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Updated: May 21, 2026

Mapping Dysfunctional Protein-Protein Interactions in Disease
Published on: October 24, 2025
Fanconi anemia proteins and their interacting partners: a molecular puzzle
Tagrid Kaddar1, Madeleine Carreau
1Department of Pediatrics, Université Laval, Cité Universitaire, Québec, QC, Canada G1K 7P4.
Abstract:
In recent years, Fanconi anemia (FA) has been the subject of intense investigations, primarily in the DNA repair research field. Many discoveries have led to the notion of a canonical pathway, termed the FA pathway, where all FA proteins function sequentially in different protein complexes to repair DNA cross-link damages. Although a detailed architecture of this DNA cross-link repair pathway is emerging, the question of how a defective DNA cross-link repair process translates into the disease phenotype is unresolved. Other areas of research including oxidative metabolism, cell cycle progression, apoptosis, and transcriptional regulation have been studied in the context of FA, and some of these areas were investigated before the fervent enthusiasm in the DNA repair field. These other molecular mechanisms may also play an important role in the pathogenesis of this disease. In addition, several FA-interacting proteins have been identified with roles in these "other" nonrepair molecular functions. Thus, the goal of this paper is to revisit old ideas and to discuss protein-protein interactions related to other FA-related molecular functions to try to give the reader a wider perspective of the FA molecular puzzle.
Insights
Fanconi anemia (FA) research focuses on DNA repair, but how defects cause disease remains unclear. This paper explores other molecular functions and protein interactions beyond DNA repair in FA pathogenesis.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Fanconi anemia (FA) is extensively studied for its role in DNA repair.
- A canonical FA pathway for DNA cross-link repair is established, but its link to disease phenotype is unclear.
- FA research also encompasses oxidative metabolism, cell cycle, apoptosis, and transcriptional regulation.
Purpose of the Study:
- To revisit non-DNA repair molecular mechanisms in FA.
- To discuss protein-protein interactions beyond the canonical FA pathway.
- To provide a broader perspective on FA pathogenesis.
Main Methods:
- Literature review and synthesis of existing research.
- Analysis of protein-protein interactions.
- Exploration of FA-interacting proteins and their functions.
Main Results:
- Identified FA-interacting proteins with roles in non-DNA repair functions.
- Highlighted potential contributions of oxidative metabolism, cell cycle, and apoptosis to FA.
- Emphasized the complexity of FA pathogenesis beyond DNA repair.
Conclusions:
- FA pathogenesis likely involves multiple molecular pathways beyond DNA repair.
- Protein-protein interactions in non-DNA repair pathways are crucial for understanding FA.
- A wider perspective integrating diverse molecular functions is needed for FA research.
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