Artem G. Ayuyan
Rush University Medical Center
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Publication
Featured researches published by Artem G. Ayuyan.
European Biophysics Journal | 2006
Artem G. Ayuyan; Valerij S. Sokolov; Alexander A. Lenz; Hans-Jürgen Apell
The effect of choline iodide, bromide and chloride on the kinetics of the electrogenic sodium transport by the Na,K-ATPase was investigated in a model system of ATPase-containing membrane fragments adsorbed on the lipid bilayer membrane. The kinetic parameters of Na+ transport were determined from short circuit currents after fast release of ATP from its caged precursor. The falling phase of the current transients could be fitted by a single exponential with the time constant, τ2. Its temperature dependence allowed an estimation of the activation energy of the rate-limiting reaction step, the conformation transition E1/E2. Choline iodide and bromide caused a decrease of the activation energy as well as the overall rate of the process expressed as the pre-exponential factor A of the Arrhenius equation. If choline iodide or bromide were present on the cytoplasmic and extracellular sides of the protein, the temperature dependent changes were more pronounced than when present on the cytoplasmic side only. These results can be explained by an effect of the anions on water structure on the extracellular surface of the protein, where a deep access channel connects the ion-binding sites with the solution. Chloride ions also caused a deceleration of the electrogenic transport, however, in contrast to iodide or bromide, they did not affect the activation energy, and were more effective when added on the cytoplasmic side. This effect can be explained by asymmetric screening of the negative surface charges which leads to a transmembrane electric potential that modifies the ion transfer.
Biophysical Journal | 2018
Artem G. Ayuyan; Fredric S. Cohen
Cholesterol is abundant in plasma membranes and exhibits a variety of interactions throughout the membrane. Chemical potential accounts for thermodynamic consequences of molecular interactions, and quantifies the effective concentration (i.e., activity) of any substance participating in a process. We have developed, to our knowledge, the first method to measure cholesterol chemical potential in plasma membranes. This was accomplished by complexing methyl-β-cyclodextrin with cholesterol in an aqueous solution and equilibrating it with an organic solvent containing dissolved cholesterol. The chemical potential of cholesterol was thereby equalized in the two phases. Because cholesterol is dilute in the organic phase, here activity and concentration were equivalent. This equivalence allowed the amount of cholesterol bound to methyl-β-cyclodextrin to be converted to cholesterol chemical potential. Our method was used to determine the chemical potential of cholesterol in erythrocytes and in plasma membranes of nucleated cells in culture. For erythrocytes, the chemical potential did not vary when the concentration was below a critical value. Above this value, the chemical potential progressively increased with concentration. We used standard cancer lines to characterize cholesterol chemical potential in plasma membranes of nucleated cells. This chemical potential was significantly greater for highly metastatic breast cancer cells than for nonmetastatic breast cancer cells. Chemical potential depended on density of the cancer cells. A method to alter and fix the cholesterol chemical potential to any value (i.e., a cholesterol chemical potential clamp) was also developed. Cholesterol content did not change when cells were clamped for 24-48 h. It was found that the level of activation of the transcription factor STAT3 increased with increasing cholesterol chemical potential. The cholesterol chemical potential may regulate signaling pathways.
Biophysical Journal | 2006
Artem G. Ayuyan; Fredric S. Cohen
Biophysical Journal | 2008
Artem G. Ayuyan; Fredric S. Cohen
European Biophysics Journal | 2001
Valerij S. Sokolov; Artem G. Ayuyan; Hans-Jürgen Apell
Biophysical Journal | 2018
Artem G. Ayuyan; Fredric S. Cohen
Biophysical Journal | 2016
Ruben M. Markosyan; Artem G. Ayuyan; Fredric S. Cohen
Biophysical Journal | 2015
Artem G. Ayuyan; Fredric S. Cohen
Gastroenterology | 2010
Christopher B. Forsyth; Fredric S. Cohen; Artem G. Ayuyan; Lijuan Zhang; Maliha Shaikh
Gastroenterology | 2009
Christopher B. Forsyth; Artem G. Ayuyan; Lijuan Zhang; Fredric S. Cohen