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Alterations in microtubule assembly caused by the microtubule-active drug LY195448
1Department of Pharmacology, University of Texas Medical School, Houston 77225.
Abstract:
LY195448 is an experimental drug that blocks cells at metaphase (Boder et al.: Microtubules and Microtubule Inhibitors 1985: 353-361, 1985). A 4 hour exposure of NRK cells to a drug concentration of 46 microM (15 micrograms/ml) increased the number of mitotic cells in the population from 4.9% to 18.5%. Examination of treated cells by immunofluorescence showed increased numbers of cells blocked at prometaphase, with short microtubules extending from the spindle pole to the kinetochores. The cytoskeleton of interphase cells remained intact at these concentrations. However, the number of microtubules appeared to be reduced, and those that remained appeared kinkier and curled, particularly toward the periphery of the cells. When cytoskeletal microtubules of NRK cells were depolymerized with nocodazole, they reassembled within minutes of transfer to drug-free media. However, nocodazole-treated cells transferred to fresh media containing 15 micrograms/ml of LY195448 required 2-3 times longer to reassemble cytoplasmic microtubules. Previously isolated Chinese hamster ovary cell microtubule mutants resistant to either taxol or Colcemid were tested for cross-resistance to this drug. Cell lines resistant to the depolymerizing drug Colcemid exhibited increased resistance to LY195448 compared to wild-type cells, whereas taxol resistant cell lines were more sensitive. Of eleven newly isolated mutant CHO cell lines selected for increased resistance to LY195448, seven exhibited an altered beta-tubulin protein by two-dimensional polyacrylamide gel electrophoresis. These 11 cell lines also showed a heterogenous pattern of resistance to several microtubule-active drugs. These data demonstrate that LY195448 is cytotoxic to mammalian cells because it inhibits microtubule assembly, most likely through a direct interaction with tubulin.
Insights
LY195448 is an experimental drug that inhibits microtubule assembly, causing metaphase cell cycle arrest in mammalian cells. This drug shows cytotoxicity by interfering with tubulin dynamics, impacting microtubule organization and cell division.
Area of Science:
- Cell Biology
- Pharmacology
- Biochemistry
Background:
- Microtubules are essential cytoskeletal components involved in cell division and intracellular transport.
- Disruptions in microtubule dynamics can lead to cell cycle arrest and cytotoxicity.
- Experimental drugs targeting microtubules are investigated for their therapeutic potential.
Purpose of the Study:
- To investigate the mechanism of action of the experimental drug LY195448.
- To determine the effects of LY195448 on microtubule assembly and cell cycle progression.
- To identify potential molecular targets of LY195448.
Main Methods:
- Treatment of NRK cells with LY195448 and analysis of cell cycle distribution via immunofluorescence.
- Assessment of microtubule reassembly kinetics after nocodazole treatment in the presence of LY195448.
- Cross-resistance studies using Chinese hamster ovary (CHO) cell lines with known mutations in tubulin.
Main Results:
- LY195448 induced a significant increase in mitotic cells, with cells arrested at prometaphase.
- The drug disrupted microtubule organization, causing reduced numbers and altered morphology of microtubules.
- LY195448 treatment prolonged the reassembly of cytoplasmic microtubules after nocodazole-induced depolymerization.
- Mutant CHO cell lines resistant to Colcemid showed cross-resistance to LY195448, while taxol-resistant lines were sensitive.
- Seven of eleven LY195448-resistant CHO mutants exhibited altered beta-tubulin protein, suggesting direct interaction with tubulin.
Conclusions:
- LY195448 inhibits microtubule assembly, likely through direct interaction with tubulin.
- The drug is cytotoxic to mammalian cells by disrupting microtubule dynamics and causing cell cycle arrest.
- LY195448 represents a potential therapeutic agent targeting microtubule assembly.