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Published on: April 26, 2017
FAN1 removes triplet repeat extrusions via a PCNA- and RFC-dependent mechanism
Ashutosh S Phadte1, Mayuri Bhatia1, Hope Ebert1
1Department of Biochemistry and Molecular Biology, Thomas Jefferson University, Philadelphia, PA 19107.
Abstract:
Human genome-wide association studies have identified FAN1 and several DNA mismatch repair (MMR) genes as modifiers of Huntington's disease age of onset. In animal models, FAN1 prevents somatic expansion of CAG triplet repeats, whereas MMR proteins promote this process. To understand the molecular basis of these opposing effects, we evaluated FAN1 nuclease function on DNA extrahelical extrusions that represent key intermediates in triplet repeat expansion. Here, we describe a strand-directed, extrusion-provoked nuclease function of FAN1 that is activated by RFC, PCNA, and ATP at physiological ionic strength. Activation of FAN1 in this manner results in DNA cleavage in the vicinity of triplet repeat extrahelical extrusions thereby leading to their removal in human cell extracts. The role of PCNA and RFC is to confer strand directionality to the FAN1 nuclease, and this reaction requires a physical interaction between PCNA and FAN1. Using cell extracts, we show that FAN1-dependent CAG extrusion removal relies on a very short patch excision-repair mechanism that competes with MutSβ-dependent MMR which is characterized by longer excision tracts. These results provide a mechanistic basis for the role of FAN1 in preventing repeat expansion and could explain the antagonistic effects of MMR and FAN1 in disease onset/progression.
Insights
FAN1 nuclease prevents Huntington's disease progression by removing toxic CAG repeat expansions. This mechanism contrasts with DNA mismatch repair (MMR) proteins, offering insights into disease onset.
Area of Science:
- Genetics
- Molecular Biology
- Neurodegenerative Diseases
Background:
- Genome-wide association studies link FAN1 and DNA mismatch repair (MMR) genes to Huntington's disease (HD) onset.
- FAN1 inhibits somatic CAG repeat expansion in animal models, while MMR proteins promote it.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the opposing roles of FAN1 and MMR in Huntington's disease.
- To investigate FAN1's nuclease activity on DNA structures involved in triplet repeat expansion.
Main Methods:
- Assessed FAN1 nuclease function on DNA extrahelical extrusions.
- Investigated FAN1 activation by RFC, PCNA, and ATP in human cell extracts.
- Analyzed the interaction between PCNA, RFC, and FAN1.
Main Results:
- FAN1 exhibits strand-directed, extrusion-provoked nuclease activity, cleaving DNA near triplet repeat extrusions.
- RFC and PCNA confer strand directionality to FAN1 activity through physical interaction.
- FAN1-mediated CAG extrusion removal involves a short-patch repair pathway competing with MMR.
Conclusions:
- FAN1's nuclease activity provides a mechanistic explanation for its role in preventing repeat expansion.
- The interplay between FAN1 and MMR pathways offers insight into the modulation of Huntington's disease onset and progression.
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