Related Experiment Video
Updated: Feb 4, 2026

A "Dual-Addition" Calcium Fluorescence Assay for the High-Throughput Screening of Recombinant G Protein-Coupled Receptors
Published on: December 2, 2022
The human immunodeficiency virus type 1 transmembrane gp41 protein is a calcium-binding protein and interacts with
C F Ebenbichler1, H Stoiber, R Schneider
1Institut für Hygiene, Universität Innsbruck, Innsbruck, Austria.
Insights
Human immunodeficiency virus (HIV) fusion relies on calcium ions. The HIV-1 transmembrane protein gp41 binds calcium, facilitating interaction with target cells during viral entry.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- HIV-1 fusion is essential for viral replication, initiated by gp120-CD4 binding.
- The fusion process involves the gp41 envelope glycoprotein inserting into the target cell membrane.
- Calcium ions' role in HIV-1 fusion was suggested but mechanistically unclear.
Purpose of the Study:
- To investigate the role of calcium ions in HIV-1 fusion.
- To identify potential calcium-binding proteins involved in the fusion mechanism.
- To determine if the HIV-1 transmembrane protein gp41 binds calcium.
Main Methods:
- Computer-assisted sequence analysis to identify potential calcium-binding sites in gp41.
- Calcium-binding experiments using a recombinant soluble form of gp41 (rsgp41).
- Radioactive calcium binding assays with rsgp41 immobilized on Sepharose, testing specificity with other ions and conditions.
Main Results:
- Sequence analysis revealed a putative EF-hand calcium-binding structure in gp41.
- Calcium-dependent binding of rsgp41 to putative second-receptor molecules was observed.
- Calcium binding to rsgp41 was specific, dose-dependent, and influenced maximum binding but not affinity.
- Binding was dependent on the oxidative state of rsgp41, indicating structural importance.
Conclusions:
- The HIV-1 transmembrane protein gp41 is a calcium-binding protein.
- gp41 interacts with second-receptor molecules in a calcium-dependent manner, implicating it in the fusion process.
- This finding provides new insights into the molecular mechanisms of HIV-1 entry.
Abstract:
Fusion is a crucial event in the life cycle of the human immunodeficiency virus (HIV); is is initiated by the high-affinity binding between gp120, the external surface glycoprotein of HIV-1, and the differentiation antigen CD4 and finally results in the insertion of the hydrophobic amino terminus of the gp41 envelope glycoprotein into the plasma membrane of the target cell. Recent results suggest that this process is dependent upon calcium ions, but the mechanism or the proteins involved are not understood. Computer-assisted sequence analysis revealed a putative calcium-binding site within the extracellular part of gp41 that was highly reminiscent of the calcium-binding EF-hand structure. To test this hypothesis, calcium-binding experiments were performed. Binding of a recombinant soluble form of the transmembrane protein (rsgp41) to its putative second-receptor molecules in equilibrium was dependent upon calcium. The affinity was not influenced by calcium, but the maximum binding was increased in a dose-dependent manner. Radioactive calcium bound to rsgp41 covalently attached to Sepharose but not to bovine serum albumin. Binding was inhibited by the addition of nonradioactive calcium, indicating that binding was specific. Neither magnesium nor manganese inhibited the binding of labeled calcium to rsgp41. Binding was dependent on the oxidative state of the rsgp41 molecule, suggesting the functional importance of the correctly folded structure of the rsgp41 protein. In this report, we demonstrate that the HIV-1 transmembrane protein gp41 is a calcium-binding protein and interacts with the putative second-receptor molecules in a calcium-dependent manner.
Related Concept Videos
G-protein Coupled Receptors
Factors Affecting Protein-Drug Binding: Drug Interactions
Displacement interactions can have varying outcomes, ranging from toxicity to virtually...
Introduction to Membrane Proteins
Single-pass Transmembrane Proteins
Protein-protein Interfaces
Conservation of Protein Domains Over Different Proteins
A limited set of protein domains often duplicate and recombine during evolution. These domains can be organized in different combinations to...

