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New Ligand Binding Function of Human Cerberus and Role of Proteolytic Processing in Regulating Ligand-Receptor
Senem Aykul1, Erik Martinez-Hackert1
1Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, MI 48824-1319, USA.
Abstract:
Cerberus is a key regulator of vertebrate embryogenesis. Its biological function has been studied extensively in frog and mouse embryos. Its ability to bind and antagonize the transforming growth factor-β (TGF-β) family ligand Nodal is well established. Strikingly, the molecular function of Cerberus remains poorly understood. The underlying reason is that Cerberus is a complex, multifunctional protein: It binds and inhibits multiple TGF-β family ligands, it may bind and inhibit some Wnt family members, and two different forms with distinct activities have been described. In addition, sequence homology between frog and mammalian Cerberus is low, suggesting that previous studies, which analyzed frog Cerberus function, may not accurately describe the function of mammalian Cerberus. We therefore undertook to determine the molecular activities of human Cerberus in TGF-β family signaling. Using purified proteins, surface plasmon resonance, and reporter gene assays, we discovered that human Cerberus bound and inhibited the TGF-β family ligands Activin B, BMP-6, and BMP-7, but not the frog Cerberus ligand BMP-2. Notably, full-length Cerberus successfully blocked ligand binding to type II receptors, but the short form was less effective. In addition, full-length Cerberus suppressed breast cancer cell migration but the short form did not. Thus, our findings expand the roles of Cerberus as TGF-β family signaling inhibitor, provide a molecular rationale for the function of the N-terminal region, and support the idea that Cerberus could have regulatory activities beyond direct inhibition of TGF-β family signaling.
Insights
Human Cerberus protein inhibits multiple transforming growth factor-β (TGF-β) signaling pathways, including Activin B and BMPs. Full-length Cerberus is more effective than its short form in blocking receptor binding and suppressing cancer cell migration.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cancer Research
Background:
- Cerberus is a crucial regulator of vertebrate embryogenesis.
- Its interaction with Nodal, a transforming growth factor-β (TGF-β) ligand, is known, but its precise molecular functions are unclear.
- Low sequence homology between frog and mammalian Cerberus suggests species-specific functions.
Purpose of the Study:
- To elucidate the molecular activities of human Cerberus in TGF-β family signaling.
- To investigate the differential functions of full-length and short forms of human Cerberus.
Main Methods:
- Purified protein analysis
- Surface plasmon resonance (SPR) to assess binding kinetics
- Reporter gene assays to measure signaling inhibition
- Cell migration assays using breast cancer cells
Main Results:
- Human Cerberus binds and inhibits TGF-β family ligands Activin B, BMP-6, and BMP-7.
- Full-length Cerberus effectively blocks ligand binding to type II receptors, while the short form is less potent.
- Full-length Cerberus suppresses breast cancer cell migration, but the short form does not.
Conclusions:
- Human Cerberus acts as a broader inhibitor of TGF-β family signaling than previously understood.
- The N-terminal region of Cerberus is critical for its inhibitory activity and receptor interaction.
- Cerberus may possess regulatory roles beyond direct TGF-β signaling inhibition.
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