Skip to content
Research Article Open access CC BY 3.0

Modeling the Epidemiology of Human Papilloma Virus Infection and Vaccination and Its Impact on Cervical Cancer in Ghana

William Obeng-Denteh, Robert Twumasi Afrifa, Benedict Barnes, Kwaku Mari Addo

Journal of Scientific Research and Reports · pp. 2501–2518 · Published 7 Aug 2014

10.9734/JSRR/2014/11019

Abstract

This paper is purported to assess the impact of the modeling of bivalent Human Papillomavirus (HPV) vaccine and Pap test on prevalence of carcinogenic HPV 16/18 types in Ghanaian females. For this purpose, a non-linear dynamic SIR model of homogeneous transmission for HPV 16/18 type’s infection is developed, which accounts for immunity due to vaccination in particular. The recovery class R was partitioned into two compartments, temporary recovery RT and permanent recovery RP. We propose ODE equations to study HPV infection in the general female population. The vaccinated reproduction number R0 for general female population was derived using the approach described by Diekmann (2010) called the Next Generation Operator approach. The proposed models were analyzed using quantitative method, with regard to steady-state stability and sensitivity analysis. Precisely, the stability of the models is investigated depending on the value for R0 for the disease free steady-state and Routh-Hurwitz criterion employed to study the stability of the endemic steady-state. Prevalence data are used to fit a numerical HPV model, so as to assess infection rates. We also support our theoretical analysis with numerical simulations. This provides a framework for future research and public-health policy to determine the dependence of HPV vaccination programs on age, as well as how the vaccine and Pap test can reduce the number of infections and deaths due to cervical cancer. We estimated the basic reproductive number for the general female population based on current vaccination statistics using the systems of ODE’s to be R0>1, which indicates that the pathogen is able to invade the general female population and cervical cancer cases will increase in the future. The derivation and analysis of the modified SIR mathematical model SIRTRT enabled a better understanding of the dynamics of the spread of Human Papilloma Virus infection and reduction of cervical cancer cases in Ghana.

Differential equations susceptible infected temporary recovery and permanent recovery simulation transmission dynamics Human papillomavirus cervical cancer.

Cited by 5

A mathematical model for human papillomavirus and its impact on cervical cancer in India

Praveen Kumar Rajan, Murugesan Kuppusamy, Oluwaseun F. Egbelowo · Journal of Applied Mathematics and Computing · 2022

DETERMINING PROBABILITY OF CANCER CELL TRANSFOMATION AT HUMAN PAPILLOMAVIRUS INFECTION

Taras Shevchenko Kyiv National University, L. P. Buchatskyi · Biotechnologia Acta · 2021

HPV Screening and Vaccination Strategies in an Unscreened Population: A Mathematical Modeling Study

Rachael M. Milwid, Federico Frascoli, Marc Steben · Bulletin of Mathematical Biology · 2018

Mathematical Model of Human Papillomavirus (HPV) Dynamics With Double‐Dose Vaccination and Its Impact on Cervical Cancer

Henok Desalegn Desta, Getachew Teshome Tilahun, Tariku Merga Tolasa · Discrete Dynamics in Nature and Society · 2024

Article metrics

Real usage data collected on this platform.

0

Page views

0

PDF downloads

0

Outbound clicks

5

Citations

Views by country

Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".

No views recorded yet.

Traffic sources

Referring site, by host.

No traffic recorded yet.

Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.