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The carotenoid biosynthetic pathway: thinking in all dimensions.

机译:类胡萝卜素的生物合成途径:全方位思考。

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The carotenoid biosynthetic pathway serves manifold roles in plants related to photosynthesis, photoprotection, development, stress hormones, and various volatiles and signaling apocarotenoids. The pathway also produces compounds that impact human nutrition and metabolic products that contribute to fragrance and flavor of food and non-food crops. It is no surprise that the pathway has been a target of metabolic engineering, most prominently in the case of Golden Rice. The future success and predictability of metabolic engineering of carotenoids rests in the ability to target carotenoids for specific physiological purposes as well as to simultaneously modify carotenoids along with other desired traits. Here, we ask whether predictive metabolic engineering of the carotenoid pathway is indeed possible. Despite a long history of research on the pathway, at this point in time we can only describe the pathway as a parts list and have almost no knowledge of the location of the complete pathway, how it is assembled, and whether there exists any trafficking of the enzymes or the carotenoids themselves. We discuss the current state of knowledge regarding the "complete" pathway and make the argument that predictive metabolic engineering of the carotenoid pathway (and other pathways) will require investigation of the three dimensional state of the pathway as it may exist in plastids of different ultrastructures. Along with this message we point out the need to develop new types of visualization tools and resources that better reflect the dynamic nature of biosynthetic pathways.
机译:类胡萝卜素的生物合成途径在植物中起着与光合作用,光保护,发育,胁迫激素以及各种挥发物和信号化类胡萝卜素有关的多种作用。该途径还产生影响人类营养和代谢产物的化合物,这些物质有助于食物和非粮食作物的香气和风味。毫不奇怪,该途径已成为代谢工程的目标,在金大米中最为突出。类胡萝卜素代谢工程的未来成功和可预测性取决于针对特定生理目的靶向类胡萝卜素以及同时修饰类胡萝卜素以及其他所需性状的能力。在这里,我们询问类胡萝卜素途径的预测性代谢工程是否确实可行。尽管对这种途径的研究已有很长的历史,但在此时此刻,我们只能将该途径描述为零件清单,并且几乎不了解整个途径的位置,如何组装以及是否存在任何贩运的途径。酶或类胡萝卜素本身。我们讨论了有关“完整”途径的当前知识状态,并提出这样的论点,即类胡萝卜素途径(及其他途径)的预测性代谢工程将需要研究途径的三维状态,因为它可能存在于不同超微结构的质体中。伴随着此消息,我们指出需要开发新型的可视化工具和资源,以更好地反映生物合成途径的动态性质。

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