specialization of macrophages in the skin, providing insights into the bidirectional communication between macrophages and sensory nerves.

immunology↗

Tissue imprinting defines functional mosaic of dermal macrophages

Dermal macrophages (macs) protect the skin from invading pathogens. They are derived from embryonic as well as hematopoietic progenitors. However, the functional impact of their diverse origin and the control networks defining different subsets remain unclear. Here, using multidimensional analysis of dermal macs, we reveal that the absence of circulating monocytes in interferon regulatory factor 8 (Irf8) deficient mice delays mac renewal during the steady state. Yet, the functional mosaic of dermal macs remains largely intact, i.e., major dermal mac subsets develop independently of monocyte replenishment. Thus, the tissue microenvironment is sufficient to induce alternative differentiation pathways and functional specialization of resident cells. Mycobacterial skin infection induces a steep increase in mac density due to monocyte-derived macs which execute urgent antibacterial functions and differentiate into site-adapted mac subsets in wildtype but not Irf8-/-mice, while long-term resident macs are required to initiate a tissue repair program already in early stages of infection. In summary, we introduce a model, where an intricate network of specialized mac subsets develops to meet microanatomical needs and external cellular input is required only during immunological emergency situations. HighlightsO_LIIrf8-/--driven monocytopenia has negligible impact on homeostatic dermal macrophage diversity. C_LIO_LIResident dermal macrophages have diverse specializations but remain flexible to adapt to challenges such as lacking monocyte influx C_LIO_LIBone marrow-derived macrophages differentiate into specialized resident cells, with microenvironmental cues overriding origin-dependent programming. C_LIO_LIIn chronic bacterial infections, distinct specialized bone-marrow-derived macrophages mount the defense, while resident macrophages activate a tissue-modifying program from early on. C_LI

immunology↗