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Towards a multiscale model of acute HIV infection
- Source :
- Computation, Computation, MDPI, 2017, 5 (1), pp.6. ⟨10.3390/computation5010006⟩, Computation, 2017, 5 (1), pp.6. ⟨10.3390/computation5010006⟩, Computation; Volume 5; Issue 1; Pages: 6, Recercat. Dipósit de la Recerca de Catalunya, instname, Computation, Vol 5, Iss 1, p 6 (2017)
- Publication Year :
- 2017
- Publisher :
- MDPI, 2017.
-
Abstract
- International audience; Human Immunodeficiency Virus (HIV) infection of humans represents a complex biological system and a great challenge to public health. Novel approaches for the analysis and prediction of the infection dynamics based on a multi-scale integration of virus ontogeny and immune reactions are needed to deal with the systems' complexity. The aim of our study is: (1) to formulate a multi-scale mathematical model of HIV infection; (2) to implement the model computationally following a hybrid approach; and (3) to calibrate the model by estimating the parameter values enabling one to reproduce the " standard " observed dynamics of HIV infection in blood during the acute phase of primary infection. The modeling approach integrates the processes of infection spread and immune responses in Lymph Nodes (LN) to that observed in blood. The spatio-temporal population dynamics of T lymphocytes in LN in response to HIV infection is governed by equations linking an intracellular regulation of the lymphocyte fate by intercellular cytokine fields. We describe the balance of proliferation, differentiation and death at a single cell level as a consequence of gene activation via multiple signaling pathways activated by IL-2, IFNa and FasL. Distinct activation thresholds are used in the model to relate different modes of cellular responses to the hierarchy of the relative levels of the cytokines. We specify a reference set of model parameter values for the fundamental processes in lymph nodes that ensures a reasonable agreement with viral load and CD4 + T cell dynamics in blood.
- Subjects :
- 0301 basic medicine
General Computer Science
Lymphocyte
medicine.medical_treatment
T cell
Virus infection
Spatial dynamics
Population
Biology
01 natural sciences
Single-cell regulation
lcsh:QA75.5-76.95
Virus
Theoretical Computer Science
03 medical and health sciences
Immune system
[SDV.MHEP.MI]Life Sciences [q-bio]/Human health and pathology/Infectious diseases
medicine
[MATH.MATH-AP]Mathematics [math]/Analysis of PDEs [math.AP]
0101 mathematics
Immune response
Multi-scale model
Reaction-diffusion
education
Acute phase
Regulation of gene expression
education.field_of_study
Applied Mathematics
virus infection
immune response
acute phase
HIV spread
multi-scale model
single-cell regulation
reaction-diffusion
spatial dynamics
3. Good health
010101 applied mathematics
030104 developmental biology
medicine.anatomical_structure
Cytokine
Modeling and Simulation
Immunology
lcsh:Electronic computers. Computer science
Viral load
Subjects
Details
- Language :
- English
- ISSN :
- 20793197
- Database :
- OpenAIRE
- Journal :
- Computation, Computation, MDPI, 2017, 5 (1), pp.6. ⟨10.3390/computation5010006⟩, Computation, 2017, 5 (1), pp.6. ⟨10.3390/computation5010006⟩, Computation; Volume 5; Issue 1; Pages: 6, Recercat. Dipósit de la Recerca de Catalunya, instname, Computation, Vol 5, Iss 1, p 6 (2017)
- Accession number :
- edsair.doi.dedup.....3b231b8665806365ca5cf90870e218f6
- Full Text :
- https://doi.org/10.3390/computation5010006⟩