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Updated: May 16, 2026

Pull-down of Calmodulin-binding Proteins
Published on: January 23, 2012
Structural characterization of the interaction of human lactoferrin with calmodulin
Jessica L Gifford1, Hiroaki Ishida, Hans J Vogel
1Biochemistry Research Group, Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada.
Insights
Lactoferrin (Lf) binds calmodulin (CaM) in an extended conformation, interacting primarily with CaM's C-terminal lobe. This interaction reveals a secondary binding site, crucial for understanding CaM's regulatory functions with intact protein complexes.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Lactoferrin (Lf) is an iron-binding glycoprotein found in exocrine fluids and released at inflammatory sites.
- Lf is internalized and acts as a transcriptional trans-activator in the nucleus.
- Calmodulin (CaM) is a calcium-binding protein in the cytoplasm and nucleus of activated cells.
Purpose of the Study:
- To structurally characterize the interaction between human lactoferrin (Lf) and calmodulin (CaM).
- To define the binding interface and conformational changes of CaM when bound to intact apo-Lf.
- To investigate the significance of secondary interaction interfaces in CaM-protein complexes.
Main Methods:
- Touted-based Nuclear Magnetic Resonance (NMR) techniques were employed.
- Chemical shift perturbation and cross-saturation experiments were used.
- Probes included CaM's backbone amides and methionine residues.
Main Results:
- Ca(2+)-CaM assumes an extended structure when bound to apo-Lf, differing from its classical collapsed conformation.
- Apo-Lf predominantly interacts with the C-terminal lobe of Ca(2+)-CaM.
- A secondary interaction interface, distinct from the primary binding domain, was identified.
Conclusions:
- The study elucidates the structural basis of the Lf-CaM interaction, revealing an extended CaM conformation and a secondary binding interface.
- Understanding these interactions in intact complexes is vital for comprehending CaM's regulatory roles.
- The methodology can be applied to study other calcium-binding proteins in complex formation.
Abstract:
Lactoferrin (Lf) is an 80 kDa, iron (Fe(3+))-binding immunoregulatory glycoprotein secreted into most exocrine fluids, found in high concentrations in colostrum and milk, and released from neutrophil secondary granules at sites of infection and inflammation. In a number of cell types, Lf is internalized through receptor-mediated endocytosis and targeted to the nucleus where it has been demonstrated to act as a transcriptional trans-activator. Here we characterize human Lf's interaction with calmodulin (CaM), a ubiquitous, 17 kDa regulatory calcium (Ca(2+))-binding protein localized in the cytoplasm and nucleus of activated cells. Due to the size of this intermolecular complex (∼100 kDa), TROSY-based NMR techniques were employed to structurally characterize Ca(2+)-CaM when bound to intact apo-Lf. Both CaM's backbone amides and the ε-methyl group of key methionine residues were used as probes in chemical shift perturbation and cross-saturation experiments to define the binding interface of apo-Lf on Ca(2+)-CaM. Unlike the collapsed conformation through which Ca(2+)-CaM binds the CaM-binding domains of its classical targets, Ca(2+)-CaM assumes an extended structure when bound to apo-Lf. Apo-Lf appears to interact predominantly with the C-terminal lobe of Ca(2+)-CaM, enabling the N-terminal lobe to potentially bind another target. Our use of intact apo-Lf has made possible the identification of a secondary interaction interface, removed from CaM's primary binding domain. Secondary interfaces play a key role in the target's response to CaM binding, highlighting the importance of studying intact complexes. This solution-based approach can be applied to study other regulatory calcium-binding EF-hand proteins in intact intermolecular complexes.
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