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Updated: Sep 11, 2025

Pull-down of Calmodulin-binding Proteins
Published on: January 23, 2012
Structural Insights and Calcium-Switching Mechanism of Fasciola hepatica Calcium-Binding Protein FhCaBP4
Byeongmin Shin1, Seonha Park1, Ingyo Park1
1Department of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul 02841, Republic of Korea.
Insights
Fasciola hepatica calcium-binding protein 4 (FhCaBP4) has a unique structure, acting as a calcium-responsive signaling hub. Its structure offers a promising, parasite-specific target for developing new treatments against trematode infections.
Area of Science:
- Parasitology
- Structural Biology
- Biochemistry
Background:
- Fasciola hepatica is a significant global health and economic concern, with triclabendazole as the primary treatment.
- Fasciola hepatica calcium-binding proteins (FhCaBPs) possess a unique EF-hand/dynein light chain (DLC)-like domain fusion, making them parasite-specific targets.
Purpose of the Study:
- To determine the high-resolution structure of the full-length FhCaBP4.
- To elucidate the structural basis for FhCaBP4's ligand-binding properties and its role as a potential therapeutic target.
Main Methods:
- X-ray crystallography to determine the apo structure of FhCaBP4 at 1.93 Å resolution.
- In silico mutagenesis, molecular dynamics simulations, and AlphaFold3 modeling.
- Microscale thermophoresis and thermal shift assays to investigate ligand binding and protein stability.
Main Results:
- The FhCaBP4 structure revealed a homodimer with an N-terminal EF-hand pair and a C-terminal DLC-like domain.
- A flexible β4-β5 loop with an FSHEPF core was identified, showing distinct energetic variability compared to FhCaBP2.
- Calcium binding, primarily at EF-hand 2, induced partial rigidification and stabilization, while calmodulin antagonists showed lower affinity and praziquantel had no interaction.
Conclusions:
- FhCaBP4 functions as a calcium-responsive signaling hub with an allosterically coupled EF-hand-DLC interface.
- The unique structural features of FhCaBP4 present a tractable platform for developing novel anti-trematode therapeutics.
Abstract:
Fasciola hepatica remains a global health and economic concern, and treatment still relies heavily on triclabendazole. At the parasite-host interface, F. hepatica calcium-binding proteins (FhCaBPs) have a unique EF-hand/DLC-like domain fusion found only in trematodes. This makes it a parasite-specific target for small compounds and vaccinations. To enable novel therapeutic strategies, we report the first elevated-resolution structure of a full-length FhCaBP4. The apo structure was determined at 1.93 Å resolution, revealing a homodimer architecture that integrates an N-terminal, calmodulin-like, EF-hand pair with a C-terminal dynein light chain (DLC)-like domain. Structure-guided in silico mutagenesis identified a flexible, 16-residue β4-β5 loop (LTGSYWMKFSHEPFMS) with an FSHEPF core that demonstrates greater energetic variability than its FhCaBP2 counterpart, likely explaining the distinct ligand-binding profiles of these paralogs. Molecular dynamics simulations and AlphaFold3 modeling suggest that EF-hand 2 acts as the primary calcium-binding site, with calcium coordination inducing partial rigidification and modest expansion of the protein structure. Microscale thermophoresis confirmed calcium as the major ligand, while calmodulin antagonists bound with lower affinity and praziquantel demonstrated no interaction. Thermal shift assays revealed calcium-dependent stabilization and a merger of biphasic unfolding transitions. These results suggest that FhCaBP4 functions as a calcium-responsive signaling hub, with an allosterically coupled EF-hand-DLC interface that could serve as a structurally tractable platform for drug targeting in trematodes.
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