A Non-Canonical Role For Notch3 In Building The Intestinal Lymphatic Niche
Huang, L.; Sanketi, B.; Mantri, M.; Chen, Y.; Wang, C.; Tran, T.; De Vlaminck, I.; Kurpios, N. A.
Show abstract
Lymphatic dysfunction drives severe and often intractable human diseases, yet the cellular mechanisms that establish functional lymphatic vasculature remain poorly understood. In the intestine, lacteals are specialized lymphatic vessels that absorb dietary lipids and rely on surrounding villus smooth muscle to propel lymph, forming the muscular-lacteal complex (MLC). How distinct mesenchymal populations coordinate assembly of this functional lymphatic unit remains unknown. By integrating developmental single-cell profiling, genetic lineage tracing, conditional mouse genetics, and functional assays of lipid absorption, we identify Notch3 as a central organizer of MLC development that coordinates communication between distinct mesenchymal lineages. While Notch3 promotes smooth muscle differentiation within the PDGFR lineage, PDGFR{beta} lineage cells do not directly contribute to villus smooth muscle. Instead, they function as Notch3-dependent signaling hubs that instruct expansion and differentiation of neighboring PDGFR smooth muscle progenitors via paracrine TGF{beta} signaling. Loss of Notch3 in PDGFR{beta} cells disrupts MLC development, impairs intestinal lipid absorption, and causes postnatal growth failure and lethality. Restoration of TGF{beta} signaling rescues the structural, functional, and survival defects caused by Notch3 loss, identifying TGF{beta} as a critical downstream effector of the Notch3 pathway. Furthermore, selective inhibition of canonical Notch signaling in the PDGFR{beta} lineage fails to phenocopy Notch3 deletion, revealing a non-canonical mechanism of Notch3 function in intestinal mesenchymal development. Together, these findings establish PDGFR{beta} cells as essential mesenchymal signaling organizers and define a new paradigm in which lineage-specific, non-canonical Notch3 signaling coordinates villus stromal communication to build a functional intestinal lymphatic niche.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- HNF4 factors control chromatin accessibility and are redundantly required for maturation of the fetal intestine 95%
- Tfap2a is a novel gatekeeper of differentiation in renal progenitors during kidney development 94%
- Canonical NOTCH signaling controls the early progenitor state and emergence of the medullary epithelial lineage in fetal thymus development. 94%
Similar papers in this journal
- Single-cell sequencing of developing human gut reveals transcriptional links to childhood Crohns disease 93%
- Defining the contribution of Troy-positive progenitor cells to the mouse esophageal epithelium. 93%
- Jag1 modulates an oscillatory Dll1-Notch-Hes1 signaling module to coordinate growth and fate of pancreatic progenitors 93%
Similar papers in this journal
- A distinct cardiopharyngeal mesoderm genetic hierarchy establishes antero-posterior patterning of esophagus striated muscle 95%
- Rpl24Bst mutation suppresses colorectal cancer by promoting eEF2 phosphorylation via eEF2K 93%
- Cell-autonomous regulation of epithelial cell quiescence by calcium channel Trpv6 93%
"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.