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Ultrastructural nucleolar alterations induced by an ametantrone--poly r(A-U) complex
J M Jamison1, J Gilloteaux, M Thiry
1Department of Urology, Summa Health System/Northeastern Ohio Universities College of Medicine, Rootstown 44272, USA. jmj@uhura.neoucom.edu
Tissue & Cell
|October 27, 1998
Summary
Ametantrone (AMT) and poly (adenylate-uridylate) (poly r(A-U)) alter cancer cell nucleoli, causing compaction and segregation. These changes suggest inhibition of DNA transcription and rRNA processing, impacting cell function.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Nucleoli are crucial for ribosome biogenesis and cellular function.
- Dysregulation of nucleolar structure is observed in various cancers.
- Understanding how chemical agents affect nucleoli is vital for cancer therapy.
Purpose of the Study:
- To investigate the ultrastructural and intranucleolar changes in RT4 bladder cancer cells.
- To determine the effects of ametantrone (AMT) and poly (adenylate-uridylate) (poly r(A-U)) on nucleolar components.
- To elucidate the mechanisms underlying AMT and poly r(A-U) induced nucleolar alterations.
Main Methods:
- RT4 transitional cell bladder carcinoma cells were exposed to AMT, poly r(A-U), or a combination.
- Nucleolar ultrastructure and intranucleolar distribution of rDNA and rRNA were analyzed.
- Changes in nucleolar components (fibrillar center, dense fibrillar component, granular component, interstices) were quantified.
Main Results:
- Both AMT and poly r(A-U) induced nucleolar compaction and segregation.
- AMT/poly r(A-U) combination showed the most significant changes, followed by poly r(A-U) and then AMT.
- Observed changes included decreased fibrillar centers, increased size of remaining centers, chromatin margination, and retention of pre-rRNA/rRNA.
Conclusions:
- Poly r(A-U) and AMT interfere with DNA transcription and rRNA processing.
- These agents inhibit the release of nascent preribosomes from the nucleolus.
- The findings provide insights into the cytotoxic mechanisms of AMT and poly r(A-U) in cancer cells.