Mapping the origin and fate of myeloid cells in distinct compartments of the eye by single-cell profiling.
Peter WieghoferNora HagemeyerRoman SankowskiAnja SchlechtOri StaszewskiLukas AmannMarkus GruberJana KochAnnika HausmannPeipei ZhangStefaniya BonevaTakahiro MasudaIngo HilgendorfTobias GoldmannChotima BöttcherJosef PrillerFabio Mv RossiClemens A LangeMarco PrinzPublished in: The EMBO journal (2021)
Similar to the brain, the eye is considered an immune-privileged organ where tissue-resident macrophages provide the major immune cell constituents. However, little is known about spatially restricted macrophage subsets within different eye compartments with regard to their origin, function, and fate during health and disease. Here, we combined single-cell analysis, fate mapping, parabiosis, and computational modeling to comprehensively examine myeloid subsets in distinct parts of the eye during homeostasis. This approach allowed us to identify myeloid subsets displaying diverse transcriptional states. During choroidal neovascularization, a typical hallmark of neovascular age-related macular degeneration (AMD), we recognized disease-specific macrophage subpopulations with distinct molecular signatures. Our results highlight the heterogeneity of myeloid subsets and their dynamics in the eye that provide new insights into the innate immune system in this organ which may offer new therapeutic targets for ophthalmological diseases.
Keyphrases
- age related macular degeneration
- single cell
- bone marrow
- dendritic cells
- rna seq
- peripheral blood
- acute myeloid leukemia
- high resolution
- healthcare
- public health
- adipose tissue
- immune response
- induced apoptosis
- mental health
- high throughput
- gene expression
- optical coherence tomography
- vascular endothelial growth factor
- multiple sclerosis
- oxidative stress
- quality improvement
- health information
- mass spectrometry
- cell cycle arrest
- signaling pathway
- high density
- white matter
- endothelial cells
- cell proliferation
- cell death
- subarachnoid hemorrhage
- dna methylation
- pi k akt
- data analysis