Mathematical modeling and optimal control of SARS-CoV-2 and tuberculosis co-infection: a case study of Indonesia

被引:0
作者
H. Rwezaura
M. L. Diagne
A. Omame
A. L. de Espindola
J. M. Tchuenche
机构
[1] University of Dar es Salaam,Mathematics Department
[2] Université de Thiés,Département de Mathématiques, UFR des Sciences et Technologies
[3] Federal University of Technology,Department of Mathematics
[4] Government College University,Abdus Salam School of Mathematical Sciences
[5] Universidade Federal Fluminense,Departamento de Física, Instituto de Ciências Exatas
[6] University of the Witwatersrand,ICEx
[7] Nelson Mandela African Institution of Science and Technology,School of Computer Science and Applied Mathematics
来源
Modeling Earth Systems and Environment | 2022年 / 8卷
关键词
SARS-CoV-2; Tuberculosis; Co-infection; Basic reproduction number; Optimal control; Pontryagin’s principle;
D O I
暂无
中图分类号
学科分类号
摘要
A new mathematical model incorporating epidemiological features of the co-dynamics of tuberculosis (TB) and SARS-CoV-2 is analyzed. Local asymptotic stability of the disease-free and endemic equilibria are shown for the sub-models when the respective reproduction numbers are below unity. Bifurcation analysis is carried out for the TB only sub-model, where it was shown that the sub-model undergoes forward bifurcation. The model is fitted to the cumulative confirmed daily SARS-CoV-2 cases for Indonesia from February 11, 2021 to August 26, 2021. The fitting was carried out using the fmincon optimization toolbox in MATLAB. Relevant parameters in the model are estimated from the fitting. The necessary conditions for the existence of optimal control and the optimality system for the co-infection model is established through the application of Pontryagin’s Principle. Different control strategies: face-mask usage and SARS-CoV-2 vaccination, TB prevention as well as treatment controls for both diseases are considered. Simulations results show that: (1) the strategy against incident SARS-CoV-2 infection averts about 27,878,840 new TB cases; (2) also, TB prevention and treatment controls could avert 5,397,795 new SARS-CoV-2 cases. (3) In addition, either SARS-CoV-2 or TB only control strategy greatly mitigates a significant number of new co-infection cases.
引用
收藏
页码:5493 / 5520
页数:27
相关论文
共 184 条
[1]  
Andersen KG(2020)The proximal origin of SARS-CoV-2 Nat Med 26 450-452
[2]  
Rambaut A(2022)Optimal control and comprehensive cost-effectiveness analysis for COVID-19 Res Phys 33 105177-21
[3]  
Lipkin WI(2021)Mathematical modeling of COVID-19 in India and its states with optimal control Earth Syst Environ Model 1 815-404
[4]  
Asamoah JKK(2022)A co-infection model on TB-COVID-19 with optimal control and sensitivity analysis Math Comput Simul 1 361-15
[5]  
Okyere E(1995)The intrinsic transmission dynamics of tuberculosis epidemics Nat Med 18 1-1720
[6]  
Abidemi A(2004)Dynamical models of tuberculosis and their applications Math Biosci Eng 3 335-365
[7]  
Moore SE(2020)Tuberculosis and COVID-19: lessons from the past viral outbreaks and possible future outcomes Can Respir J 382 1708-653
[8]  
Sun G-Q(2004)Evolution of virulence Infect Dis Clin North Am 395 355-558
[9]  
Jin Z(1997)Using a mathematical model to evaluate the efficacy of TB control measures Emerg Infect Dis 42 599-809
[10]  
Acheampong E(2022)Optimal control analysis of a COVID-19 and tuberculosis co-dynamics model Inform Med Unlock 56 2002105-746