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本文引用的文献

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Current strategies for drug discovery through natural products.通过天然产物进行药物发现的当前策略。
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Dietary flavonoid intakes and risk of type 2 diabetes in US men and women.膳食类黄酮摄入量与美国男女 2 型糖尿病风险的关系。
Am J Clin Nutr. 2012 Apr;95(4):925-33. doi: 10.3945/ajcn.111.028894. Epub 2012 Feb 22.
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Natural products as sources of new drugs over the 30 years from 1981 to 2010.天然产物:1981 年至 2010 年 30 年间的新药来源。
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Production of 7-O-methyl aromadendrin, a medicinally valuable flavonoid, in Escherichia coli.在大肠杆菌中生产具有药用价值的黄酮类化合物 7-O-甲基芫花素。
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Recent advances towards development and commercialization of plant cell culture processes for the synthesis of biomolecules.植物细胞培养合成生物分子的研发和商业化的最新进展。
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Combinatorial biosynthesis in plants: a (p)review on its potential and future exploitation.植物中的组合生物合成:潜力及其未来开发的综述。
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Lignin variability in plant cell walls: contribution of new models.植物细胞壁中木质素的可变性:新模型的贡献。
Plant Sci. 2011 Oct;181(4):379-86. doi: 10.1016/j.plantsci.2011.06.012. Epub 2011 Jul 13.
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Strategies for discovery and improvement of enzyme function: state of the art and opportunities.发现和改善酶功能的策略:现状与机遇。
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9
Genome-scale metabolic network modeling results in minimal interventions that cooperatively force carbon flux towards malonyl-CoA.基因组规模代谢网络建模的结果是最小的干预,这些干预共同促使碳通量向丙二酰辅酶 A 方向流动。
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10
Plant phenylpropanoids as emerging anti-inflammatory agents.植物苯丙烷类作为新兴的抗炎药。
Mini Rev Med Chem. 2011 Sep;11(10):823-35. doi: 10.2174/138955711796575489.

让虫子脸红:微生物中苯丙烷类衍生物的代谢工程。

Putting bugs to the blush: metabolic engineering for phenylpropanoid-derived products in microorganisms.

机构信息

Institut für Bio- und Geowissenschaften, IBG-1; Biotechnologie; Forschungszentrum Jülich; Jülich, Germany.

出版信息

Bioengineered. 2013 Nov-Dec;4(6):355-62. doi: 10.4161/bioe.23885. Epub 2013 Nov 18.

DOI:10.4161/bioe.23885
PMID:23851446
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3937195/
Abstract

Phenylpropanoids and phenylpropanoid-derived phenolic compounds such as flavonoids, anthocyanins, or stilbenes are secondary plant metabolites which serve as pigments and scent compounds or provide protection against environmental stress. Due to their antioxidant properties they also have been widely recognized for their benefit on human health. Traditionally, such compounds are extracted from their natural plant sources, but this approach is limited by low abundance and environmental, seasonal as well as regional variations in yield. Chemical synthesis is not a true alternative for the large scale production of more complex phenylpropanoid-derived substances since chemical synthesis becomes commercially unfeasible as the structural complexity of these plant natural products increases. In the last years, many biosynthetic pathways for plant natural products have been elucidated through the advancements in DNA sequencing technologies. In combination with new recombinant DNA technologies this technical progress opens the door toward the functional integration of full biosynthetic pathways for the synthesis of phenylpropanoids and phenylpropanoid-derived compounds in microorganisms. We believe that this approach has great potential to provide sufficient quantities of the desired plant natural product from cheap and renewable resources. This commentary highlights recent advances in the microbial production of phenylpropanoid-derived compounds with an emphasis on flavonoids and stilbenes.

摘要

苯丙素类和苯丙素衍生的酚类化合物,如类黄酮、花青素或芪类,是植物次生代谢物,它们作为色素和气味化合物,或提供对环境胁迫的保护。由于其抗氧化特性,它们也因其对人类健康的益处而得到广泛认可。传统上,这些化合物是从其天然植物来源中提取的,但这种方法受到低丰度以及产量的环境、季节性和地域性变化的限制。对于更复杂的苯丙素衍生物质的大规模生产,化学合成不是一种真正的替代方法,因为随着这些植物天然产物结构复杂性的增加,化学合成在商业上变得不可行。在过去的几年中,通过 DNA 测序技术的进步,许多植物天然产物的生物合成途径已经被阐明。结合新的重组 DNA 技术,这一技术进步为在微生物中合成苯丙素类和苯丙素衍生化合物的完整生物合成途径的功能整合开辟了道路。我们相信,这种方法有很大的潜力,可以从廉价和可再生资源中提供足够数量的所需植物天然产物。本评论重点介绍了微生物生产苯丙素衍生化合物的最新进展,特别是类黄酮和芪类。