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Polyamine transport regulation by calcium and calmodulin: role of Ca(2+)-ATPase
N A Khan1, A Sezan, V Quemener
1Laboratory of Cell Biology, Faculty of Medicine, University of Rennes I, France.
Abstract:
The study was conducted on human leukemia (K 562) cells to characterize the mechanisms implicated in the regulation of the polyamine spermidine (Spd) transport process. The antagonists of calmodulin, trifluoperazine (TFP), W-7 (N-[6-aminohexyl]-5-chloro-1-naphthelenesulfonamide), or mellitin inhibited significantly polyamine Spd uptake in these cells. The translocation of calmodulin towards plasma membrane and a concomitant decrease in its contents in cytosol were directly correlated with the time course increases similar to that of Spd uptake, indicating that calmodulin is recruited towards plasma membrane during the Spd transport process. Diminution of free intracellular calcium, (Ca2+)i, by preincubating the cells in BAPTA (bis[2-amino-5-methylphenoxyl]-ethane-N,N,N',N',-tetraacetate) buffer inhibited Spd transport significantly. Addition of lanthanum (LAN), a molecule known to inhibit Ca2+ efflux via Ca(2+)-ATPase, curtailed Spd uptake by these cells. LAN inhibited Vmax, but not the Km, of Spd uptake, indicating that the former does not directly interact with the polyamine transporter; rather it regulates the transport process, probably via its action on Ca(2+)-ATPase. Calmodulin-stimulated uptake of 45Ca2+ by inside-out vesicles of K 562 cells, a measure of Ca(2+)-ATPase activity. Furthermore, addition of LAN inhibited both basal and calmodulin-stimulated activity of Ca(2+)-ATPase. Thapsigargin (THAP), a molecule known to elevate (Ca2+)i due to its action on the endoplasmic reticulum, increased Spd transport whereas addition of LAN inhibited THAP-stimulated Spd transport activity. THAP increased free (Ca2+)i in these cells, and a pre-addition of LAN to these cells curtailed the THAP-stimulated increases of (Ca2+)i concentrations. Addition of Spd brought about elevations in (Ca2+)i contents. Caffeine also increased (Ca2+)i in these cells; however, it failed to stimulate significantly the Spd uptake process, indicating that (Ca2+)i which is involved in the regulation of polyamine transport pathways does not belong to the calcium-induced calcium-release (CICR) pool. Replacement of Ca2+ from the incubation medium (i.e., 0% Ca2+) resulted in higher uptake activity as compared to that in 100% Ca2+ medium, demonstrating that in 100% Ca2+ medium the calcium efflux process is quickly compensated by calcium refilling/influx from the extracellular medium, while in 0% Ca2+ medium there is perpetual efflux of (Ca2+)i which contributes to higher Spd uptake process. The results of this study suggest that an increase in free (Ca2+)i and its release from the cells via Ca(2+)-ATPase, and concomitant activation of calmodulin, which controls Ca(2+)-pump activity, are involved in the regulation of the Spd uptake process in human leukemia cells.
Insights
This study reveals that calmodulin and intracellular calcium levels regulate spermidine transport in leukemia cells. Calcium efflux via Ca(2+)-ATPase and calmodulin activation are key to this process.
Area of Science:
- Cell Biology
- Biochemistry
- Cancer Research
Background:
- Polyamines are essential for cell growth and proliferation.
- Spermidine (Spd) transport is crucial for maintaining intracellular polyamine homeostasis.
- Dysregulation of polyamine metabolism is linked to cancer development, including leukemia.
Purpose of the Study:
- To elucidate the regulatory mechanisms of spermidine (Spd) transport in human leukemia (K 562) cells.
- To investigate the roles of calmodulin and intracellular calcium in Spd uptake.
- To characterize the involvement of Ca(2+)-ATPase in Spd transport regulation.
Main Methods:
- Utilized K 562 human leukemia cells.
- Employed calmodulin antagonists (TFP, W-7, mellitin) to assess their impact on Spd uptake.
- Manipulated intracellular calcium levels using BAPTA, lanthanum (LAN), and thapsigargin (THAP).
- Measured Ca(2+)-ATPase activity via 45Ca2+ uptake in vesicles.
- Assessed changes in intracellular calcium concentrations ((Ca2+)i).
Main Results:
- Calmodulin antagonists significantly inhibited Spd uptake.
- Calmodulin translocated to the plasma membrane during Spd uptake.
- Reduced intracellular calcium (BAPTA) and inhibited calcium efflux (LAN) decreased Spd transport.
- Lanthanum inhibited Vmax but not Km of Spd uptake, suggesting indirect regulation via Ca(2+)-ATPase.
- Thapsigargin increased Spd transport and intracellular calcium, effects inhibited by LAN.
- Low extracellular calcium (0% Ca2+) enhanced Spd uptake, indicating calcium efflux is critical.
- Spd addition increased intracellular calcium, but caffeine did not stimulate Spd uptake, ruling out CICR involvement.
Conclusions:
- Calmodulin activation and increased intracellular calcium are essential for regulating spermidine uptake in leukemia cells.
- Ca(2+)-ATPase-mediated calcium efflux plays a significant role in controlling Spd transport.
- Calmodulin modulates Ca(2+)-ATPase activity, thereby influencing the Spd transport process.