Wodarz Dominik
Department of Ecology and Evolutionary Biology, University of California, 321 Steinhaus Hall, Irvine, CA, 926967, USA,
Methods Mol Biol. 2014;1184:563-81. doi: 10.1007/978-1-4939-1115-8_30.
This review outlines how mathematical models have been helpful, and continue to be so, for obtaining insights into the in vivo dynamics of HIV infection. The review starts with a discussion of a basic mathematical model that has been frequently used to study HIV dynamics. Some crucial results are described, including the estimation of key parameters that characterize the infection, and the generation of influential theories which argued that in vivo virus evolution is a key player in HIV pathogenesis. Subsequently, more recent concepts are reviewed that have relevance for disease progression, including the multiple infection of cells and the direct cell-to-cell transmission of the virus through the formation of virological synapses. These are important mechanisms that can influence the rate at which HIV spreads through its target cell population, which is tightly linked to the rate at which the disease progresses towards AIDS.
本综述概述了数学模型如何一直并将继续有助于深入了解HIV感染的体内动态。综述首先讨论了一个经常用于研究HIV动态的基本数学模型。描述了一些关键结果,包括对表征感染的关键参数的估计,以及产生了有影响力的理论,这些理论认为体内病毒进化是HIV发病机制中的关键因素。随后,回顾了与疾病进展相关的最新概念,包括细胞的多重感染以及病毒通过形成病毒突触进行的直接细胞间传播。这些是可以影响HIV在其靶细胞群体中传播速度的重要机制,而这与疾病向艾滋病进展的速度紧密相关。