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Effect of Cu Stress on the Invertase Activity and Root Growth in Two Populations of Rumex dentatus L. with Different Cu Tolerance

机译:铜胁迫对耐铜性不同的两个朗美象种群转化酶活性和根系生长的影响

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There has been no study on key enzymes in sucrose cleavage in metallophyte plants so far, which may be crucial for the plants' root growth and heavy metal tolerance maintenance. Acid invertases are rate-limiting enzymes in sucrose metabolism. Here, we tested the hypothesis that the roots of copper-tolerant plants should manifest a higher activity of acid invertases than nontolerant plants both for supporting growth and for their maintaining tolerance under Cu stress. Two populations of Rumex dentatus L, one from an ancient waste heap at a Cu mine (Cu-tolerant population), and the other from a nonconta-minated site (Cu nontolerant population), were used in the experiments. The seedlings of Rumex dentatus L were exposed to 0, 10, and 40 μM CuCl_2 for 14 days. Cu exposure had a stronger inhibition on root growth and thus resulted in a lower root/shoot ratio in the plants of nontolerant population compared with the Cu-tolerant population. Cu exposure showed a stronger inhibition of acid invertase activity of Cu nontolerant plants than Cu tolerant plants, whereas neutral/alkaline invertase was insensitive to Cu. A positive correlation between the activity of acid invertases and the root growth and root/shoot ratio was observed. The results suggested that the higher activities in acid invertases of Cu-tolerant population might at least partly associate with the plants' Cu tolerance, and their higher activities in acid invertases in turn played an role in maintenance of the Cu tolerance by supplying carbon and energy for tolerance mechanisms.
机译:迄今为止,尚未对金属植物的蔗糖裂解过程中的关键酶进行研究,这对植物根系的生长和重金属​​的耐受性维持至关重要。酸性转化酶是蔗糖代谢中的限速酶。在这里,我们测试了以下假设:耐铜植物的根应表现出比不耐植物更高的酸转化酶活性,以支持铜的生长并在铜胁迫下保持耐性。在实验中使用了两个种群的Rumex dentatus L,一个种群来自一个铜矿山的古老废物堆(耐铜种群),另一个来自一个未被污染的地点(非铜耐受种群)。将Rumex dentatus L的幼苗暴露于0、10和40μMCuCl_2中14天。铜暴露对根系的生长具有更强的抑制作用,因此与铜耐性种群相比,非耐性种群的植株的根/茎比降低。铜暴露显示出对铜不耐性植物的酸转化酶活性的抑制作用强于铜耐性植物,而中性/碱性转化酶对铜不敏感。观察到酸性转化酶的活性与根的生长和根/根比之间呈正相关。结果表明,耐铜种群的耐酸转化酶的较高活性可能至少部分与植物的耐铜性有关,而其耐酸性转化酶的较高活性又通过提供碳和能量来维持铜的耐性。容忍机制。

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