Neuhaus H. E., Henrichs G., Scheibe R.
Pflanzenphysiologie, Fachbereich Biologie/Chemie, Universitat Osnabruck, Barbarastrasse 11, D-4500 Osnabruck, Federal Republic of Germany.
Plant Physiol. 1993 Feb;101(2):573-578. doi: 10.1104/pp.101.2.573.
Intact plastids from cauliflower (Brassica oleracea var Prince de Bretagne) buds were isolated according to the method described by Journet and Douce (E.P. Journet and R. Douce [1985] Plant Physiol 79: 458-467). Incubation of these plastids with various 14C-labeled compounds revealed that glucose-6-phosphate can act as a precursor for starch synthesis. However, significant rates (incorporation of 120 nmol glucose mg-1 protein h-1) could only be observed when both 3-phosphoglyceric acid and ATP were present as well. Starch synthesis in isolated plastids was strongly dependent upon the intactness of the organelle. The presence of a high-affinity ATP/ADP translocator with a Km for ATP of 12 [mu]M was demonstrated by uptake experiments with [14C]ATP. ADP inhibited both ATP uptake and effector-stimulated starch synthesis. Effector-stimulated glucose-6-phosphate-dependent starch synthesis was not significantly influenced by fructose-6-phosphate or 2-deoxyglucose-6-phosphate but was strongly inhibited by triose phosphate and inorganic phosphate. Starch synthesis was also inhibited by 4,4[prime]-diisothio-cyanostilbene-2,2[prime]-disulfonate, which is known to be a potent inhibitor of the chloroplast phosphate translocator. The data presented here support the view that starch biosynthesis in heterotrophic tissues is powered by increasing levels of cytosolic 3-phosphoglyceric acid and ATP when glucose-6-phosphate is available.
按照Journet和Douce(E.P. Journet和R. Douce [1985] Plant Physiol 79: 458 - 467)描述的方法,从花椰菜(Brassica oleracea var Prince de Bretagne)芽中分离出完整的质体。用各种14C标记的化合物孵育这些质体,结果表明6-磷酸葡萄糖可以作为淀粉合成的前体。然而,只有当3-磷酸甘油酸和ATP也同时存在时,才能观察到显著的速率(120 nmol葡萄糖mg-1蛋白质h-1的掺入量)。分离的质体中的淀粉合成强烈依赖于细胞器的完整性。通过用[14C]ATP进行摄取实验,证明存在一种对ATP的Km为12 μM的高亲和力ATP/ADP转运体。ADP抑制ATP摄取和效应物刺激的淀粉合成。效应物刺激的6-磷酸葡萄糖依赖性淀粉合成不受6-磷酸果糖或2-脱氧-6-磷酸葡萄糖的显著影响,但受到磷酸丙糖和无机磷酸的强烈抑制。淀粉合成也受到4,4'-二异硫氰基芪-2,2'-二磺酸盐的抑制,已知该物质是叶绿体磷酸转运体的有效抑制剂。此处提供的数据支持这样一种观点,即当有6-磷酸葡萄糖时,异养组织中的淀粉生物合成由胞质3-磷酸甘油酸和ATP水平的升高提供能量。