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The goal of this article is to describe in detail a methodology to generate and characterize human IgG monoclonal antibodies obtained from human peripheral blood mononuclear cells (PBMCs).
The interest to study human antibodies has grown in many different fields of research. In particular, many research groups are interested in the pathology caused by auto-antibodies1-3. We have cloned and characterized pathogenic auto-antibodies1. The study of auto-antibodies can help to identify their targets and to develop therapeutic strategies, e.g., using competitor antibodies4. Moreover, the study of human antibodies can also be of interest in other fields of research, i.e., to evaluate the immune response after vaccination5, to characterize the antibody profile of individuals that were exposed and became resistant to specific pathogens6 or to study which antibodies are in the natural repertoire7,12.
Several techniques have been developed to generate recombinant human monoclonal antibodies8-12; most of these use phage display and B-cell immortalization. The use of phage display has been extensively applied for the discovery of new antibodies13. However it has a major disadvantage, namely that the heavy and light chain pairs of the human immunoglobulin become dissociated in the process. Production of hybridomas with human B cells or EBV transformation overcomes this drawback.
We use infection of thymic B cells with EBV in combination with polyclonal B cell stimulation via Toll-like receptor 9 (TLR-9)6,12.
In this paper, we describe in detail the technology that we use for the development of IgG human antibodies, with a complete overview of all the steps from PBMC isolation to the in vitro antibody generation. This protocol can be used for the analysis of any type of human IgG profile. In our laboratory, B cells producing IgG antibodies have been successfully separated from the rest of PBMCs after sorting. Fifty sorted B cells8 can then be plated in multi-well plates and immortalized by EBV and TLR-9 activation, for the clonal expansion of single B cells. As feeder cells, fibroblasts from human embryonic lung tissue have been used, cell line wi38, which facilitates the visualization of the immortalized B cells. From these B cells, the sequences of the heavy and light chains of the immunoglobulin can be obtained by PCR, and the antibodies' genes cloned in immunoglobulin G expression vectors and produced in vitro. Using this technique, single antibodies with exactly the same antibody sequence found in the donor can be studied.