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Diverse Roles for Axon Guidance Pathways in Adult Tissue Architecture and Function

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Journal Nat Sci (Weinh)
Date 2023 Jul 17
PMID 37456985
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Abstract

Classical axon guidance ligands and their neuronal receptors were first identified due to their fundamental roles in regulating connectivity in the developing nervous system. Since their initial discovery, it has become clear that these signaling molecules play important roles in the development of a broad array of tissue and organ systems across phylogeny. In addition to these diverse developmental roles, there is a growing appreciation that guidance signaling pathways have important functions in adult organisms, including the regulation of tissue integrity and homeostasis. These roles in adult organisms include both tissue-intrinsic activities of guidance molecules, as well as systemic effects on tissue maintenance and function mediated by the nervous and vascular systems. While many of these adult functions depend on mechanisms that mirror developmental activities, such as regulating adhesion and cell motility, there are also examples of adult roles that may reflect signaling activities that are distinct from known developmental mechanisms, including the contributions of guidance signaling pathways to lineage commitment in the intestinal epithelium and bone remodeling in vertebrates. In this review, we highlight studies of guidance receptors and their ligands in adult tissues outside of the nervous system, focusing on experimental contexts. Together, these studies lay the groundwork for future investigation into the conserved and tissue-specific mechanisms of guidance receptor signaling in adult tissues.

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References
1.
Tonna S, Takyar F, Vrahnas C, Crimeen-Irwin B, Ho P, Poulton I . EphrinB2 signaling in osteoblasts promotes bone mineralization by preventing apoptosis. FASEB J. 2014; 28(10):4482-96. DOI: 10.1096/fj.14-254300. View

2.
Adams M, Dwulet J, Briggs J, Reissaus C, Jin E, Szulczewski J . Reduced synchroneity of intra-islet Ca oscillations in vivo in -deficient β cells. Elife. 2021; 10. PMC: 8289414. DOI: 10.7554/eLife.61308. View

3.
Escot S, Willnow D, Naumann H, Di Francescantonio S, Spagnoli F . Robo signalling controls pancreatic progenitor identity by regulating Tead transcription factors. Nat Commun. 2018; 9(1):5082. PMC: 6269453. DOI: 10.1038/s41467-018-07474-6. View

4.
Vaught D, Chen J, Brantley-Sieders D . Regulation of mammary gland branching morphogenesis by EphA2 receptor tyrosine kinase. Mol Biol Cell. 2009; 20(10):2572-81. PMC: 2682598. DOI: 10.1091/mbc.e08-04-0378. View

5.
Adams R, Eichmann A . Axon guidance molecules in vascular patterning. Cold Spring Harb Perspect Biol. 2010; 2(5):a001875. PMC: 2857165. DOI: 10.1101/cshperspect.a001875. View