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Published on: September 15, 2010
CD4-Induced conformational changes in the human immunodeficiency virus type 1 gp120 glycoprotein: consequences for
N Sullivan1, Y Sun, Q Sattentau
1Division of Human Retrovirology, Dana-Farber Cancer Institute, Department of Pathology, Harvard Medical School, Boston, Massachusetts 02115, USA.
Insights
Soluble CD4 binding induces conformational changes in human immunodeficiency virus type 1 (HIV-1) envelope glycoproteins, exposing critical epitopes. These changes are essential for HIV-1 entry and reveal viral strategies to evade immune responses.
Area of Science:
- Virology
- Immunology
- Structural Biology
Background:
- Human immunodeficiency virus type 1 (HIV-1) entry requires sequential binding of gp120 to CD4 and chemokine receptors.
- Soluble CD4 (sCD4) binding is known to alter HIV-1 envelope glycoprotein conformation.
Purpose of the Study:
- To investigate the nature and functional significance of gp120 conformational changes induced by CD4 binding.
- To understand how these changes impact HIV-1 entry and antibody recognition.
Main Methods:
- Utilized monoclonal antibodies (17b and CG10) that recognize CD4-inducible gp120 epitopes and block chemokine receptor binding.
- Analyzed conformational changes in envelope glycoproteins from various HIV-1 isolates using antibody binding assays.
- Investigated the role of gp120 V1/V2 loops in CD4-induced epitope exposure.
Main Results:
- sCD4 binding increased the exposure of the 17b epitope on HIV-1 envelope glycoproteins from both T-cell line-adapted and primary isolates.
- CD4-induced epitope exposure involved movement of the gp120 V1/V2 loops and occurred across a range of temperatures.
- Amino acid mutations affecting 17b epitope exposure impaired syncytia formation and virus entry.
- Antibodies 17b and CG10 epitopes were minimally accessible after gp120 attachment to CD4.
Conclusions:
- CD4-induced conformational changes in HIV-1 gp120 are functionally critical for viral entry.
- These conformational shifts are essential for exposing epitopes recognized by certain antibodies.
- HIV-1 employs strategies to shield chemokine receptor-binding sites from the immune system through conformational changes.
Abstract:
Human immunodeficiency virus type 1 (HIV-1) entry into target cells involves sequential binding of the gp120 exterior envelope glycoprotein to CD4 and to specific chemokine receptors. Soluble CD4 (sCD4) is thought to mimic membrane-anchored CD4, and its binding alters the conformation of the HIV-1 envelope glycoproteins. Two cross-competing monoclonal antibodies, 17b and CG10, that recognize CD4-inducible gp120 epitopes and that block gp120-chemokine receptor binding were used to investigate the nature and functional significance of gp120 conformational changes initiated by CD4 binding. Envelope glycoproteins derived from both T-cell line-adapted and primary HIV-1 isolates exhibited increased binding of the 17b antibody in the presence of sCD4. CD4-induced exposure of the 17b epitope on the oligomeric envelope glycoprotein complex occurred over a wide range of temperatures and involved movement of the gp120 V1/V2 variable loops. Amino acid changes that reduced the efficiency of 17b epitope exposure following CD4 binding invariably compromised the ability of the HIV-1 envelope glycoproteins to form syncytia or to support virus entry. Comparison of the CD4 dependence and neutralization efficiencies of the 17b and CG10 antibodies suggested that the epitopes for these antibodies are minimally accessible following attachment of gp120 to cell surface CD4. These results underscore the functional importance of these CD4-induced changes in gp120 conformation and illustrate viral strategies for sequestering chemokine receptor-binding regions from the humoral immune response.
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