Cancer Growth Inhibition Using Predictive Mathematical Models of Signaling Pathways

Aadil Rashid Sheergojri, P. Iqbal, A. M. Ilyas
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引用次数: 1

Abstract

Cancer cells develop several hallmark changes over the progress of the tumor process. Cell assistance in multicellular organisms is regulated by the division of cell coordination by aggressive growth modulation. In this perspective, the use of molecular indicators triggering cell division is a mystery, because a cancer cell can manipulate any molecule that induces and helps growth, disturbing cellular assistance. An effective alteration proceeding to tumors must develop to be competitive, allowing a cancer cell to pass a signal resulting in better selection chances. The subjective simulation of physiological systems has become increasingly valuable in recent years, and there is now a wide range of mathematical models of signalling pathways that have contributed to some groundbreaking discoveries and hypotheses as to how this system works. Here we discuss various modeling methods and their application to the physiology of medical systems, focusing on the identification of parameters in ordinary differential equation models and their significance for forecasting cellular decisions in network modeling. In situations of global and local cell-to-cell rivalry, we quantify how this mechanism impacts a mutated cell's fixing chance of producing such a signal, and consider that this process will play a vital role in reducing cancer.
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利用信号通路预测数学模型抑制癌症生长
癌症细胞在肿瘤过程中发生了几个标志性的变化。多细胞生物中的细胞辅助是由细胞协调的分裂通过积极的生长调节来调节的。从这个角度来看,触发细胞分裂的分子指示剂的使用是个谜,因为癌症细胞可以操纵任何诱导和帮助生长的分子,干扰细胞辅助。肿瘤的有效改变过程必须具有竞争力,使癌症细胞能够传递信号,从而获得更好的选择机会。近年来,生理系统的主观模拟变得越来越有价值,现在有了广泛的信号通路数学模型,这些模型为该系统如何工作做出了一些突破性的发现和假设。在这里,我们讨论了各种建模方法及其在医疗系统生理学中的应用,重点是常微分方程模型中参数的识别及其在网络建模中预测细胞决策的意义。在全球和局部细胞对细胞竞争的情况下,我们量化了这种机制如何影响突变细胞产生这种信号的固定机会,并认为这一过程将在减少癌症方面发挥至关重要的作用。
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