中国稻米 ›› 2026, Vol. 32 ›› Issue (5): 22-29.DOI: 10.3969/j.issn.1006-8082.2026.05.005

• 专论与研究 • 上一篇    下一篇

纳米碳对水稻根际镉形态及微生物群落结构的影响

王航风1,2(), 朱春权2, 徐青山2, 孔亚丽2, 李尚攀2, 迟春欣2, 朱练峰2, 曹小闯2, 田文昊2, 李巧玲2, 李敬王2, 张均华2, 邵继锋1,*()   

  1. 1 浙江农林大学杭州 311300
    2 中国水稻研究所/水稻生物育种全国重点实验室杭州 310006
  • 收稿日期:2025-10-30 出版日期:2026-09-20 发布日期:2026-09-04
  • 通讯作者: * jfshao@zafu.cn
  • 作者简介:

    第一作者:wanghangfeng360@163.com

  • 基金资助:
    国家重点研发计划项目(2023YFD1902905);浙江省“尖兵”研发计划重大专项(2024C02001-7)

Effects of Nano Carbon on Cadmium Morphology and Microbial Community Structure in Rice Rhizosphere

WANG Hangfeng1,2(), ZHU Chunquan2, XU Qingshan2, KONG Yali2, LI Shangpan2, CHI Chunxin2, ZHU Lianfeng2, CAO Xiaochuang2, TIAN Wenhao2, LI Qiaoling2, LI Jingwang2, ZHANG Junhua2, SHAO Jifeng1,*()   

  1. 1 Zhejiang A&F University, Hangzhou 311300, China
    2 China National Rice Research Institute/National Key Laboratory of Rice Biological and Breeding, Hangzhou 310006, China

摘要:

为探究纳米碳影响水稻镉(Cd)吸收及根际土壤微生物群落结构的机制,以水稻品种日本晴为供试材料,设置6个盆栽处理,分别为对照(CK)、羧基化单壁碳纳米管(TSW)、羧基化多壁碳纳米管(TMW)、镉处理(TCd)、镉+羧基化单壁碳纳米管(TCd+SW)、镉+羧基化多壁碳纳米管(TCd+MW)。测定水稻体内Cd含量、根际土壤不同形态Cd含量,以及根际土壤细菌、真菌群落结构。结果表明,与TCd处理相比,TCd+SW和TCd+MW处理显著增加水稻体内Cd积累量,其中TCd+SW处理使根、茎、叶Cd含量分别增加114.19%、65.84%、195.04%,TCd+MW处理则分别增加231.46%、205.59%、509.17%。根际土壤Cd形态分析显示,TCd+SW处理可交换态Cd含量较TCd处理提高16.80%;TCd+MW处理总Cd和可交换态Cd含量较TCd处理分别提高9.63%和45.73%。微生物群落分析表明,TCd处理与CK间土壤细菌α多样性无显著差异,而TCd处理显著提升真菌α多样性。与TCd处理相比,TCd+MW处理显著降低土壤细菌和真菌α多样性,及促生菌假单胞菌丰度,同时增加与Cd活化相关的放线菌门及重金属耐受真菌子囊菌门丰度;TCd+SW处理仅显著降低细菌α多样性,且降低黏球菌门和蓝藻菌丰度。研究发现,土壤可交换态Cd是影响根际土壤微生物群落结构变化的主要因素。综上,羧基化多壁碳纳米管可通过提高根际土壤可交换态Cd含量,促进水稻对Cd的吸收积累,同时改变根际土壤微生物群落结构,使群落结构向加重Cd毒害的方向演变;羧基化单壁碳纳米管对水稻Cd吸收及微生物群落结构的影响相对较弱。

关键词: 纳米碳, 镉, 水稻根际土, 细菌, 真菌

Abstract:

To investigate the mechanism by which nanocarbon affects cadmium uptake in rice and the structure of rhizosphere soil microbial communities, the rice cultivar ‘Nipponbare’ was used as the test material. Six pot treatments were established: control (CK), carboxylated single-walled carbon nanotubes (TSW), carboxylated multi-walled carbon nanotubes (TMW), cadmium treatment (TCd), cadmium combined with carboxylated single-walled carbon nanotubes (TCd+SW), and cadmium combined with carboxylated multi-walled carbon nanotubes (TCd+MW). The cadmium content in rice tissues, the concentrations of different cadmium fractions in rhizosphere soil, and the structures of bacterial and fungal communities in the rhizosphere soil were determined. The results showed that compared with the TCd treatment, both the TCd+SW and TCd+MW treatments significantly increased cadmium accumulation in rice. Specifically, the TCd+SW treatment increased cadmium contents in roots, stems, and leaves by 114.19%, 65.84%, and 195.04%, respectively; the TCd+MW treatment increased these values by 231.46%, 205.59%, and 509.17%, respectively. Analysis of cadmium fractions in rhizosphere soil revealed that the exchangeable cadmium content under the TCd+SW treatment was 16.80% higher than that under the TCd treatment. Under the TCd+MW treatment, total cadmium and exchangeable cadmium contents were increased by 9.63% and 45.73%, respectively, compared with the TCd treatment. Microbial community analysis indicated no significant difference in soil bacterial α-diversity between the TCd treatment and CK, whereas the TCd treatment significantly enhanced fungal α-diversity. Compared with the TCd treatment, the TCd+MW treatment significantly reduced both bacterial and fungal α-diversity, significantly decreased the abundance of the plant-growth-promoting bacterium Pseudomonas, and concurrently increased the abundance of the cadmium-activating phylum Actinobacteria and the heavy-metal-tolerant fungal phylum Ascomycota. The TCd+SW treatment only significantly reduced bacterial α-diversity and decreased the abundances of Myxococcota and Cyanobacteria. The study found that soil exchangeable cadmium was the primary factor driving changes in the rhizosphere soil microbial community structure. In summary, carboxylated multi-walled carbon nanotubes can promote cadmium uptake and accumulation in rice by increasing the exchangeable cadmium content in rhizosphere soil, while also altering the rhizosphere soil microbial community structure toward a direction that exacerbates cadmium toxicity. In contrast, carboxylated single-walled carbon nanotubes exert relatively weaker effects on cadmium uptake in rice and the structure of the rhizosphere microbial community.

Key words: nano carbon, cadmium, rice rhizosphere soil, bacteria, fungus

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