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水深对铜藻光合作用、营养组成和氮磷吸收的影响

孟沛艺 房景辉 王强 汪文俊

孟沛艺,房景辉,王强,等. 水深对铜藻光合作用、营养组成和氮磷吸收的影响[J]. 海洋学报,2024,46(x):1–10
引用本文: 孟沛艺,房景辉,王强,等. 水深对铜藻光合作用、营养组成和氮磷吸收的影响[J]. 海洋学报,2024,46(x):1–10
Meng Peiyi,Fang Jinghui,Wang Qiang, et al. Effects of water depth on photosynthesis, nutrient composition, and nutrition, and nitrogen and phosphorus uptake of Sargassum horneri[J]. Haiyang Xuebao,2024, 46(x):1–10
Citation: Meng Peiyi,Fang Jinghui,Wang Qiang, et al. Effects of water depth on photosynthesis, nutrient composition, and nutrition, and nitrogen and phosphorus uptake of Sargassum horneri[J]. Haiyang Xuebao,2024, 46(x):1–10

水深对铜藻光合作用、营养组成和氮磷吸收的影响

基金项目: 国家重点研发计划课题(2023YFD2401101);国家藻类产业技术体系(CARS-50);泰山学者工程。
详细信息
    作者简介:

    孟沛艺(2001—),女,河南洛阳人,硕士研究生,研究方向为水产养殖生态学。E-mail:1206234682@qq.com

    通讯作者:

    房景辉,男,研究员,研究方向为水产养殖生态学。E-mail:hui861@163.com

Effects of water depth on photosynthesis, nutrient composition, and nutrition, and nitrogen and phosphorus uptake of Sargassum horneri

  • 摘要: 铜藻(Sargassum horneri)具有较好的经济性状和价值,其养殖逐渐受到人们的重视。但目前对于其适宜养殖水深尚不清楚,并且对处于不同养殖水深铜藻的生理特征和生态功能也不明确。根据不同水深的光照强度,比较了不同水深(0.5 m和2 m)铜藻的初级生产力、营养盐吸收能力以及藻体营养组成。结果显示,不同水深的光照强度差异显著(P<0.05),水深引起的光照强度差异与铜藻的初级生产力显著相关。生长在水深0.5 m处(上层)铜藻的总生产力显著高于水深2 m处(下层)的铜藻(P<0.05),上层铜藻表现出更高的初级生产力和固碳能力。光照条件下,上层铜藻对${{\rm {NH}}_4^+} $${{\rm {PO}}_4^{3-}} $的吸收效果显著优于下层铜藻(P<0.05),在净化富营养化水体,调控水域生态平衡方面有很好的潜力;但上层铜藻对${{\rm {NO}}_3^-} $${{\rm {NO}}_2^-} $的吸收量却显著低于下层铜藻(P>0.05),即说明铜藻会出现一定的强光抑制现象,影响铜藻对硝态氮和亚硝态氮的吸收。不同水深铜藻的水分含量在71%~75%之间,灰分含量在20%~23%之间,总脂质含量在6%~8%之间,粗蛋白含量在8%~10%之间,两个水深处理组间的营养组成差别不大(P>0.05)。研究表明,适当提高养殖水层,铜藻可以达到更高的生产力和营养盐吸收能力,而不同水层铜藻的营养组成也会保持相对稳定。文章结果对自然海区人工养殖铜藻的技术研发以及海区生态环境保护具有重要意义。
  • 图  1  0.5 m和2 m水深铜藻呼吸量、净生产力和总生产力

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  1  Respiration、Net primary productivity and Gross primary productivity of S.horneri at 0.5 m and 2 m depth

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    图  2  上层和下层铜藻光照12 h和黑暗12 h对${{\rm {PO}}_4^{3-}} $的吸收量

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  2  Uptake of ${{\rm {PO}}_4^{3-}} $ by S.horneri at upper and lower after 12 h of light and 12 h of darkness

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    图  3  上层和下层铜藻光照12 h和黑暗12 h对${{\rm {NH}}_4^+} $的吸收量

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  3  Uptake of ${{\rm {NH}}_4^+} $ by S.horneri at upper and lower after 12 h of light and 12 h of darkness

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    图  4  上层和下层铜藻光照12 h和黑暗12 h对$ {{\rm {NO}}_3^-} $的吸收量

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  4  Uptake of $ {{\rm {NO}}_3^-} $ by S.horneri at upper and lower after 12 h of light and 12 h of darkness

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    图  5  上层和下层铜藻光照12 h和黑暗12 h对${{\rm {NO}}_2^-} $的吸收量

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  5  Uptake of ${{\rm {NO}}_2^-} $ by S.horneri at upper and lower after 12 h of light and 12 h of darkness

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    图  6  上层和下层铜藻营养成分积累情况

    注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻

    Fig.  6  Nutrient accumulation in S.horneri at upper and lower

    Note: The U and L groups in the figure are the two treatment groups, the S.horneri at 0.5 m and 2 m water depth, respectively.

    表  1  现场不同水深的环境因子(Mean±SD)

    Tab.  1  Environmental factors at different water depths in the field

    组别
    Treatments
    温度(℃)
    Temperature
    溶解氧(mg·L−1)
    Dissolved oxygen
    盐度(‰)
    Salinity
    pH值
    pH
    U Group 26.16±0.09 6.93±0.07 30.80±0.01 7.98±0.03
    L Group 25.62±0.13 6.66±0.12 30.16±0.13 7.87±0.05
      注:图中的U group、L group是两个处理组,分别为处于0.5 m、2 m水深的铜藻
    下载: 导出CSV
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  • 收稿日期:  2024-07-03
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