Littlejohn R O, Ku M S
Department of Botany, Washington State University, Pullman, Washington 99164.
Plant Physiol. 1984 Apr;74(4):1050-4. doi: 10.1104/pp.74.4.1050.
The nature and sequence of metabolic events during phase II (early morning) Crassulacean acid metabolism in Opuntia erinacea var columbiana (Griffiths) L. Benson were characterized. Gas exchange measurements under 2 and 21% O(2) revealed increased O(2) inhibition of CO(2) fixation with progression of phase II. Malate and titratable acidity patterns indicated continued synthesis of C(4) acids for at least 30 minutes into the light period. Potential activities of phosphoenolpyruvate carboxylase (PEPC) and NADP-malic enzyme exhibited little change during phase II, while light activation of NADP-malate dehydrogenase, pyruvate, orthophosphate dikinase, and ribulose-1,5-bisphosphate carboxylase was apparent. Short-term (14)CO(2) fixation experiments showed that the per cent of (14)C incorporated into C(4) acids decreased while incorporation into other metabolites increased with time. PEPC exhibited increased sensitivity to 2 millimolar malate, and the K(i)(malate) for PEPC decreased markedly with time. Sensitivity of PEPC to malate inhibition was considerably greater at pH 7.5 than at 8.0. The results indicate that decarboxylation and synthesis of malate occur simultaneously during the early morning period, and that phase II acid metabolism is not limited by CO(2) diffusion through stomata. With progression of phase II, CO(2) fixation by PEPC decreases while fixation by ribulose-1,5-bisphosphate carboxylase increases.
对哥伦比亚刺梨(Griffiths)L. Benson在第二阶段(清晨)景天酸代谢过程中的代谢事件性质和顺序进行了表征。在2%和21%氧气条件下的气体交换测量显示,随着第二阶段的推进,氧气对二氧化碳固定的抑制作用增强。苹果酸和可滴定酸度模式表明,在光照期至少30分钟内,C4酸持续合成。磷酸烯醇式丙酮酸羧化酶(PEPC)和NADP - 苹果酸酶的潜在活性在第二阶段变化不大,而NADP - 苹果酸脱氢酶、丙酮酸、磷酸二激酶和核酮糖 - 1,5 - 二磷酸羧化酶的光激活则很明显。短期(14)CO2固定实验表明,随着时间的推移,掺入C4酸中的(14)C百分比下降,而掺入其他代谢物中的(14)C增加。PEPC对2毫摩尔苹果酸的敏感性增加,并且PEPC的K(i)(苹果酸)随时间显著下降。PEPC对苹果酸抑制的敏感性在pH 7.5时比在pH 8.0时大得多。结果表明,在清晨期间,苹果酸的脱羧和合成同时发生,并且第二阶段的酸代谢不受二氧化碳通过气孔扩散的限制。随着第二阶段的推进,PEPC固定二氧化碳的能力下降,而核酮糖 - 1,5 - 二磷酸羧化酶固定二氧化碳的能力增加。