Related Experiment Videos
Cyclic AMP-induced Mg2+ release from rat liver hepatocytes, permeabilized hepatocytes, and isolated mitochondria
1Department of Physiology and Biophysics, School of Medicine, Case Western Reserve University, Cleveland, Ohio 44106-4901.
Abstract:
The addition of norepinephrine, epinephrine, or forskolin to collagenase-dispersed rat liver hepatocytes increase cAMP and result in a 15% loss in total cell Mg2+ within 5 min. Conversely, carbachol and vasopressin induce a 10-15% increase of total cell Mg2+. Permeabilized hepatocytes also mobilize a large pool of Mg2+ when stimulated by ADP or cAMP. This stimulation is completely inhibited by atractyloside and bongkrekic acid, two different specific inhibitors of the mitochondrial adenine nucleotide translocase. cAMP directly mobilizes Mg2+ efflux from isolated rat liver mitochondria. 50 nM cAMP or 250 microM ADP induces in 5 min a mitochondrial loss of about 6 nmol of Mg2+/mg of protein and a stimulation of ATP efflux. The effect of cAMP is specific, is not reproduced by other cyclic or noncyclic nucleotides, and is inhibited by inhibitors of the adenine nucleotide translocase. These data indicate that cAMP is a messenger for a major mobilization of Mg2+ in hepatocytes. A major target for the effect of cAMP are mitochondria, which lose up to 20-25% of their total Mg2+ in 5 min, both within the cell and after isolation. Evidence is presented suggesting that the adenine nucleotide translocase is the target of the cAMP-dependent Mg2+ efflux and that cAMP may change the operation of the translocase. This, in turn, could change within the matrix the substrate of choice of the translocase from ATP to ATP.Mg.
Insights
Cyclic adenosine monophosphate (cAMP) triggers magnesium (Mg2+) loss from liver cells and mitochondria. This mobilization is mediated by the adenine nucleotide translocase, impacting cellular energy balance.
Area of Science:
- Cellular Biology
- Biochemistry
- Mitochondrial Function
Background:
- Hormonal regulation of cellular magnesium (Mg2+) is crucial for cell function.
- The role of cyclic adenosine monophosphate (cAMP) in Mg2+ homeostasis is not fully understood.
Purpose of the Study:
- To investigate the role of cAMP in regulating Mg2+ levels in hepatocytes.
- To identify the cellular targets and mechanisms involved in cAMP-mediated Mg2+ mobilization.
Main Methods:
- Isolated rat liver hepatocytes and mitochondria were used.
- Hormonal and pharmacological stimulations (norepinephrine, forskolin, carbachol, vasopressin, ADP, cAMP) were applied.
- Measurement of intracellular and mitochondrial Mg2+ content and ATP efflux.
- Inhibition studies using atractyloside and bongkrekic acid.
Main Results:
- Hormones and forskolin increasing cAMP caused a significant Mg2+ loss in hepatocytes.
- Permeabilized hepatocytes mobilized Mg2+ upon ADP or cAMP stimulation.
- Isolated mitochondria showed Mg2+ and ATP efflux upon cAMP or ADP stimulation.
- Inhibitors of adenine nucleotide translocase blocked cAMP- and ADP-induced Mg2+ mobilization.
Conclusions:
- cAMP acts as a messenger for significant Mg2+ mobilization in hepatocytes.
- Mitochondria are a major target of cAMP-induced Mg2+ efflux.
- The adenine nucleotide translocase is implicated in the cAMP-dependent Mg2+ efflux, potentially altering its substrate preference.