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Published on: June 6, 2017
Cell cycle-related differences in susceptibility of NIH/3T3 cells to ribonucleases
M R Smith1, D L Newton, S M Mikulski
1Intramural Research Support Program, SAIC Frederick, National Cancer Institute-Frederick Cancer Research and Development Center, Frederick, Maryland, 21702, USA.
Abstract:
Microinjection of Onconase or RNase A into NIH/3T3 cells was used to study the intracellular actions of these two proteins. Onconase preferentially killed actively growing cells in both microinjection and cell culture experiments. Moreover, agents that increased the number of cells in S phase such as serum or microinjected signal transduction mediators (Ras, protein kinase C, and mitogen-activated protein kinase) enhanced Onconase cytotoxicity. Conversely, agents that decreased these proliferative pathways (dibutyryl cAMP and protein kinase A) correspondingly diminished Onconase cytotoxicity in microinjection experiments. These results were also mimicked in cell culture experiments since log-phase v-ras-transformed NIH/3T3 cells were more sensitive to Onconase (IC50 of 7 microg/ml) than parental NIH/3T3 fibroblasts (IC50 of 40 microg/ml). Based on those data we postulated that Onconase-mediated cell death in NIH/3T3 cells was related to events occurring at two or more points in the cell cycle preferentially associated with late G1/S and S phases. In contrast, quiescent NIH/3T3 cells were more sensitive to microinjected RNase A than log phase cells and positive mediators of proliferative signal transduction did not enhance RNase A-mediated cytotoxicity. Taken together, these results demonstrate that these two RNases use different pathways and/or mechanisms to elicit cytotoxic responses in NIH/3T3 cells. Predictions formulated from these studies can be tested for relevance to RNase actions in different target tumor cells.
Insights
Onconase selectively kills actively growing cells by targeting the cell cycle, while RNase A is more effective against quiescent cells. These distinct mechanisms highlight differences in their cytotoxic pathways.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Ribonucleases (RNases) are enzymes with diverse biological functions.
- Understanding the specific mechanisms of cytotoxic RNases is crucial for therapeutic development.
Purpose of the Study:
- To investigate and compare the intracellular actions and cytotoxic mechanisms of Onconase and RNase A in NIH/3T3 cells.
- To determine the relationship between cell proliferation and sensitivity to these two RNases.
Main Methods:
- Microinjection of Onconase and RNase A into NIH/3T3 cells.
- Cell culture experiments to assess cytotoxicity (IC50 values).
- Modulation of cell cycle progression and signal transduction pathways.
Main Results:
- Onconase preferentially killed actively growing cells, with enhanced cytotoxicity in S-phase cells and sensitivity in v-ras-transformed cells.
- Onconase-mediated cell death was linked to late G1/S and S phases.
- RNase A was more cytotoxic to quiescent cells, and its activity was not enhanced by proliferative signals.
Conclusions:
- Onconase and RNase A utilize distinct intracellular pathways and mechanisms to induce cytotoxicity.
- Cell cycle status significantly influences sensitivity to Onconase versus RNase A.
- These findings provide a basis for exploring the therapeutic potential of these RNases in different tumor types.
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