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光照通过增加细胞对铜(II)的还原促进海洋硅藻在铜限制条件下的生长——铜吸收的一个速率决定步骤。

Light Stimulates Copper-Limited Growth of an Oceanic Diatom by Increasing Cellular Copper(II) Reduction─A Rate-Determining Step in Copper Uptake.

作者信息

Kong Liangliang, Price Neil M

机构信息

Department of Biology, McGill University, Montréal, Québec H3A 1B1, Canada.

College of Marine Life Science, Ocean University of China, Qingdao 266001, Shandong, China.

出版信息

Environ Sci Technol. 2022 Jun 21;56(12):9103-9111. doi: 10.1021/acs.est.2c01479. Epub 2022 May 13.

DOI:10.1021/acs.est.2c01479
PMID:35549243
Abstract

Uptake of Cu by requires that Cu(II) is reduced to Cu(I) prior to transport across the cell membrane. The reduction step is mediated biochemically by cellular reductases active with a broad range of Cu chemical species. Here, we report on the cellular Cu(II) reduction and Cu(I) uptake of a diatom under saturating and subsaturating irradiance. An increase in growth irradiance, from 50 to 400 μmol photons m s, increased the rate of extracellular Cu(II) reduction and steady-state Cu uptake. Under these conditions, Cu-limited cells acquired Cu more efficiently and maintained faster rates of growth than Cu-limited cells in low light. Pseudo-first-order reaction rate constants were about 70-fold faster for Cu(I) uptake than for Cu(II) reduction so that reduction was the rate-determining step in Cu acquisition. Accordingly, steady-state Cu uptake rates predicted from the reduction rate constants agreed well with measured rates of Cu uptake obtained from cultures growing at low nanomolar Cu concentrations. Transcript abundance of putative Cu(II) reductases followed a similar pattern to cupric reductase activity, increasing in Cu-limited cells and with increasing growth irradiance. The results are significant in showing Cu(II) reduction as the rate-determining step in Cu uptake: they suggest that biologically mediated Cu(II) reduction may be an important part of the Cu cycle in surface waters of the open sea.

摘要

对铜的摄取要求铜(II)在跨细胞膜运输之前被还原为铜(I)。还原步骤由对多种铜化学物种有活性的细胞还原酶进行生化介导。在此,我们报告了在饱和辐照度和亚饱和辐照度下一种硅藻对细胞内铜(II)的还原及铜(I)的摄取情况。生长辐照度从50微摩尔光子每平方米每秒增加到400微摩尔光子每平方米每秒,提高了细胞外铜(II)的还原速率和铜的稳态摄取量。在这些条件下,与低光照下铜受限的细胞相比,铜受限的细胞能更有效地获取铜并维持更快的生长速率。铜(I)摄取的准一级反应速率常数比对铜(II)还原的速率常数快约70倍,因此还原是铜获取过程中的速率决定步骤。相应地,根据还原速率常数预测的铜稳态摄取速率与在低纳摩尔铜浓度下生长的培养物中测得的铜摄取速率吻合良好。假定的铜(II)还原酶的转录本丰度与铜还原酶活性遵循相似模式,在铜受限的细胞中以及随着生长辐照度的增加而增加。这些结果对于表明铜(II)还原是铜摄取的速率决定步骤具有重要意义:它们表明生物介导的铜(II)还原可能是公海表层水体中铜循环的重要组成部分。

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