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Modelling immune deterioration, immune recovery and state-specific duration of HIV-infected women with viral load adjustment: using parametric multistate model.
- Source :
-
BMC public health [BMC Public Health] 2020 Mar 30; Vol. 20 (1), pp. 416. Date of Electronic Publication: 2020 Mar 30. - Publication Year :
- 2020
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Abstract
- Background: CD4 cell and viral load count are highly correlated surrogate markers of human immunodeficiency virus (HIV) disease progression. In modelling the progression of HIV, previous studies mostly dealt with either CD4 cell counts or viral load alone. In this work, both biomarkers are in included one model, in order to study possible factors that affect the intensities of immune deterioration, immune recovery and state-specific duration of HIV-infected women.<br />Methods: The data is from an ongoing prospective cohort study conducted among antiretroviral treatment (ART) naïve HIV-infected women in the province of KwaZulu-Natal, South Africa. Participants were enrolled in the acute HIV infection phase, then followed-up during chronic infection up to ART initiation. Full-parametric and semi-parametric Markov models were applied. Furthermore, the effect of the inclusion and exclusion viral load in the model was assessed.<br />Results: Inclusion of a viral load component improves the efficiency of the model. The analysis results showed that patients who reported a stable sexual partner, having a higher educational level, higher physical health score and having a high mononuclear component score are more likely to spend more time in a good HIV state (particularly normal disease state). Patients with TB co-infection, with anemia, having a high liver abnormality score and patients who reported many sexual partners, had a significant increase in the intensities of immunological deterioration transitions. On the other hand, having high weight, higher education level, higher quality of life score, having high RBC parameters, high granulocyte component scores and high mononuclear component scores, significantly increased the intensities of immunological recovery transitions.<br />Conclusion: Inclusion of both CD4 cell count based disease progression states and viral load, in the time-homogeneous Markov model, assisted in modeling the complete disease progression of HIV/AIDS. Higher quality of life (QoL) domain scores, good clinical characteristics, stable sexual partner and higher educational level were found to be predictive factors for transition and length of stay in sequential adversity of HIV/AIDS.
- Subjects :
- Adult
Anti-Retroviral Agents therapeutic use
Biomarkers blood
Disease Progression
Female
HIV Infections drug therapy
HIV Infections virology
Humans
Middle Aged
Prospective Studies
Quality of Life
South Africa
CD4 Lymphocyte Count statistics & numerical data
HIV Infections diagnosis
Markov Chains
Models, Statistical
Viral Load statistics & numerical data
Subjects
Details
- Language :
- English
- ISSN :
- 1471-2458
- Volume :
- 20
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- BMC public health
- Publication Type :
- Academic Journal
- Accession number :
- 32228523
- Full Text :
- https://doi.org/10.1186/s12889-020-08530-x