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Updated: Aug 7, 2026

Imaging of HIV-1 Envelope-induced Virological Synapse and Signaling on Synthetic Lipid Bilayers
Published on: March 8, 2012
CD4 activation of HIV fusion
1Centre d'Immunologie de Marseille-Luminy, France.
Insights
The CD4 antigen is the primary receptor for HIV-1 and HIV-2 entry into cells. Soluble CD4 (sCD4) binding to the HIV gp120 glycoprotein triggers viral fusion by exposing fusogenic components.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Human immunodeficiency viruses (HIV-1 and HIV-2) primarily infect CD4+ cells.
- Viral entry initiates via high-affinity binding between CD4 and the HIV envelope glycoprotein gp120.
- Soluble CD4 (sCD4) systems enable analysis of binding kinetics, thermodynamics, and fusion events.
Purpose of the Study:
- To analyze the interaction between CD4 and HIV gp120.
- To investigate the post-binding events leading to virus-cell membrane fusion.
- To understand the mechanism of receptor-mediated activation of HIV fusion.
Main Methods:
- Utilized soluble recombinant CD4 (sCD4) to study gp120 binding.
- Analyzed kinetic and thermodynamic properties of CD4-gp120 interactions.
- Investigated conformational changes in gp120 and gp41 upon sCD4 binding.
Main Results:
- sCD4 binding affinity to gp120 depends on gp120 sequence and tertiary structure.
- For HIV-1, sCD4 binding induces gp120 dissociation from gp41, exposing cryptic gp41 epitopes and triggering fusion.
- CD4-induced molecular rearrangements in gp120 are more subtle in primary HIV-1, HIV-2, and SIV isolates.
Conclusions:
- CD4 binding is necessary and sufficient for activating HIV fusion.
- Receptor-mediated activation of fusion involves exposing fusogenic gp41 components.
- The gp120 V3 loop and gp41 N-terminus are critical for HIV entry.
Abstract:
The primary cellular receptor for the human immunodeficiency viruses type 1 (HIV-1) and type 2 (HIV-2) is the CD4 antigen. HIV infection of CD4+ cells is initiated by binding of the virus to the cell surface, via a high affinity interaction between CD4 and the HIV outer envelope glycoprotein, gp120. The development of model systems using soluble recombinant forms of CD4 (sCD4) has allowed kinetic and thermodynamic analyses of CD4 binding to gp120, and study of the post-binding events leading to virus-cell membrane fusion. It has thus been demonstrated that the affinity of sCD4 for gp120 on virions or HIV-infected cells depends on both the primary sequence and the tertiary structure of gp120 in the membrane. With cell-line adapted isolates of HIV-1, sCD4 binding induces conformational changes in gp120, leading to the complete dissociation of gp120 from the transmembrane glycoprotein, gp41, and exposing cryptic epitopes of gp41. Similar observations have been made with cell-anchored CD4; exposure of cryptic gp41 epitopes occurs at the fusion interface between clusters of CD4-expressing and HIV-infected cells. Thus, for HIV-1, CD4 induces exposure of fusogenic components of gp41 which triggers virus-cell membrane coalescence. This is termed receptor-mediated activation of fusion. With primary isolates of HIV-1 and the related lentiviruses, HIV-2 and simian immunodeficiency virus (SIV), the CD4-induced molecular rearrangements in gp120 are more subtle, implying that there is a spectrum of responses to sCD4 binding. The high-affinity binding site on CD4 for gp120 is necessary and probably sufficient for activation of HIV fusion, although other regions of CD4 may indirectly influence viral entry. There are two regions on the envelope glycoproteins which are recognized as playing a role in HIV entry: the N-terminus of gp41 and the gp120 V3 loop. The roles of these domains are discussed.
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