欢迎访问《生态学杂志》官方网站,今天是

生态学杂志 ›› 2026, Vol. 45 ›› Issue (9): 3085-3095.doi: 10.13292/j.1000-4890.202609.031

• 研究报告 • 上一篇    下一篇

小球藻及其与农杆菌共培养体系对铜、锌的去除和响应差异

吴晓涵1,于清男1,张涛1,韦炎平1,张春华2,葛滢1*   

  1. 1南京农业大学资源与环境科学学院, 南京 210095; 2南京农业大学生命科学实验中心, 南京 210095)

  • 出版日期:2026-09-10 发布日期:2026-09-08

Differences in copper and zinc removal and responses between Chlorella vulgaris and its co-culture with Agrobacterium sp. W01p.

WU Xiaohan1, YU Qingnan1, ZHANG Tao1, WEI Yanping1, ZHANG Chunhua2, GE Ying1*   

  1. (1College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing 210095, China; 2Laboratory Centre of Life Science, Nanjing Agricultural University, Nanjing 210095, China).

  • Online:2026-09-10 Published:2026-09-08

摘要: 微藻-细菌共培养体系对Cu、Zn的去除和响应规律尚不清晰。本研究将小球藻(Chlorella vulgaris)与农杆菌(Agrobacterium sp. W01p)按2∶1比例共培养,设置单一和复合Cu(0.1、0.5 mg·L-1)、Zn(1.0、5.0 mg·L-1)处理,培养4天后测定叶绿素、干重、胞外聚合物组分、超氧化物歧化酶活性及Cu、Zn去除率,比较共培养体系与单一小球藻对Cu、Zn的去除和响应差异。结果表明,在单一Cu和Zn处理下,藻菌共培养体系的叶绿素含量达到单一小球藻体系的1.1~2.8倍;在复合处理(0.1Cu+1.0Zn、0.5Cu+1.0Zn、0.1Cu+5.0Zn)下,藻菌共培养体系的叶绿素含量较单一小球藻体系提高1.1~4.1倍。与单藻相比,藻菌共培养对Cu、Zn的去除率提高了7.4%~16.0%。Cu、Zn复合处理对小球藻及藻菌共培养体系叶绿素合成的抑制率均显著高于单一Cu、Zn处理(P<0.05)。Zn(1.0、5.0 mg·L-1)和Cu(0.1 mg·L-1)的复合处理使小球藻农杆菌共培养体系对Cu的去除率从39.3%分别提高至60.2%、68.3%;但Cu(0.1、0.5 mg·L-1)与Zn(1.0 mg·L-1)的复合处理使共培养体系对Zn的去除率从89.1%分别下降至56.1%、40.8%。农杆菌共培养显著增加了小球藻叶绿素含量,为单一小球藻的1.1~4.1倍(P<0.05),同时使胞外聚合物总量显著提高至单一小球藻的1.1~2.4倍(P<0.05)。在Cu、Zn处理下,藻菌共培养体系的超氧化物歧化酶活性较小球藻提升了18.4%~215.9%,证实藻菌可通过抗氧化酶缓解Cu、Zn胁迫。研究表明,藻菌共培养比单一小球藻具有更强的Cu、Zn耐受和去除能力,且Cu、Zn共存有利于Cu的去除,但不利于Zn的去除,胞外聚合物分泌增加、抗氧化酶活性上调以及官能团特异性结合等是增强藻菌共培养体系耐受和去除Cu、Zn能力的主要原因。


关键词: 小球藻, 农杆菌, 共培养, 藻菌互作

Abstract: The removal and response patterns of copper (Cu) and zinc (Zn) by the algal-bacterial co-culture system remain unclear. In this study, Chlorella vulgaris was co-cultured with Agrobacterium sp. W01p at a ratio of 2∶1 and exposed to single or combined Cu (0.1, 0.5 mg·L-1) and Zn (1.0, 5.0 mg·L-1) treatments for four days. Chlorophyll, dry weight, components of extracellular polymeric substances, superoxide dismutase activity, and Cu/Zn removal rates were measured to compare the differences in responses and removal of those two metals between the co-culture and the monoculture of alga. The results showed that, under the single treatment of Cu (0.1, 0.5 mg·L-1) or single Zn (1.0, 5.0 mg·L-1), the chlorophyll content in the algae-bacteria co-culture was 1.1-2.8 times that in monoculture of C. vulgaris. Under the combined Cu and Zn treatments (0.1Cu+1.0Zn, 0.5Cu+1.0Zn, 0.1Cu+5.0Zn), the chlorophyll content in the algae-bacteria co-culture was increased by 1.1-4.1 times compared with that in single C. vulgaris system. Compared with the monoculture system, the removal rate of Cu and Zn by the co-culture increased by 7.4%-16.0%. The inhibition rate of chlorophyll synthesis in Chlorella by Cu-Zn combined stress was significantly higher than that in single Cu or Zn treatments (P<0.05). The combined treatment of Zn (1.0, 5.0 mg·L-1) and Cu (0.1 mg·L-1) increased the Cu removal by the co-culture system from 39.3% to 60.2% and 68.3%, respectively. The combined treatment of Cu (0.1, 0.5 mg·L-1) and Zn (1.0 mg·L-1) decreased the Zn removal from 89.1% to 56.1% and 40.8%, respectively. Co-culture with Agrobacterium sp. W01p significantly increased the chlorophyll content of C. vulgaris to 1.1-4.1 times that of the monoculture of alga (P<0.05), and increased the total amount of extracellular polymeric substances to 1.1-2.4 times that of the single alga (P<0.05). The superoxide dismutase activity of the algal-bacterial co-culture system increased by 18.4%-215.9% compared with the alga alone under Cu and Zn treatments, confirming the stress alleviation through antioxidant enzymes. Our results indicated that the algal-bacterial co-culture system had stronger Cu and Zn tolerance and removal ability than monoculture algal system. The coexistence of Cu and Zn favored the removal of Cu but not Zn. Increased secretion of extracellular polymeric substances, up-regulation of antioxidant enzyme activities, and specific binding of functional groups may explain the enhanced capacity of the algal co-culture system to tolerate and remove Cu and Zn.


Key words: Chlorella vulgaris, Agrobacterium sp., co-culture, algae-bacteria interaction