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Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
A ubiquitin-dependent signalling axis specific for ALKBH-mediated DNA dealkylation repair
Joshua R Brickner1, Jennifer M Soll1, Patrick M Lombardi2
1Department of Pathology and Immunology, Division of Laboratory and Genomic Medicine, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Abstract:
DNA repair is essential to prevent the cytotoxic or mutagenic effects of various types of DNA lesions, which are sensed by distinct pathways to recruit repair factors specific to the damage type. Although biochemical mechanisms for repairing several forms of genomic insults are well understood, the upstream signalling pathways that trigger repair are established for only certain types of damage, such as double-stranded breaks and interstrand crosslinks. Understanding the upstream signalling events that mediate recognition and repair of DNA alkylation damage is particularly important, since alkylation chemotherapy is one of the most widely used systemic modalities for cancer treatment and because environmental chemicals may trigger DNA alkylation. Here we demonstrate that human cells have a previously unrecognized signalling mechanism for sensing damage induced by alkylation. We find that the alkylation repair complex ASCC (activating signal cointegrator complex) relocalizes to distinct nuclear foci specifically upon exposure of cells to alkylating agents. These foci associate with alkylated nucleotides, and coincide spatially with elongating RNA polymerase II and splicing components. Proper recruitment of the repair complex requires recognition of K63-linked polyubiquitin by the CUE (coupling of ubiquitin conjugation to ER degradation) domain of the subunit ASCC2. Loss of this subunit impedes alkylation adduct repair kinetics and increases sensitivity to alkylating agents, but not other forms of DNA damage. We identify RING finger protein 113A (RNF113A) as the E3 ligase responsible for upstream ubiquitin signalling in the ASCC pathway. Cells from patients with X-linked trichothiodystrophy, which harbour a mutation in RNF113A, are defective in ASCC foci formation and are hypersensitive to alkylating agents. Together, our work reveals a previously unrecognized ubiquitin-dependent pathway induced specifically to repair alkylation damage, shedding light on the molecular mechanism of X-linked trichothiodystrophy.
Insights
Scientists discovered a new DNA repair pathway in human cells that specifically targets damage from alkylating agents. This pathway involves the activating signal cointegrator complex (ASCC) and ubiquitin signalling, crucial for repairing DNA damage and understanding diseases like X-linked trichothiodystrophy.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA repair mechanisms are vital for genomic stability and preventing mutations.
- While some DNA repair pathways are well-understood, upstream signaling for alkylation damage remains largely unknown.
- Alkylation chemotherapy is a common cancer treatment, making DNA alkylation repair critical.
Purpose of the Study:
- To identify novel signaling pathways involved in sensing and repairing DNA alkylation damage.
- To elucidate the molecular mechanisms underlying the response to alkylating agents.
- To investigate the role of the activating signal cointegrator complex (ASCC) in DNA repair.
Main Methods:
- Cellular localization studies of the ASCC complex upon exposure to alkylating agents.
- Analysis of ASCC foci association with DNA damage markers and transcriptional machinery.
- Investigation of the role of ASCC2's CUE domain in ubiquitin recognition.
- Functional assays assessing repair kinetics and sensitivity to alkylating agents in cells with ASCC2 or RNF113A mutations.
Main Results:
- The ASCC complex forms distinct nuclear foci in response to alkylating agents, co-localizing with alkylated nucleotides and RNA polymerase II.
- Recruitment of ASCC requires the ASCC2 subunit's CUE domain to recognize K63-linked polyubiquitin.
- Loss of ASCC2 impairs alkylation adduct repair and increases sensitivity to alkylating agents.
- RNF113A was identified as the E3 ligase upstream of the ASCC pathway, and its mutation in X-linked trichothiodystrophy patients leads to defective ASCC foci formation and hypersensitivity to alkylating agents.
Conclusions:
- A previously unknown ubiquitin-dependent signaling pathway specifically repairs DNA alkylation damage.
- This pathway involves the ASCC complex, ubiquitin signaling mediated by RNF113A and ASCC2.
- Defects in this pathway contribute to the molecular pathology of X-linked trichothiodystrophy and sensitivity to alkylating agents.
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