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Updated: May 15, 2026

Strand-Specific Analysis of Proteins at Replicating DNA Strands by Enrichment and Sequencing of Protein-Associated Nascent DNA Method
Published on: May 2, 2025
Subcellular proteomics reveals a role for nucleo-cytoplasmic trafficking at the DNA replication origin activation
Claire M Mulvey1, Slavica Tudzarova, Mark Crawford
1Division of Medicine, University College London , Royal Free Campus, Rowland Hill Street, London NW3 2PF, United Kingdom.
Abstract:
Depletion of DNA replication initiation factors such as CDC7 kinase triggers the origin activation checkpoint in healthy cells and leads to a protective cell cycle arrest at the G1 phase of the mitotic cell division cycle. This protective mechanism is thought to be defective in cancer cells. To investigate how this checkpoint is activated and maintained in healthy cells, we conducted a quantitative SILAC analysis of the nuclear- and cytoplasmic-enriched compartments of CDC7-depleted fibroblasts and compared them to a total cell lysate preparation. Substantial changes in total abundance and/or subcellular location were detected for 124 proteins, including many essential proteins associated with DNA replication/cell cycle. Similar changes in protein abundance and subcellular distribution were observed for various metabolic processes, including oxidative stress, iron metabolism, protein translation and the tricarboxylic acid cycle. This is accompanied by reduced abundance of two karyopherin proteins, suggestive of reduced nuclear import. We propose that altered nucleo-cytoplasmic trafficking plays a key role in the regulation of cell cycle arrest. The results increase understanding of the mechanisms underlying maintenance of the DNA replication origin activation checkpoint and are consistent with our proposal that cell cycle arrest is an actively maintained process that appears to be distributed over various subcellular locations.
Insights
Depleting CDC7 kinase activates a cell cycle arrest in healthy cells, a process potentially faulty in cancer. This study reveals altered protein transport and metabolism are key to maintaining this arrest.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- DNA replication initiation is crucial for cell division.
- The CDC7 kinase plays a role in initiating DNA replication.
- Cell cycle checkpoints, like the origin activation checkpoint, prevent genomic instability.
Purpose of the Study:
- To investigate the mechanisms of origin activation checkpoint maintenance in healthy cells.
- To understand how CDC7 depletion impacts cellular processes and protein localization.
- To explore the role of nucleo-cytoplasmic trafficking in cell cycle arrest.
Main Methods:
- Quantitative SILAC (Stable Isotope Labeling by Amino acids in Cell culture) analysis.
- Comparative analysis of nuclear/cytoplasmic fractions and total cell lysates.
- Proteomic analysis of CDC7-depleted fibroblasts.
Main Results:
- Depletion of CDC7 kinase led to cell cycle arrest at the G1 phase.
- 124 proteins showed altered abundance or subcellular localization, including DNA replication and cell cycle proteins.
- Metabolic pathways (oxidative stress, iron metabolism, TCA cycle) and protein translation were affected.
- Reduced abundance of karyopherin proteins suggested impaired nuclear import.
Conclusions:
- Altered nucleo-cytoplasmic trafficking is proposed as a key regulator of cell cycle arrest.
- Cell cycle arrest is an actively maintained process involving multiple subcellular locations.
- Findings enhance understanding of the DNA replication origin activation checkpoint.
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