During a humoral immune response, immunoglobulin (Ig) class switching changes the effector function of an antibody, without altering its specificity for antigen, by replacing the heavy chain constant region (CH) sequences of the u gene with those of a gamma, epsilon or alpha gene. This is accomplished via recombination of DNA sequences (S regions) 5' of Cu and of the """"""""downstream"""""""" CH genes. According to the current model, regulation of class switch recombination (CSR) in response to specific B cell stimuli is achieved by modulation of the transcriptional activity of the target CH genes to generate so-called """"""""germline"""""""" (or """"""""switch"""""""") transcripts. The u locus plays a particularly important role in class switching, since Su is the obligate donor of every CSR event. Yet, the present models of CSR regulation do not satisfactorily explain all the features of u CSR activity, since the u locus switch transcripts are expressed throughout B cell development in the absence of detectable CSR activity. Moreover, deletions of the known regulatory and structural elements of the u switch transcripts have only a partial effect on u CSR. In a series of experiments stemming from these observations, we have recently identified novel u locus transcription units that may be involved in CSR regulation. Taking advantage of this new information, we propose here a series of experiments aimed at elucidating the regulatory mechanisms that affect CSR at the u locus. Specifically, we will characterize the elements that regulate expression of the new transcripts, and assess their function by targeted mutagenesis. To test whether generation and splicing of u switch transcripts is essential for CSR, as recently suggested for other CH genes, we are going to replace the entire u switch transcript region with exogenous DNA sequences. In transgenic experiments, we will assay for the role of cis- and trans-acting regulatory mechanisms in controlling Su recombination. Finally, by replacing the endogenous Su with different types of sequences (repetitive and non-repetitive, S-related or not) we will establish the molecular requirements for the Su region sequences as efficient CSR substrates.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
3R01AI045012-02S1
Application #
6650930
Study Section
Allergy and Immunology Study Section (ALY)
Program Officer
Kirkham, Perry M
Project Start
2001-02-01
Project End
2006-01-31
Budget Start
2002-09-01
Budget End
2003-01-31
Support Year
2
Fiscal Year
2002
Total Cost
$6,211
Indirect Cost
Name
University of Rochester
Department
Internal Medicine/Medicine
Type
Schools of Dentistry
DUNS #
208469486
City
Rochester
State
NY
Country
United States
Zip Code
14627
Kuzin, Igor I; Bagaeva, Ludmila; Young, Faith M et al. (2008) Requirement for enhancer specificity in immunoglobulin heavy chain locus regulation. J Immunol 180:7443-50
Giubellino, Alessio; Burke Jr, Terrence R; Bottaro, Donald P (2008) Grb2 signaling in cell motility and cancer. Expert Opin Ther Targets 12:1021-33
Marr, Shauna; Morales, Heidi; Bottaro, Andrea et al. (2007) Localization and differential expression of activation-induced cytidine deaminase in the amphibian Xenopus upon antigen stimulation and during early development. J Immunol 179:6783-9
Lee, Sang C; Bottaro, Andrea; Chen, Luojing et al. (2006) Mad1 is a transcriptional repressor of Bcl-6. Mol Immunol 43:1965-71
Ichikawa, H Travis; Sowden, Mark P; Torelli, Andrew T et al. (2006) Structural phylogenetic analysis of activation-induced deaminase function. J Immunol 177:355-61
Smith, Harold C; Bottaro, Andrea; Sowden, Mark P et al. (2004) Activation induced deaminase: the importance of being specific. Trends Genet 20:224-7
Kuzin, Igor I; Ugine, Gregory D; Barth, Richard K et al. (2004) A new murine model of humoral immuno-deficiency specifically affects class switching to T-independent antigens. Eur J Immunol 34:1807-16
Young, Faith M; Pinkert, Carl A; Bottaro, Andrea (2004) Analysis of lymphocyte development and function using the RAG-deficient blastocyst complementation system. Methods Mol Biol 271:77-90
Lee, Sang C; Bottaro, Andrea; Insel, Richard A (2003) Activation of terminal B cell differentiation by inhibition of histone deacetylation. Mol Immunol 39:923-32
Kuzin, I I; Snyder, J E; Ugine, G D et al. (2001) Tetracyclines inhibit activated B cell function. Int Immunol 13:921-31