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The Link between Autosomal Dominant Polycystic Kidney Disease and Chromosomal Instability: Exploring the Relationship
Phang-Lang Chen1, Chi-Fen Chen1, Hugo Y-H Lin2,3,4
1Department of Biological Chemistry, University of California, Irvine, CA 92697, USA.
Abstract:
In autosomal dominant polycystic kidney disease (ADPKD) with germline mutations in a PKD1 or PKD2 gene, innumerable cysts develop from tubules, and renal function deteriorates. Second-hit somatic mutations and renal tubular epithelial (RTE) cell death are crucial features of cyst initiation and disease progression. Here, we use established RTE lines and primary ADPKD cells with disease-associated PKD1 mutations to investigate genomic instability and DNA damage responses. We found that ADPKD cells suffer severe chromosome breakage, aneuploidy, heightened susceptibility to DNA damage, and delayed checkpoint activation. Immunohistochemical analyses of human kidneys corroborated observations in cultured cells. DNA damage sensors (ATM/ATR) were activated but did not localize at nuclear sites of damaged DNA and did not properly activate downstream transducers (CHK1/CHK2). ADPKD cells also had the ability to transform, as they achieved high saturation density and formed colonies in soft agar. Our studies indicate that defective DNA damage repair pathways and the somatic mutagenesis they cause contribute fundamentally to the pathogenesis of ADPKD. Acquired mutations may alternatively confer proliferative advantages to the clonally expanded cell populations or lead to apoptosis. Further understanding of the molecular details of aberrant DNA damage responses in ADPKD is ongoing and holds promise for targeted therapies.
Insights
Autosomal dominant polycystic kidney disease (ADPKD) cells exhibit genomic instability and DNA damage repair defects. These deficiencies contribute to cyst formation and disease progression, offering potential therapeutic targets.
Area of Science:
- Genetics
- Molecular Biology
- Nephrology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is characterized by cyst development and renal function decline.
- Somatic mutations and renal tubular epithelial (RTE) cell death are key to ADPKD pathogenesis.
- Germline mutations in PKD1 or PKD2 genes underlie ADPKD.
Purpose of the Study:
- To investigate genomic instability and DNA damage responses in ADPKD.
- To analyze the role of defective DNA repair in ADPKD pathogenesis.
Main Methods:
- Utilized established RTE lines and primary ADPKD cells with PKD1 mutations.
- Performed immunohistochemical analyses on human kidney tissues.
- Assessed chromosome breakage, aneuploidy, DNA damage susceptibility, and checkpoint activation.
Main Results:
- ADPKD cells displayed severe chromosome breakage, aneuploidy, and increased DNA damage susceptibility.
- DNA damage sensors (ATM/ATR) were activated but failed to localize correctly and activate downstream effectors (CHK1/CHK2).
- ADPKD cells showed transformation potential, forming colonies in soft agar.
Conclusions:
- Defective DNA damage repair pathways and resulting somatic mutagenesis are fundamental to ADPKD pathogenesis.
- Aberrant DNA damage responses may lead to clonal expansion or apoptosis.
- Further research into ADPKD DNA damage response mechanisms may reveal targeted therapeutic strategies.
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