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Published on: August 31, 2014
The relative contributions of infectious and mitotic spread to HTLV-1 persistence
Daniel J Laydon1,2, Vikram Sunkara3, Lies Boelen2
1MRC Centre for Global Infectious Disease Analysis, Department of Infectious Disease Epidemiology, School of Public Health, Imperial College London, London, United Kingdom.
Abstract:
Human T-lymphotropic virus type-1 (HTLV-1) persists within hosts via infectious spread (de novo infection) and mitotic spread (infected cell proliferation), creating a population structure of multiple clones (infected cell populations with identical genomic proviral integration sites). The relative contributions of infectious and mitotic spread to HTLV-1 persistence are unknown, and will determine the efficacy of different approaches to treatment. The prevailing view is that infectious spread is negligible in HTLV-1 persistence beyond early infection. However, in light of recent high-throughput data on the abundance of HTLV-1 clones, and recent estimates of HTLV-1 clonal diversity that are substantially higher than previously thought (typically between 104 and 105 HTLV-1+ T cell clones in the body of an asymptomatic carrier or patient with HTLV-1-associated myelopathy/tropical spastic paraparesis), ongoing infectious spread during chronic infection remains possible. We estimate the ratio of infectious to mitotic spread using a hybrid model of deterministic and stochastic processes, fitted to previously published HTLV-1 clonal diversity estimates. We investigate the robustness of our estimates using three alternative estimators. We find that, contrary to previous belief, infectious spread persists during chronic infection, even after HTLV-1 proviral load has reached its set point, and we estimate that between 100 and 200 new HTLV-1 clones are created and killed every day. We find broad agreement between all estimators. The risk of HTLV-1-associated malignancy and inflammatory disease is strongly correlated with proviral load, which in turn is correlated with the number of HTLV-1-infected clones, which are created by de novo infection. Our results therefore imply that suppression of de novo infection may reduce the risk of malignant transformation.
Insights
Human T-lymphotropic virus type-1 (HTLV-1) infectious spread continues during chronic infection, contrary to prior beliefs. Suppressing new infections may lower the risk of HTLV-1-associated diseases.
Area of Science:
- Virology
- Immunology
- Mathematical Biology
Background:
- Human T-lymphotropic virus type-1 (HTLV-1) establishes persistent infection through infectious (de novo) and mitotic (cell proliferation) spread.
- The relative contribution of these two spread mechanisms to long-term HTLV-1 persistence remains unclear, impacting treatment strategies.
- Previous research suggested infectious spread is minimal after initial infection, but recent clonal diversity data challenges this.
Purpose of the Study:
- To quantify the ratio of infectious to mitotic spread in chronic HTLV-1 infection.
- To determine if de novo infection continues after HTLV-1 proviral load set point.
- To assess the implications of ongoing infectious spread for HTLV-1 disease risk.
Main Methods:
- Developed a hybrid model combining deterministic and stochastic processes.
- Fitted the model to existing estimates of HTLV-1 clonal diversity.
- Employed three alternative estimators to ensure robustness of the findings.
Main Results:
- Contrary to prevailing assumptions, infectious spread of HTLV-1 persists during chronic infection.
- Estimated that 100-200 new HTLV-1 clones are generated and eliminated daily.
- Found consistent results across multiple estimation methods.
Conclusions:
- Ongoing de novo infection contributes to HTLV-1 persistence and clonal diversity.
- The number of HTLV-1 clones correlates with proviral load and disease risk.
- Suppression of de novo infection could potentially reduce the risk of HTLV-1-associated malignancies and inflammatory conditions.
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