Modelling the dynamics of \textit{Typanosoma rangeli} and triatomine bug with logistic growth of vector and systemic transmission
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Publication:2688428
DOI10.3934/mbe.2022393OpenAlexW4284959779WikidataQ114022483 ScholiaQ114022483MaRDI QIDQ2688428
Publication date: 3 March 2023
Published in: Mathematical Biosciences and Engineering (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.3934/mbe.2022393
Hopf bifurcationlogistic growthChagas diseaseforward bifurcationpathogenic effectTrypanosoma rangeli
Epidemiology (92D30) Bifurcation theory for ordinary differential equations (34C23) Stability of solutions to ordinary differential equations (34D20)
Uses Software
Cites Work
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- Logarithmic norms and projections applied to linear differential systems
- A model for Chagas disease involving transmission by vectors and blood transfusion
- The role of animal grazing in the spread of Chagas disease
- Global dynamics of a SEIR model with varying total population size
- Reproduction numbers and sub-threshold endemic equilibria for compartmental models of disease transmission
- A mathematical model for Chagas disease with infection-age-dependent infectivity
- Modeling and analysis of recurrent autoimmune disease
- Modelling triatomine bug population and \textit{Trypanosoma rangeli} transmission dynamics: co-feeding, pathogenic effect and linkage with chagas disease
- Host switching vs. host sharing in overlapping sylvaticTrypanosoma cruzitransmission cycles
- CRITICAL CONTACT RATE FOR VECTOR–HOST–PATHOGEN OSCILLATION INVOLVING CO-FEEDING AND DIAPAUSE
- A Geometric Approach to Global-Stability Problems
- Examining HIV progression mechanisms via mathematical approaches
- Vectored Immunoprophylaxis and Cell-to-Cell Transmission in HIV Dynamics
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