Kinetics of Ligand Binding to Receptors in the Presence of Multiplicative Noise

IF 0.5 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
V. B. Arakelyan, S. V. Harutyunyan, S. P. Kocharyan, I. V. Vardanyan, S. G. Haroutiunian, N. S. Ananikian
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引用次数: 0

Abstract

The binding of ligands with receptors was theoretically studied in the case when the number of ligands in solution fluctuates under the influence of fluctuations of the external environment. A multiplicative stochastic differential equation has been obtained that describes the time change in the number of ligand-receptor complexes. The average number of ligand-receptor complexes and its variance were calculated. An isotherm of the binding of ligands to receptors was obtained. It has been shown that the presence of multiplicative noise leads to the fact that the process of binding of ligands to receptors becomes threshold—in the region of low concentrations of ligands at a certain ratio between the binding parameters and the intensity of the multiplicative noise, the formation of a ligand-receptor complex does not occur. It has been shown that with increasing ligand concentration, the relaxation time of the average number of ligand-receptor complexes decreases, and with increasing noise intensity it increases. It is also shown that at low values of the external noise intensity, the dispersion is proportional to the external noise intensity and increases linearly with increasing noise intensity.

Abstract Image

存在乘法噪声时配体与受体的结合动力学
在溶液中配体数量受外部环境波动影响而波动的情况下,配体与受体的结合进行了理论研究。研究得到了一个乘法随机微分方程,该方程描述了配体-受体复合物数量的时间变化。计算了配体-受体复合物的平均数量及其方差。得到了配体与受体结合的等温线。研究表明,乘法噪声的存在导致配体与受体的结合过程成为阈值,在低浓度配体区域,当结合参数与乘法噪声强度达到一定比例时,配体与受体的复合物不会形成。研究表明,随着配体浓度的增加,配体-受体复合物平均数量的弛豫时间减少,而随着噪声强度的增加,弛豫时间增加。研究还表明,在外部噪声强度值较低时,分散度与外部噪声强度成正比,并随着噪声强度的增加而线性增加。
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来源期刊
CiteScore
1.00
自引率
66.70%
发文量
43
审稿时长
6-12 weeks
期刊介绍: Journal of Contemporary Physics (Armenian Academy of Sciences) is a journal that covers all fields of modern physics. It publishes significant contributions in such areas of theoretical and applied science as interaction of elementary particles at superhigh energies, elementary particle physics, charged particle interactions with matter, physics of semiconductors and semiconductor devices, physics of condensed matter, radiophysics and radioelectronics, optics and quantum electronics, quantum size effects, nanophysics, sensorics, and superconductivity.
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