Defects in tissue-resident macrophages lead to smaller eardrums and abnormal neurovascular networks with increased middle-ear infection
Zhang, Y.; Wang, P.; Neng, L.; Burwood, G.; Sharma, K.; Kachelmeier, A.; Shi, X.
Show abstract
The tympanic membrane (TM), or eardrum, is essential for hearing. Macrophages, the primary innate immune cells, are densely distributed in the eardrum after birth, especially near blood vessels and nerve fibers. During postnatal development, neonatal tissue-resident macrophages (TRMs) gradually polarize, and their population declines. These dynamic changes closely parallel the maturation of neurovascular networks. What are the precursors of the early wave of TRMs? Are they critical for postnatal TM development? Using fate mapping, single-cell RNA sequencing, and macrophage depletion, this study reveals for the first time that postnatal eardrum TRMs are heterogeneous, originating mainly from embryonic myeloid lineages, with increasing input from postnatal monocyte progenitor-derived cells. Single-cell RNA sequencing identifies gene signatures vital for vascular and neuronal development. Depleting TRMs results in smaller eardrums, disrupted vascular-neuronal networks, and increased risk of middle-ear infection. This study offers new insight into how the innate immune system supports TM maturation and protects against middle-ear infection during a critical postnatal window. TeaserTissue-resident macrophages guide eardrum neurovascular maturation and help prevent middle-ear abnormalities.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Maintenance DNA methylation is essential for regulatory T cell development and stability of suppressive function 94%
- A20's Linear Ubiquitin Binding Motif Restrains Pathogenic Activation of TH17/22 cells and IL-22 Driven Enteritis 93%
- Distinct Colitis-Associated Macrophages Drive NOD2-Dependent Bacterial Sensing and Gut Homeostasis 93%
Similar papers in this journal
- Xenogeneic Skin Transplantation Promotes Angiogenesis and Tissue Regeneration Through Vitamin D-Activated Trem2+ Macrophages 95%
- Single-cell analysis reveals distinct fibroblast plasticity during tenocyte regeneration in zebrafish 95%
- Gastrulation-stage gene expression in Nipbl+/- mouse embryos foreshadows the development of syndromic birth defects 94%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Immunoregulatory subtype of dermal lymphatic endothelial cells at capillary terminals drives lymphatic malformations 96%
- The axillary lymphoid organ - an external, experimentally accessible immune organ in the zebrafish 94%
- A network of CD163+ macrophages monitors enhanced permeability at the blood-dorsal root ganglion barrier 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.