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Biochemical and Cellular Analysis Reveals Ligand Binding Specificities, a Molecular Basis for Ligand Recognition, and
Senem Aykul1, Anthony Parenti1, Kit Yee Chu1
1From the Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, Michigan 48824-1319.
Abstract:
Transforming growth factor β (TGF-β) pathways are key determinants of cell fate in animals. Their basic mechanism of action is simple. However, to produce cell-specific responses, TGF-β pathways are heavily regulated by secondary factors, such as membrane-associated EGF-CFC family proteins. Cellular activities of EGF-CFC proteins have been described, but their molecular functions, including how the mammalian homologs Cripto-1 and Cryptic recognize and regulate TGF-β family ligands, are less clear. Here we use purified human Cripto-1 and mouse Cryptic produced in mammalian cells to show that these two EGF-CFC homologs have distinct, highly specific ligand binding activities. Cripto-1 interacts with BMP-4 in addition to its known partner Nodal, whereas Cryptic interacts only with Activin B. These interactions depend on the integrity of the protein, as truncated or deglycosylated Cripto-1 lacked BMP-4 binding activity. Significantly, Cripto-1 and Cryptic blocked binding of their cognate ligands to type I and type II TGF-β receptors, indicating that Cripto-1 and Cryptic contact ligands at their receptor interaction surfaces and, thus, that they could inhibit their ligands. Indeed, soluble Cripto-1 and Cryptic inhibited ligand signaling in various cell-based assays, including SMAD-mediated luciferase reporter gene expression, and differentiation of a multipotent stem cell line. But in agreement with previous work, the membrane bound form of Cripto-1 potentiated signaling, revealing a critical role of membrane association for its established cellular activity. Thus, our studies provide new insights into the mechanism of ligand recognition by this enigmatic family of membrane-anchored TGF-β family signaling regulators and link membrane association with their signal potentiating activities.
Insights
EGF-CFC proteins Cripto-1 and Cryptic exhibit distinct ligand binding, regulating transforming growth factor β (TGF-β) signaling. Membrane association is crucial for Cripto-1
Area of Science:
- Cellular Biology
- Molecular Biology
- Developmental Biology
Background:
- Transforming growth factor β (TGF-β) pathways control cell fate.
- EGF-CFC proteins modulate TGF-β pathway specificity.
- Molecular mechanisms of Cripto-1 and Cryptic in TGF-β regulation are unclear.
Purpose of the Study:
- To investigate the ligand binding specificities of human Cripto-1 and mouse Cryptic.
- To elucidate the role of protein integrity and membrane association in Cripto-1 and Cryptic function.
- To understand how Cripto-1 and Cryptic regulate TGF-β family ligand signaling.
Main Methods:
- Purification of human Cripto-1 and mouse Cryptic from mammalian cells.
- Ligand binding assays using purified proteins.
- Cell-based assays measuring SMAD-mediated reporter gene expression and stem cell differentiation.
Main Results:
- Cripto-1 binds BMP-4 and Nodal; Cryptic binds Activin B.
- Protein integrity is essential for Cripto-1's BMP-4 binding.
- Both proteins inhibit ligand binding to TGF-β receptors and downstream signaling in soluble forms.
- Membrane-bound Cripto-1 potentiates signaling, unlike its soluble form.
Conclusions:
- Cripto-1 and Cryptic possess distinct, specific ligand-binding profiles.
- These EGF-CFC proteins act as direct inhibitors of TGF-β family ligands by blocking receptor interaction.
- Membrane association dictates Cripto-1's signal-potentiating activity, highlighting context-dependent functions.
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