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Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Proteomic Strategy for Identification of Proteins Responding to Cisplatin-Damaged DNA
Wenjuan Zeng1,2, Zhifeng Du1, Qun Luo1,2
1Beijing National Laboratory for Molecular Sciences; National Centre for Mass Spectrometry in Beijing; CAS Key Laboratory of Analytical Chemistry for Living Biosystems , Institute of Chemistry, Chinese Academy of Sciences , Beijing 100190 , P. R. China.
Abstract:
A new proteomic strategy combining functionalized magnetic nanoparticle affinity probes with mass spectrometry was developed to capture and identify proteins specifically responding to 1,2-d(GpG) intrastrand cisplatin-cross-linked DNA, the major DNA lesion caused by cisplatin and thought to induce apoptosis. A 16-mer oligodeoxynucleotide (ODN) duplex and its cisplatin-cross-linked adduct were immobilized on magnetic nanoparticles via click reaction, respectively, to fabricate negative and positive affinity probes which were very stable in cellular protein extracts due to the excellent bio-orthogonality of click chemistry and the inertness of covalent triazole linker. Quantitative mass spectrometry results unambiguously revealed the predominant binding of HMGB1 and HMGB2, the well-established specific binders of 1,2-cisplatin-cross-linked DNA, to the cisplatin-cross-linked ODN, thus validating the accuracy and reliability of our strategy. Furthermore, 5 RNA or single-stranded DNA binding proteins, namely, hnRNP A/B, RRP44, RL30, RL13, and NCL, were demonstrated to recognize specifically the cisplatinated ODN, indicating the significantly unwound ODN duplex by cisplatin cross-linking. In contrast, the binding of a transcription factor TFIIFa to DNA was retarded due to cisplatin damage, implying that the cisplatin lesion stalls DNA transcription. These findings promote understanding in the cellular responses to cisplatin-damaged DNA and inspire further precise elucidation of the action mechanism of cisplatin.
Insights
This study introduces a novel proteomic method using magnetic nanoparticles to identify proteins interacting with cisplatin-damaged DNA. The technique successfully identified known and novel proteins involved in cellular responses to DNA damage.
Area of Science:
- Proteomics
- Molecular Biology
- Biochemistry
Background:
- Cisplatin is a crucial chemotherapy drug.
- Cisplatin-induced DNA damage, specifically the 1,2-d(GpG) intrastrand cross-link, is a major lesion.
- Understanding cellular responses to this DNA damage is key to cancer therapy.
Purpose of the Study:
- To develop a novel proteomic strategy for identifying proteins that specifically interact with cisplatin-cross-linked DNA.
- To validate the strategy's accuracy and reliability in capturing DNA-binding proteins.
- To gain insights into the cellular mechanisms responding to cisplatin-induced DNA damage.
Main Methods:
- Fabrication of functionalized magnetic nanoparticle affinity probes.
- Immobilization of DNA and cisplatin-cross-linked DNA adducts on nanoparticles via click chemistry.
- Quantitative mass spectrometry for protein identification and quantification.
Main Results:
- Validated the strategy by identifying known binders HMGB1 and HMGB2 to cisplatin-cross-linked DNA.
- Discovered five novel proteins (hnRNP A/B, RRP44, RL30, RL13, NCL) that specifically bind cisplatinated DNA.
- Observed that cisplatin damage retards transcription factor TFIIFa binding, suggesting transcription stalling.
Conclusions:
- The developed proteomic strategy is accurate and reliable for studying DNA-protein interactions with DNA damage.
- Identified novel proteins involved in cellular responses to cisplatin-damaged DNA.
- Provided insights into how cisplatin lesions affect DNA transcription and cellular processes.
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