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Notch and Ras promote sequential steps of excretory tube development in C. elegans
Ishmail Abdus-Saboor1, Vincent P Mancuso, John I Murray
1Department of Genetics, University of Pennsylvania School of Medicine, Philadelphia, PA 19104, USA.
Abstract:
Receptor tyrosine kinases and Notch are crucial for tube formation and branching morphogenesis in many systems, but the specific cellular processes that require signaling are poorly understood. Here we describe sequential roles for Notch and Epidermal growth factor (EGF)-Ras-ERK signaling in the development of epithelial tube cells in the C. elegans excretory (renal-like) organ. This simple organ consists of three tandemly connected unicellular tubes: the excretory canal cell, duct and G1 pore. lin-12 and glp-1/Notch are required to generate the canal cell, which is a source of LIN-3/EGF ligand and physically attaches to the duct during de novo epithelialization and tubulogenesis. Canal cell asymmetry and let-60/Ras signaling influence which of two equivalent precursors will attach to the canal cell. Ras then specifies duct identity, inducing auto-fusion and a permanent epithelial character; the remaining precursor becomes the G1 pore, which eventually loses epithelial character and withdraws from the organ to become a neuroblast. Ras continues to promote subsequent aspects of duct morphogenesis and differentiation, and acts primarily through Raf-ERK and the transcriptional effectors LIN-1/Ets and EOR-1. These results reveal multiple genetically separable roles for Ras signaling in tube development, as well as similarities to Ras-mediated control of branching morphogenesis in more complex organs, including the mammalian kidney. The relative simplicity of the excretory system makes it an attractive model for addressing basic questions about how cells gain or lose epithelial character and organize into tubular networks.
Insights
Notch and Epidermal growth factor (EGF)-Ras-ERK signaling guide C. elegans excretory organ development. Sequential signaling specifies cell fates, controlling tube formation and epithelial character for renal-like organogenesis.
Area of Science:
- Developmental Biology
- Cell Signaling
- Organogenesis
Background:
- Receptor tyrosine kinases and Notch signaling are vital for tube formation and branching morphogenesis.
- Specific cellular roles of these signaling pathways in development remain unclear.
Purpose of the Study:
- To investigate sequential roles of Notch and Epidermal growth factor (EGF)-Ras-ERK signaling in C. elegans excretory organ development.
- To understand cellular processes governing epithelial tube formation and cell fate specification.
Main Methods:
- Utilized the C. elegans excretory (renal-like) organ, a simple unicellular tube system.
- Analyzed genetic requirements for lin-12 and glp-1/Notch in canal cell development.
- Investigated let-60/Ras signaling roles in duct and G1 pore specification.
Main Results:
- Notch signaling is essential for generating the canal cell, a source of LIN-3/EGF.
- Ras signaling specifies duct identity, inducing auto-fusion and epithelial character.
- Ras signaling, via Raf-ERK and LIN-1/Ets, drives duct morphogenesis and differentiation.
Conclusions:
- Ras signaling has multiple, genetically distinct roles in tube development.
- Findings reveal similarities to Ras-mediated control in complex organ branching, like the mammalian kidney.
- The C. elegans excretory system serves as a model for epithelial character acquisition and tubular network organization.
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