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通过模块化和可编程的转录系统,精确调控哺乳动物细胞中多基因表达的计量。

Precise programming of multigene expression stoichiometry in mammalian cells by a modular and programmable transcriptional system.

机构信息

Center for Quantitative Biology, Academy for Advanced Interdisciplinary Studies, Peking University, 100871, Beijing, China.

Peking-Tsinghua Joint Center for Life Sciences, Peking University, 100871, Beijing, China.

出版信息

Nat Commun. 2023 Mar 17;14(1):1500. doi: 10.1038/s41467-023-37244-y.

Abstract

Context-dependency of mammalian transcriptional elements has hindered the quantitative investigation of multigene expression stoichiometry and its biological functions. Here, we describe a host- and local DNA context-independent transcription system to gradually fine-tune single and multiple gene expression with predictable stoichiometries. The mammalian transcription system is composed of a library of modular and programmable promoters from bacteriophage and its cognate RNA polymerase (RNAP) fused to a capping enzyme. The relative expression of single genes is quantitatively determined by the relative binding affinity of the RNAP to the promoters, while multigene expression stoichiometry is predicted by a simple biochemical model with resource competition. We use these programmable and modular promoters to predictably tune the expression of three components of an influenza A virus-like particle (VLP). Optimized stoichiometry leads to a 2-fold yield of intact VLP complexes. The host-independent orthogonal transcription system provides a platform for dose-dependent control of multiple protein expression which may be applied for advanced vaccine engineering, cell-fate programming and other therapeutic applications.

摘要

哺乳动物转录元件的上下文相关性阻碍了多基因表达计量及其生物学功能的定量研究。在这里,我们描述了一种不依赖于宿主和局部 DNA 上下文的转录系统,可逐步微调具有可预测计量比的单基因和多基因表达。该哺乳动物转录系统由来自噬菌体的模块化和可编程启动子库及其同源 RNA 聚合酶(RNAP)与加帽酶融合而成。单个基因的相对表达通过 RNAP 与启动子的相对结合亲和力来定量确定,而多基因表达计量比则由资源竞争的简单生化模型预测。我们使用这些可编程和模块化启动子来可预测地调整流感 A 病毒样颗粒 (VLP) 的三个组成部分的表达。优化的计量比可使完整 VLP 复合物的产量增加 2 倍。这种不依赖于宿主的正交转录系统为多种蛋白质表达的剂量依赖性控制提供了一个平台,可应用于先进的疫苗工程、细胞命运编程和其他治疗应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b04/10023750/1b805ae832d6/41467_2023_37244_Fig1_HTML.jpg

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