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Updated: Aug 8, 2026

CN-GELFrEE - Clear Native Gel-eluted Liquid Fraction Entrapment Electrophoresis
Published on: February 29, 2016
Analysis of recombinant and native CD4 by one- and two-dimensional gel electrophoresis
G W Lynch1, M Dearden, A J Sloane
1Department of Virology, ICPMR, University of Sydney, Westmead Hospital, Westmead and National Centre for HIV Virology Research, Australia. GARRYL@Westmed.WH.SU.E-DU.AU
Insights
Understanding CD4 conformation is key for T cell activation and HIV infection. This study examined native and recombinant CD4 structure, revealing CD4
Area of Science:
- Molecular Biology
- Immunology
- Virology
Background:
- CD4 conformation is crucial for its role as a ligand in T cell activation (MHC II) and HIV infection (gp120).
- Understanding CD4's structure and charge is essential for comprehending its function in cellular interactions.
Purpose of the Study:
- To investigate the charge and structure of native (nCD4) and recombinant (rCD4) forms of CD4.
- To analyze CD4 conformation and its potential for complex formation in lymphoid cells.
Main Methods:
- Utilized one- and two-dimensional gel electrophoresis (1-DE, 2-DE), including nonequilibrium pH gradient electrophoresis (NEPHGE).
- Employed antigen mapping, silver staining, and biotinylation techniques to characterize CD4.
- Used immunoprecipitation, SDS-PAGE immunoblotting, and flow cytometry with anti-CD4 monoclonal antibodies (mAbs).
Main Results:
- Recombinant CD4 exhibited differentially charged species (pI > 9.5) and increased molecular mass upon biotinylation.
- Cell-expressed CD4, when mildly biotinylated, showed no significant alteration in molecular weight or antigenicity.
- Immunoprecipitation revealed both monomeric and higher-order CD4 antigen complexes in lymphoid cell extracts.
Conclusions:
- CD4 in lymphocytes has the capacity to form complexes.
- These CD4 complexes may influence CD4 conformation and the availability of its epitopes.
- The study provides insights into CD4 structure, charge, and complex formation relevant to immune responses and HIV.
Abstract:
Knowledge of CD4 conformation within the membranes of human lymphoid and monocytoid cells is essential for a clear understanding of its function as a ligand for major histocompatibility complex II (MHC) molecules in T cell activation and for gp120 in human immunodeficiency virus (HIV) infection. The charge and structure of native (nCD4) and soluble recombinant CD4 (rCD4) were examined by one- and two-dimensional (2-DE) electrophoresis antigen mapping and silver staining. Recombinant CD4 was partitioned by nonequilibrium pH gradient electrophoresis (NEPHGE) and revealed a number of differentially charged 44 kDa species (pI > 9.5). Biotinylation (4 h, room temperature) of rCD4 yielded a single labelled species on sodium dodedyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) with an increased apparent molecular mass to 50 kDa, consistent with a maximal incorporation of approximately 18 molecules of biotin per rCD4 molecule. The milder biotinylation (15 min, 4 degrees C) of cell-(CEM-T4, THP-1) expressed CD4 was not accompanied by any apparent alteration in molecular weight, nor abrogation of CD4 antigenicity. This was determined by isolation of nCD4 by immunoprecipitation and SDS-PAGE immunoblotting, using anti-CD4 mAbs (leu3a, OKT4A, Q4120, T4, OKT4, Q425) and by flow cytometry (leu4a, T4). The immunoprecipitation of full-length native CD4 from lymphoid MT2 and CEM-T4 cell extracts, however, revealed both monomeric and higher-order CD4 antigen complexes by immunoblotting. These studies describe the biotinylation, 1-DE and 2-DE of CD4 preparations, and indicate the capacity of CD4 of lymphocytes to form complexes which may influence CD4 conformation and epitope availability.
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