Hua Mengjiao, Wu Yu
Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province and Department of Engineering Mechanics, Zhejiang University, Hangzhou, 310027, China.
State Key Laboratory of Fluid Power and Mechatronic Systems, Zhejiang University, Hangzhou, 310027, China.
Mechanobiol Med. 2023 Jul 20;1(2):100011. doi: 10.1016/j.mbm.2023.100011. eCollection 2023 Dec.
Tumor state transitions between the excited (high-concentration) and nonexcited (low-concentration) basins under the Gaussian white noise and non-Gaussian colored noise are investigated via the most probable steady states (MPSS) and the first escape probability (FEP)-based stochastic basin of attraction (SBA), respectively. Reducing the non-Gaussian colored noise and then utilizing the unified colored noise approximation (UCNA), the Markov system is derived. The extremal controlling equation of stationary probability density function (SPDF) is derived to analyze the impacts of noise on transitions in terms of MPSS. The existence of the 'color' of the non-Gaussian colored noise induces the reappearance of the uncorrelated additive white noise parameter that had vanished from the extremal controlling equation, completely reversing the inability of the uncorrelated additive Gaussian white noise to operate on transitions. The FEP-dependent SBA characterizing the excited basin stability is performed to further analyze the role of noise on the likelihood of escaping to the nonexcited state. Results show that the cross-correlated noises play a dual role in regulating SBA. The increased SBA indicating more difficulty to escape to the nonexcited state reflects a worse therapeutic effect. Therefore, enhancing the negatively correlated noise intensities and augmenting the non-Gaussian noise correlation time is essential for destabilizing the excited basin and achieving optimal therapeutic efficacy.
分别通过最可能稳态(MPSS)和基于首次逃逸概率(FEP)的随机吸引域(SBA),研究了高斯白噪声和非高斯有色噪声作用下肿瘤状态在激发态(高浓度)和非激发态(低浓度)之间的转变。通过降低非高斯有色噪声并利用统一有色噪声近似(UCNA),推导出马尔可夫系统。推导了平稳概率密度函数(SPDF)的极值控制方程,以从MPSS角度分析噪声对转变的影响。非高斯有色噪声“颜色”的存在导致已从极值控制方程中消失的不相关加性白噪声参数重新出现,完全扭转了不相关加性高斯白噪声对转变不起作用的情况。进行了表征激发态稳定性的依赖于FEP的SBA,以进一步分析噪声对逃逸到非激发态可能性的作用。结果表明,互相关噪声在调节SBA中起双重作用。SBA增加表明逃逸到非激发态更困难,反映出治疗效果更差。因此,增强负相关噪声强度和增加非高斯噪声相关时间对于破坏激发态稳定性并实现最佳治疗效果至关重要。