Faculty of Bioscience Engineering, Department of Biosystems, Division of Crop Biotechnics, KU Leuven, Willem De Croylaan 42, B-3001 Heverlee, Belgium.
J Exp Bot. 2013 Apr;64(6):1497-507. doi: 10.1093/jxb/ert010. Epub 2013 Feb 1.
In contrast to the well-documented roles of its mono- and bisphosphate esters, the occurrence of free sedoheptulose in plant tissues remains a matter of conjecture. The present work sought to determine the origin of sedoheptulose formation in planta, as well as its physiological importance. Elevated CO2 and sucrose induction experiments were used to study sedoheptulose metabolism in the Crassulacean acid metabolism (CAM) plants Kalanchoë pinnata and Sedum spectabile. Experimental evidence suggested that sedoheptulose is produced from the oxidative pentose phosphate pathway intermediate sedoheptulose-7-phosphate, by a sedoheptulose-7-phosphate phosphatase. Carbon flux through this pathway was stimulated by increased triose-phosphate levels (elevated CO2, compromised sink availability, and sucrose incubation of source leaves) and attenuated by ADP and inorganic phosphate (Pi). The accumulation of free sedoheptulose is proposed to act as a mechanism contributing to both C and P homeostasis by serving as an alternative carbon store under elevated CO2 or a compromised sink capacity to avoid sucrose accumulation, depletion of inorganic phosphate, and suppression of photosynthesis. It remains to be established whether this acclimation-avoiding mechanism is confined to CAM plants, which might be especially vulnerable to Pi imbalances, or whether some C3 and C4 plants also dispose of the genetic capacity to induce and accelerate sedoheptulose synthesis upon CO2 elevation.
与单磷酸酯和双磷酸酯的作用相比,植物组织中游离景天庚酮糖的存在仍然是一个推测的问题。本研究旨在确定景天庚酮糖在植物体内的形成途径及其生理重要性。通过升高 CO2 和蔗糖诱导实验,研究了景天酸代谢(CAM)植物长寿花和落地生根中的景天庚酮糖代谢。实验证据表明,景天庚酮糖是由氧化戊糖磷酸途径中间产物景天庚酮糖-7-磷酸通过景天庚酮糖-7-磷酸磷酸酶产生的。该途径的碳通量受三碳磷酸水平升高(升高的 CO2、受损的汇可用性以及源叶的蔗糖孵育)刺激,并受 ADP 和无机磷酸(Pi)抑制。游离景天庚酮糖的积累被提出作为一种通过在升高的 CO2 或受损的汇容量下作为替代碳源来维持 C 和 P 平衡的机制,以避免蔗糖积累、无机磷酸耗尽和光合作用抑制。尚需确定这种避免适应的机制是否仅限于 CAM 植物,CAM 植物可能特别容易受到 Pi 失衡的影响,或者一些 C3 和 C4 植物是否也具有诱导和加速景天庚酮糖合成的遗传能力,以应对 CO2 升高。