Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, MI, 48824 USA.
Nat Prod Rep. 2014 Aug;31(8):1043-55. doi: 10.1039/c3np70124g.
Covering: up to February 2014. The methylerythritol 4-phosphate (MEP) pathway is the recently discovered source of isoprenoid precursors isopentenyl diphosphate (IDP) and dimethylallyl diphosphate (DMADP) in most bacteria, some eukaryotic parasites, and the plastids of plant cells. The precursors lead to the formation of various isoprenoids having diverse roles in different biological processes. Some isoprenoids have important commercial uses. Isoprene, which is made in surprising abundance by some trees, plays a significant role in atmospheric chemistry. The genetic regulation of this pathway has been discussed but information about metabolic regulation is just now becoming available. This review covers metabolic regulation of the MEP pathway starting from the inputs of carbon, ATP, and reducing power. A number of different regulatory mechanisms involving intermediate metabolites and/or enzymes are discussed. Some recent data indicate that methylerythritol cyclodiphosphate (MEcDP), the fifth intermediate of this pathway, is a key metabolite. It has been found to play diverse roles in regulation within the pathway as well as coordinating other biological processes by acting as a stress regulator in bacteria and possibly a retrograde signal from plastids to the nucleus in plants. In this review we focus on the role of the MEP pathway in photosynthetic leaves during isoprene emission and more generally the metabolic regulation of the MEP pathway in both plants and bacteria.
截至 2014 年 2 月。在大多数细菌、一些真核寄生虫和植物细胞的质体中,甲羟戊酸(MEP)途径是异戊烯基二磷酸(IDP)和二甲基烯丙基二磷酸(DMADP)这两种萜烯前体物的最新发现的来源。这些前体物导致了各种异戊烯的形成,它们在不同的生物过程中具有不同的作用。一些萜烯具有重要的商业用途。异戊二烯由一些树木大量产生,在大气化学中起着重要作用。该途径的遗传调控已被讨论过,但代谢调控的信息才刚刚开始出现。这篇综述涵盖了 MEP 途径的代谢调控,从碳、ATP 和还原力的输入开始。讨论了一些涉及中间代谢物和/或酶的不同调节机制。一些最近的数据表明,该途径的第五个中间产物甲基赤藓醇环二磷酸(MEcDP)是一种关键代谢物。它在途径内的调节中以及通过在细菌中作为应激调节剂和在植物中可能作为质体到核的逆行信号发挥着不同的作用。在这篇综述中,我们重点介绍了 MEP 途径在光合作用叶片中异戊二烯排放过程中的作用,以及更普遍地介绍了 MEP 途径在植物和细菌中的代谢调控。