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Updated: May 10, 2026

Examining BCL-2 Family Function with Large Unilamellar Vesicles
Published on: October 5, 2012
A non-B-DNA structure at the Bcl-2 major breakpoint region is cleaved by the RAG complex
Sathees C Raghavan1, Patrick C Swanson, Xiantuo Wu
1Norris Comprehensive Cancer Center, Room 5428, University of Southern California Keck School of Medicine, 1441 Eastlake Ave., MC9176, Los Angeles, California 90033, USA.
Abstract:
The causes of spontaneous chromosomal translocations in somatic cells of biological organisms are largely unknown, although double-strand DNA breaks are required in all proposed mechanisms. The most common chromosomal abnormality in human cancer is the reciprocal translocation between chromosomes 14 and 18 (t(14;18)), which occurs in follicular lymphomas. The break at the immunoglobulin heavy-chain locus on chromosome 14 is an interruption of the normal V(D)J recombination process. But the breakage on chromosome 18, at the Bcl-2 gene, occurs within a confined 150-base-pair region (the major breakpoint region or Mbr) for reasons that have remained enigmatic. We have reproduced key features of the translocation process on an episome that propagates in human cells. The RAG complex--which is the normal enzyme for DNA cleavage at V, D or J segments--nicks the Bcl-2 Mbr in vitro and in vivo in a manner that reflects the pattern of the chromosomal translocations; however, the Mbr is not a V(D)J recombination signal. Rather the Bcl-2 Mbr assumes a non-B-form DNA structure within the chromosomes of human cells at 20-30% of alleles. Purified DNA assuming this structure contains stable regions of single-strandedness, which correspond well to the translocation regions in patients. Hence, a stable non-B-DNA structure in the human genome appears to be the basis for the fragility of the Bcl-2 Mbr, and the RAG complex is able to cleave this structure.
Insights
Spontaneous chromosomal translocations, like the common t(14;18) in lymphoma, are often caused by DNA breaks. Researchers found that a non-B DNA structure at the Bcl-2 gene
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- Spontaneous chromosomal translocations are common in human cancers, particularly the t(14;18) in follicular lymphoma.
- The precise mechanism causing breaks at the Bcl-2 gene's major breakpoint region (Mbr) remains unclear.
- Double-strand DNA breaks are a prerequisite for all proposed translocation mechanisms.
Purpose of the Study:
- To elucidate the underlying cause of the Bcl-2 Mbr's susceptibility to breakage.
- To investigate the role of DNA structure in chromosomal translocation formation.
- To understand how the RAG complex interacts with the Bcl-2 Mbr.
Main Methods:
- Replication of translocation features using an episomal system in human cells.
- In vitro and in vivo cleavage assays using the RAG complex on the Bcl-2 Mbr.
- Analysis of DNA structure in human cells and purified DNA samples.
Main Results:
- The RAG complex nicks the Bcl-2 Mbr in vitro and in vivo, mirroring translocation patterns.
- The Bcl-2 Mbr adopts a non-B-DNA structure in 20-30% of human cell alleles.
- This non-B-DNA structure exhibits stable single-stranded regions corresponding to patient translocation sites.
Conclusions:
- A stable non-B-DNA structure at the Bcl-2 Mbr is responsible for its genomic fragility.
- The RAG complex can cleave this specific non-B-DNA structure, leading to translocations.
- This finding provides a mechanism for the recurrent t(14;18) translocation in follicular lymphoma.
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