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生态学杂志 ›› 2026, Vol. 45 ›› Issue (7): 2113-2120.doi: 10.13292/j.1000-4890.202607.031

• ·矿区生态过程与生态修复专栏· (专栏组织专家: 伍松林、王少锋、王美娥、刘允佳) • 上一篇    下一篇

典型重金属胁迫对海洋硅藻三角褐指藻光合作用与生长的影响

陆海岳1,刘翔1,席一梅2*,王鑫杰1,王少锋1,曾祥峰2   

  1. 1大连理工大学环境学院, 辽宁大连 116024; 2中国科学院沈阳应用生态研究所, 沈阳 110016)

  • 出版日期:2026-07-10 发布日期:2026-07-07

Impact of typical heavy metal stress on photosynthesis and growth of marine diatom Phaeodactylum tricornutum.

LU Haiyue1, LIU Xiang1, XI Yimei2*, WANG Xinjie1, WANG Shaofeng1, ZENG Xiangfeng2   

  1. (1Environment College, Dalian University of Technology, Dalian 116024, Liaoning, China; 2Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang 110016, China).

  • Online:2026-07-10 Published:2026-07-07

摘要: 重金属污染对海洋初级生产者,尤其是海洋微藻生长与光合作用过程的影响机制尚不清楚。本研究以典型海洋硅藻——三角褐指藻(Phaeodactylum tricornutum)为对象,采用室内模拟实验,设置Cd2+、Sb3+、Ni2+、Cr6+重金属胁迫,含量分别为1.16、11.6、116 μmol·L-1,通过藻密度测定筛选出能明确表征重金属差异化生物效应的中浓度(11.6 μmol·L-1),后续测定该浓度下三角褐指藻的叶绿素荧光参数、叶绿素含量、SOD活性及能量代谢,分析Cd、Ni、Sb和Cr重金属对其在三角褐指藻体内的生物量积累和光合作用参数的影响。结果表明,三角褐指藻具有较强的抗重金属胁迫能力,藻密度在各重金属处理下变化不显著。Cd2+、Ni2+、Sb3+处理组中,藻细胞的最大电子传递速率(ETRmax)降低但初始量子产率(α)提高,最终维持了叶绿素荧光参数(Fv/Fm)的稳定。不同重金属对三角褐指藻的色素合成及光合作用过程产生了不同程度的抑制,同时显著诱导超氧化物歧化酶(SOD)活性增强,以缓解氧化应激。尽管三角褐指藻具备多重应激响应机制,其光合能力仍受到抑制,且不同重金属在胞内作用路径存在显著差异:Cd2+可破坏光合蛋白;Ni2+可替代光合色素中的Fe2+;Sb3+被酶氧化后外排;Cr6+先被光还原后作用于蛋白。本研究揭示了典型重金属对海洋初级生产者差异性的生理调控机制,为评估人类活动所引发的重金属污染对海洋初级生产力的潜在生态风险提供了理论支持和实验依据。


关键词: 重金属污染, 三角褐指藻, 光合参数, 生长

Abstract: The mechanisms by which heavy metal pollution impacts marine primary producers, particularly microalgal growth and photosynthesis, remain poorly understood. We investigated the effects of heavy metals (Cd, Ni, Sb, and Cr) on the marine diatom Phaeodactylum tricornutum using a controlled laboratory experiment. We evaluated algal density, chlorophyll content, fluorescence parameters, superoxide dismutase (SOD) activity, and energy metabolism under three concentrations of Cd2+, Sb3+, Ni2+, Cr6+ (1.16, 11.6, and 116 μmol·L). The results showed that P. tricornutum exhibited strong resilience to heavy metal stress, with algal density remaining stable across all treatments. Under Cd2+, Ni2+, and Sb3+ stress, the maximum electron transport rate (ETRmax) of algal cells decreased, while the initial quantum yield (α) increased, ultimately maintaining the stability of the chlorophyll fluorescence parameter (Fv/Fm). Meanwhile, heavy metals variably inhibited pigment synthesis and photosynthesis while significantly elevating SOD activity to mitigate oxidative stress. Despite these adaptive responses, photosynthetic efficiency remained consistently suppressed. Each heavy metal induced distinct intracellular effects. Cd2+ disrupted photosynthetic proteins. Ni2+ replaced Fe2+ in photosynthetic pigments. Sb3+ was enzymatically oxidized and extruded. Cr6+ was photoreduced before acting on proteins. These findings clarify the diverse physiological responses of marine primary producers to heavy metal stress, providing essential theoretical and experimental insights for assessing the ecological risks of heavy metal pollution on primary productivity in marine.


Key words: heavy metal pollution, Phaeodactylum tricornutum, photosynthetic parameter, growth