首页> 外文学位 >Analysis and control of central metabolic pathways during cell-free protein synthesis reactions.
【24h】

Analysis and control of central metabolic pathways during cell-free protein synthesis reactions.

机译:无细胞蛋白质合成反应过程中中央代谢途径的分析和控制。

获取原文
获取原文并翻译 | 示例

摘要

Cell-free biology provides a unique opportunity to study complicated cellular systems such as protein synthesis and metabolism. Since no cell wall is present, the reaction environment can be directly controlled and easily sampled. In addition, the cell extract provides a stable catalyst system that is not modified by cellular responses. Cell-free protein synthesis (CFPS) has the potential for higher productivity than in vivo systems because the cellular resources are directed toward the production of a single protein. However, widespread use of CFPS has not been adopted in part because of high reagent costs and short reaction times caused by substrate instabilities.; In this work, we investigate the metabolism associated with major classes of compounds during CFPS, including amino acids, organic acids, and nucleotides. By understanding this metabolism, we address the challenges of substrate instability and high reagent cost. Amino acid supply is stabilized through genetic modification of the source strain used to make cell extract. By deleting five genes, we remove unwanted enzymatic activities and produce an active extract that maintains stable amino acid concentrations. Energy supply limitations are also addressed. Since glucose is the preferred carbon and energy source of the biotechnology industry, we sought conditions for which glycolysis was activated to supply the energy needs of the protein synthesis reaction. Stabilizing pH and removing phosphate limitations allow glucose utilization. Glucose is two orders of magnitude less expensive than traditional energy sources, such as phosphoenolpyruvate. We further reduce reagent costs by substituting nucleoside monophosphates (NMPs) for nucleoside triphosphates (NTPs). NMPs are quickly converted to NTPs with no reduction in protein synthesis yields or energy charge. Finally, metabolite measurements are used to define a model of cell-free metabolism solved with dynamic flux balance analysis. The model allows a broad view of cell-free metabolism and gives insights into reaction flux and metabolite data that we cannot measure experimentally.; Overall, this investigation has contributed to cell-free biology by increasing substrate stability, decreasing reagent costs, and developing a better understanding of cell-free metabolism. These results are important for improving CFPS to enable a variety of applications.
机译:无细胞生物学为研究复杂的细胞系统(例如蛋白质合成和代谢)提供了独特的机会。由于不存在细胞壁,因此可以直接控制反应环境并轻松取样。另外,细胞提取物提供了稳定的催化剂体系,该体系不会被细胞反应所修饰。无细胞蛋白质合成(CFPS)具有比体内系统更高的生产率的潜力,因为细胞资源直接用于单一蛋白质的生产。然而,由于试剂成本高和由底物不稳定性引起的反应时间短,所以未广泛使用CFPS。在这项工作中,我们研究了CFPS期间与主要种类化合物相关的代谢,包括氨基酸,有机酸和核苷酸。通过了解这种新陈代谢,我们解决了底物不稳定和试剂成本高的挑战。通过对用于制备细胞提取物的来源菌株进行基因修饰,可以稳定氨基酸供应。通过删除五个基因,我们去除了不想要的酶活性,并产生了一种维持稳定氨基酸浓度的活性提取物。还解决了能源供应限制。由于葡萄糖是生物技术行业首选的碳和能源,因此我们寻求激活糖酵解的条件,以满足蛋白质合成反应的能量需求。稳定pH值和消除磷酸盐限制可以利用葡萄糖。葡萄糖比诸如磷酸烯醇丙酮酸的传统能源便宜两个数量级。我们通过用核苷单磷酸酯(NMP)代替三磷酸核苷(NTP)进一步降低试剂成本。 NMP可快速转换为NTP,而不会降低蛋白质的合成产量或能量电荷。最后,代谢物测量用于定义通过动态通量平衡分析解决的无细胞代谢模型。该模型可广泛观察无细胞代谢,并深入了解我们无法通过实验测量的反应通量和代谢产物数据。总体而言,这项研究通过增加底物稳定性,降低试剂成本以及对无细胞代谢有了更好的了解,从而为无细胞生物学做出了贡献。这些结果对于改善CFPS以实现各种应用非常重要。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号