Weise Sean E, Schrader Stephen M, Kleinbeck Kyle R, Sharkey Thomas D
Department of Botany, University of Wisconsin, Madison, Wisconsin 53726, USA.
Plant Physiol. 2006 Jul;141(3):879-86. doi: 10.1104/pp.106.081174. Epub 2006 May 12.
Transitory starch is formed in chloroplasts during the day and broken down at night. Transitory starch degradation could be regulated by light, circadian rhythms, or carbon balance. To test the role of these potential regulators, starch breakdown rates and metabolites were measured in bean (Phaseolus vulgaris) and Arabidopsis (Arabidopsis thaliana) plants. In continuous light, starch and maltose levels oscillated in a circadian manner. Under photorespiratory conditions, transitory starch breakdown occurred in the light faster than at night and glucose-6-P (G6P) was elevated. Nonaqueous fractionation showed that the increase in G6P occurred in the chloroplast. When Arabidopsis plants lacking the plastidic starch phosphorylase enzyme were placed under photorespiratory conditions, G6P levels remained constant, indicating that the increased chloroplastic G6P resulted from phosphorolytic starch degradation. Maltose was increased under photorespiratory conditions in both wild type and plants lacking starch phosphorylase, indicating that regulation of starch breakdown may occur at a point preceding the division of the hydrolytic and phosphorolytic pathways. When bean leaves were held in N2 to suppress photosynthesis and Suc synthesis without increasing photorespiration, starch breakdown did not occur and maltose and G6P levels remained constant. The redox status of the chloroplasts was found to be oxidized under conditions favoring starch degradation.
暂存淀粉在白天于叶绿体中形成,夜间分解。暂存淀粉的降解可能受光照、昼夜节律或碳平衡调控。为测试这些潜在调控因子的作用,对菜豆(Phaseolus vulgaris)和拟南芥(Arabidopsis thaliana)植株的淀粉分解速率及代谢物进行了测定。在持续光照下,淀粉和麦芽糖水平呈昼夜节律振荡。在光呼吸条件下,暂存淀粉在光照下的分解速度比夜间快,且葡萄糖-6-磷酸(G6P)升高。非水相分级分离显示,G6P的增加发生在叶绿体中。当将缺乏质体淀粉磷酸化酶的拟南芥植株置于光呼吸条件下时,G6P水平保持恒定,表明叶绿体中G6P的增加是由淀粉磷酸解降解所致。在光呼吸条件下,野生型植株和缺乏淀粉磷酸化酶的植株中的麦芽糖均增加,这表明淀粉分解的调控可能发生在水解途径和磷酸解途径分支之前的某个点。当将菜豆叶片置于氮气中以抑制光合作用和蔗糖合成而不增加光呼吸时,淀粉分解未发生,麦芽糖和G6P水平保持恒定。发现在有利于淀粉降解的条件下,叶绿体的氧化还原状态被氧化。