Simulator for Primary HIV Replication and Evolution
Simulator for Primary HIV Replication and Evolution
批准号:
8304318
负责人:
Ha Youn Lee
金额:
$40.18万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-07-01 至 2014-06-30
关键词:
AIDS VaccinesAcquired Immunodeficiency SyndromeAcuteCD4 Positive T LymphocytesCD8-Positive T-LymphocytesCD8B1 geneCellsClinicalClinical DataClinical ManagementCollaborationsCommunitiesComputer SimulationComputer softwareDataDevelopmentEvaluationEvolutionGaggingGenerationsGoalsHIVHIV vaccineHIV-2HealthImmuneImmune responseImmunityImmunologicsIndividualInfectionIntegration Host FactorsInternetJavaKineticsMeasuresMediatingMethodsModelingNational Institute of Allergy and Infectious DiseaseOnline SystemsOutcome MeasureParticipantPatientsPhasePlayPopulationProcessProgramming LanguagesProvirusesRNA-Directed DNA PolymeraseRecombinantsResearchResearch PersonnelRoleSamplingSchemeSequence AnalysisSimulateStagingStatistical ModelsT cell responseT-Cell ActivationTestingTimeUpdateVaccine DesignVaccinesViralViral Load resultViral PathogenesisViral load measurementVirusVirus DiseasesVirus Replicationanimationcohortcomputerized toolsdesignexperienceinnovationmathematical modelnovelreproductivesimulationtoolvaccine efficacyvaccine evaluation
中文摘要
描述(由申请方提供):通过定量计算建模更好地了解HIV感染的初级阶段对于解释病毒发病机制和开发有效疫苗至关重要,因为疫苗引发的适应性免疫应答预计将在初级阶段对病毒复制和进化产生主要影响。先前对感染的早期阶段进行建模的努力无法充分利用现有的临床数据,因为当前的模型没有将病毒复制和序列进化整合在单个框架中。我们将构建一个模型,主要是艾滋病毒感染,将病毒复制动力学和病毒序列多样化同时进行。我们的模型的主要创新将包括(i)病毒学动力学和序列数据的全面整合和(ii)基于网络的软件的发明,以可视化的时空动态的艾滋病毒感染。然后,我们将使用这个模拟模型疫苗引起的影响,对宿主的免疫控制艾滋病毒感染。在目标1中,将构建蒙特-卡罗(MC)模拟,说明HIV感染的初级阶段的病毒动力学和序列进化。将使用病毒学参数(包括动态繁殖率、世代时间和逆转录酶单循环错误率)模拟受感染细胞的HIV前病毒群体。在目标2中,我们将该模型应用于来自NIAID支持的默克重组Ad 5-HIV gag/pol/nef疫苗的IIB期评价(STEP研究;默克/HIV疫苗试验网络合作)的数据,以了解为什么该疫苗在许多试验参与者中引起HIV特异性CD 8细胞,但对经历突破性感染的个体中的病毒载量没有影响。我们将使用我们的模型来测试可能解释这种缺乏功效的三个假设:(1)传播毒株和疫苗毒株之间的高水平抗原距离可能会损害疫苗效力(2)病毒从疫苗诱导的CD 8 + T细胞应答中逃逸可能会导致病毒复制增强或(3)疫苗相关的CD 4 + T细胞活化可能会放大病毒复制,从而抵消了病毒特异性CD 8细胞带来的潜在益处。最后,目标3将发明基于网络的模拟工具,用于使用临床数据输入预测疫苗效力。这些研究有望为原发性HIV感染提供一个新颖而全面的计算模型。公共卫生相关性:人类免疫缺陷病毒(HIV)感染的初始阶段在确定随后的艾滋病进展和探索疫苗有效性方面起着至关重要的作用,但仍然知之甚少。该项目将开发一种计算机模拟,可用于模拟病毒感染的这一关键阶段。该模型有望在帮助设计安全有效的艾滋病毒/艾滋病疫苗方面发挥重要作用。
英文摘要
DESCRIPTION (provided by applicant): Better understanding of the primary phase of HIV infection through quantitative computational modeling is crucial for deciphering viral pathogenesis and for developing an effective vaccine, since vaccine-elicited adaptive immune responses are expected to exert their major effects on viral replication and evolution during the primary phase. Previous efforts to model this early stage of infection have been unable to fully exploit available clinical data since current models did not integrate viral replication and sequence evolution in a single framework. We will construct a model for primary HIV infection that will incorporate virus replication dynamics and viral sequence diversification simultaneously. Major innovations of our model will include (i) comprehensive integration of virologic kinetics and sequence data and (ii) invention of web-based software to visualize the spatio-temporal dynamics of HIV infection. We will then use this simulation to model vaccine- elicited effects on host immune control of HIV infection. In Aim 1, a Monte-Carlo (MC) simulation illustrating both viral kinetics and sequence evolution in the primary phase of HIV infection will be constructed. The HIV provirus population of infected cells will be simulated using virologic parameters, including dynamic reproductive ratio, generation time, and reverse transcriptase single cycle error rate. In Aim 2, we apply the model to data from the NIAID-supported phase IIB evaluation of Merck's recombinant Ad5-HIV gag/pol/nef vaccine (STEP Study; Merck/HIV Vaccine Trials Network collaboration) in order to understand why this vaccine elicited HIV-specific CD8 cells in many trial participants but had no effect on virus load in those individuals who experienced breakthrough infections. We will use our model to test three hypotheses that might explain this lack of efficacy: (1) high levels of antigenic distance between the transmitted strain and the vaccine strain may have compromised vaccine efficacy (2) viral escape from vaccine-induced CD8+ T cell responses may have resulted in the enhancement of viral replication or (3) vaccine-related CD4+ T cell activation may have amplified virus replication, thereby offsetting the potential benefit conferred by virus- specific CD8 cells. Finally, Aim 3 will invent web-based simulation tools for prediction of vaccine efficacy using clinical data inputs. These studies are expected to result in a novel and comprehensive computational model for primary HIV infection. PUBLIC HEALTH RELEVANCE: The initial phase of infection with human immunodeficiency virus (HIV) plays a crucial role in determining subsequent progression to AIDS and probing vaccine efficacy, but remains poorly understood. This project will develop a computational simulation that can be used to model this critical phase of virus infection. The model is expected to have important utility in helping to design safe and effective HIV/AIDS vaccines.
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会议论文
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海外基金