Multiplex discovery of synthetic host-protein combinations that inhibit HIV
Multiplex discovery of synthetic host-protein combinations that inhibit HIV
批准号:
10305688
负责人:
Kenneth A Matreyek
金额:
$24.15万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-11-18 至 2023-10-31
关键词:
Adaptor Signaling ProteinAdoptedAffinityAmino Acid SequenceAntibody ResponseAntigensAntiviral ResponseBindingBiologicalBiological AssayBiological ProductsBiology of HIV InfectionBiotechnologyCellsChimeric ProteinsComplexDevelopmentDiseaseEngineeringEnvironmentEpidemicExhibitsFutureGoalsHIVHIV InfectionsHumanImmune responseInfectionInsertional MutagenesisLeadLibrariesLife Cycle StagesLinkManipulative TherapiesMethodsModernizationMolecular and Cellular BiologyMutagenesisPeptidesPharmaceutical PreparationsPharmacologyProcessPropertyProtein ConformationProtein EngineeringProteinsRecombinant DNARecombinantsRecording of previous eventsReporterResearchResistanceScientistSpecificityTechniquesTestingTherapeuticTherapeutic InterventionToxic effectTrainingVariantVirusWorkbasecellular engineeringcomparativedesignenv Gene Productsexperimental studygene therapygenome-wideinhibitorinsightneutralizing antibodynovelnovel strategiesprotein degradationstoichiometrysynthetic biologytooltraffickingubiquitin ligaseubiquitin-protein ligase
中文摘要
项目总结
几十年的艾滋病毒研究已经产生了一系列有效的艾滋病毒药物,但我们需要新方法的帮助
以消除全球艾滋病毒的流行。现代生物技术开辟了发展的新途径
针对病毒生命周期中剩余漏洞的工程蛋白质。新型蛋白质组合
将宿主来源的HIV结合肽与可标记HIV蛋白降解的效应结构域连接起来
可能会有效地干扰感染,而不会造成重大的细胞毒性。不幸的是,有数百个
数以千计的组合需要测试,使用传统的逐个测试几乎是不可能的
接近了。
我们建议将尖端的合成生物学工具应用于蛋白质和细胞工程,利用复合体,
基于文库的分析,以确定最有希望的设计。在第一个目标中,我们将大规模地
已知的HIV结合肽与不同细胞泛素连接酶效应域的成对融合,以
确定具有最佳治疗潜力的组合。第二个目标是使用一个不偏不倚的,
全基因组转座子插入突变方法发现能够抑制HIV的新结合子
当融合到泛素连接酶域时的复制。这两种方法都将利用
已在人类中发现并表达的蛋白质序列,避免了对非我多肽的免疫反应
抗原。这项工作将产生新的铅疗法,推进合理的蛋白质设计,并提供生物
洞察HIV蛋白靶标的化学计量学和工程化的多聚体
蛋白酶体降解机制提供最准确和最特异的抗病毒反应。
英文摘要
PROJECT SUMMARY
Decades of HIV research have yielded a panel of potent HIV drugs, but we need the help of new approaches
to eliminate the global HIV epidemic. Modern biotechnologies have opened new avenues toward developing
engineered proteins that target the remaining vulnerabilities in the virus life-cycle. Novel protein combinations
linking host-derived HIV binding peptides with effector domains that can mark the HIV protein for degradation
may potently interfere with infection without causing major cellular toxicity. Unfortunately, there are hundreds to
thousands of combinations that need to be tested, which is nearly impossible using traditional, one-by-one
approaches.
We propose to apply cutting edge synthetic biology tools for protein and cell engineering, harnessing multiplex,
library-based assays to identify the most promising designs. In the first aim, we will perform large-scale
pairwise fusions of known HIV binding peptides with different cellular ubiquitin ligase effector domains, to
identify the combinations that have the best therapeutic potentials. The second aim uses an unbiased,
genome-wide transposon insertional mutagenesis approach to uncover novel binders capable of inhibiting HIV
replication when fused to a ubiquitin ligase domain. Both approaches will harness novel combinations of
protein sequences already found and expressed in humans, avoiding immune responses to non-self peptide
antigens. This work will yield new lead therapeutics, advance rational protein design, and provide biological
insight into how the stoichiometries of HIV protein targets and the multimerization of the engineered
proteasomal degradation machinery provides the most accurate and specific antiviral responses.
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资助金额:$24.15万
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资助金额:$40.25万
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财政年份:2021
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负责人:Kenneth A Matreyek
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Recombinant DNA technologies for multiplex genetic assays in human cells
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资助金额:$40.25万
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负责人:Kenneth A Matreyek
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依托单位:
海外基金