Endonuclease G initiates DNA rearrangements at the MLL breakpoint cluster upon replication stress
1Gynecological Oncology, Department of Obstetrics and Gynecology, University of Ulm, Ulm, Germany.
Abstract:
MLL (myeloid/lymphoid or mixed-lineage leukemia) rearrangements are frequent in therapy-related and childhood acute leukemia, and are associated with poor prognosis. The majority of the rearrangements fall within a 7.3-kb MLL breakpoint cluster region (MLLbcr), particularly in a 0.4-kb hotspot at the intron11-exon12 boundary. The underlying mechanisms are poorly understood, though multiple pathways including early apoptotic signaling, accompanied by high-order DNA fragmentation, have been implicated. We introduced the MLLbcr hotspot in an EGFP-based recombination reporter system and demonstrated enhancement of both spontaneous and genotoxic treatment-induced DNA recombination by the MLLbcr in various human cell types. We identified Endonuclease G (EndoG), an apoptotic nuclease, as an essential factor for MLLbcr-specific DNA recombination after induction of replication stress. We provide evidence for replication stress-induced nuclear accumulation of EndoG, DNA binding by EndoG as well as cleavage of the chromosomal MLLbcr locus in a manner requiring EndoG. We demonstrate additional dependency of MLLbcr breakage on ATM signaling to histone H2B monoubiquitinase RNF20, involved in chromatin relaxation. Altogether our findings provide a novel mechanism underlying MLLbcr destabilization in the cells of origin of leukemogenesis, with replication stress-activated, EndoG-mediated cleavage at the MLLbcr, which may serve resolution of the stalled forks via recombination repair, however, also permits MLL rearrangements.
Insights
Myeloid/lymphoid or mixed-lineage leukemia (MLL) rearrangements in leukemia are driven by replication stress. Endonuclease G (EndoG) cleaves the MLL breakpoint cluster region, promoting DNA recombination and MLL rearrangements.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Myeloid/lymphoid or mixed-lineage leukemia (MLL) rearrangements are common in acute leukemia and linked to poor outcomes.
- The MLL breakpoint cluster region (MLLbcr) is a hotspot for these rearrangements, but the mechanisms remain unclear.
- Previous studies suggested apoptotic signaling and DNA fragmentation contribute to MLL rearrangements.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying MLL breakpoint cluster region (MLLbcr) destabilization.
- To identify key factors involved in MLLbcr rearrangements.
- To investigate the role of replication stress in MLL rearrangements.
Main Methods:
- Utilized an EGFP-based recombination reporter system containing the MLLbcr hotspot.
- Introduced replication stress in various human cell types.
- Investigated the role of Endonuclease G (EndoG) and ATM signaling pathways.
Main Results:
- The MLLbcr hotspot enhanced both spontaneous and induced DNA recombination.
- Replication stress led to nuclear accumulation of EndoG, which mediated MLLbcr cleavage.
- ATM signaling to RNF20 was essential for MLLbcr breakage, involving chromatin relaxation.
Conclusions:
- Replication stress activates Endonuclease G (EndoG) to cleave the MLLbcr locus, promoting DNA recombination and MLL rearrangements.
- This EndoG-mediated cleavage provides a novel mechanism for MLLbcr destabilization in leukemogenesis.
- The findings shed light on the origins of MLL rearrangements in acute leukemia.
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