Page 132 - 《渔业研究》2026年第1期
P. 132

第 1 期               李瑞帆等: 大型海藻碳汇:固碳机理、评估方法与环境因子影响                                      129

                   Marine Science Bulletin, 2001, 20(5): 83 − 90.   Sea[J]. Scientific Reports, 2018, 8(1): 17437.
              [29]   Gao K S, McKinley K R. Use of macroalgae for marine  [40]   Giordano M, Beardall J, Raven J A. CO 2  concentrating
                   biomass production and CO 2  remediation: a review[J].  mechanism s in algae: mechanisms, environmental mod-
                   Journal of Applied Phycology, 1994, 6(1): 45 − 60.  ulation, and evolution[J]. Annual Review of Plant Bio-
              [30]   Larsson C, Axelsson L. Bicarbonate uptake and utiliza-  logy, 2005, 56(1): 99 − 131.
                   tion in marine macroalgae[J]. European Journal of Phy-  [41]   欧官用,王鑫杰,杨安强,等. 大型海藻碳汇能力的种
                   cology, 1999, 34(1): 79 − 86.                    间差异   [J]. 浙江农业科学,2017,58(8) :1436 −
              [31]   Raven J A. Inorganic carbon acquisition by marine auto-  1439,1443.
                   trophs[J].  Advances  in  Botanical  Research,  1997,  27:  Ou G Y, Wang X J, Yang A Q, et al. Interspecific differ-
                   85 − 209.                                        ences in carbon sequestration capacity of macroalgae[J].
              [32]   Beer  S,  Israel  A.  Photosynthesis  of  Ulva  fasciata.  Ⅳ.  Journal of Zhejiang Agricultural Sciences, 2017, 58(8):
                   pH, carbonic  anhydrase  and  inorganic  carbon   conver-  1436 − 1439, 1443.
                   sions  in  the  unstirred  layer[J]. Plant,  Cell  &   Environ-  [42]   Hansell D A. Recalcitrant dissolved organic carbon frac-
                   ment, 1990, 13(6): 555 − 560.                    tions[J]. Annual Review of Marine Science, 2013, 5(1):
              [33]   Heureux A M C, Young J N, Whitney S M, et al. The  421 − 445.
                   role  of  Rubisco  kinetics  and  pyrenoid  morphology  in  [43]   Paine E R, Schmid M, Boyd P W, et al. Rate and fate of
                   shaping the CCM of haptophyte microalgae[J]. Journal  dissolved organic carbon release by seaweeds: a missing
                   of Experimental Botany, 2017, 68(14): 3959 − 3969.  link  in  the  coastal  ocean  carbon  cycle[J].  Journal  of
              [34]   Raven  J  A,  Beardall  J,  Sánchez-Baracaldo  P.  The  pos-  Phycology, 2021, 57(5): 1375 − 1391.
                   sible evolution and future of CO 2 -concentrating mechan-  [44]   尼志杰. 关键环境因子对海带幼苗释放可溶性有机碳
                   isms[J]. Journal of Experimental Botany, 2017, 68(14):  的影响  [D]. 上海:上海海洋大学,2022.
                   3701 − 3716.                                     Ni Z J. Effects of environmental factors on the release of
              [35]   何培民,刘媛媛,张建伟,等. 大型海藻碳汇效应研                       dissolved  organic  carbon  from  juveniles  of  Saccharina
                   究进展   [J]. 中国水产科学,2015,22(3) :588 −              japonica[D].  Shanghai:  Shanghai  Ocean  University,
                   595.                                             2022.
                   He P M, Liu Y Y, Zhang J W, et al. Research progress  [45]   李洁,江志兵,朱元励,等. 中国近海养殖贝藻类
                   on the effects of macroalgae on carbon sink[J]. Journal  “可移出碳汇量”核算及潜力评估  [J]. 应用海洋学学
                   of Fishery Sciences of China, 2015, 22(3): 588 − 595.  报,2025,44(2) :192 − 199.
              [36]   许建方. 浒苔中  C 3 和  C 4 途径关键酶的研究   [D]. 青         Li J, Jiang Z B, Zhu Y L, et al. Calculation and potential
                   岛:国家海洋局第一海洋研究所,2013.                             assessment  of  removable  carbon  sink  of  mariculture
                   Xu J F. Study on the key enzyme of C 3  and C 4  pathway  shellfish  and  macroalgae  in  China  coastal  water[J].
                   in Ulva prolifera[D]. Qingdao: First Institute of Ocean-  Journal  of  Applied  Oceanography,  2025,  44(2):  192  −
                   ography, State Oceanic Administration, 2013.     199.
              [37]   Morel F M M, Cox E H, Kraepiel A M L, et al. Acquisi-  [46]   张继红,方建光,唐启升. 中国浅海贝藻养殖对海洋
                   tion of inorganic carbon by the marine diatom Thalassio-  碳循环的贡献  [J]. 地球科学进展,2005,20(3) :
                   sira  weissflogii[J].  Functional  Plant  Biology,  2002,  359 − 365.
                   29(3): 301.                                      Zhang  J  H,  Fang  J  G,  Tang  Q  S.  The  contribution  of
              [38]   Xu J F, Fan X, Zhang X W, et al. Evidence of coexist-  shellfish and seaweed mariculture in China to the carbon
                   ence of C 3  and C 4  photosynthetic pathways in a green-  cycle  of  coastal  ecosystem[J].  Advances in  Earth   Sci-
                   tide-forming  alga,  Ulva  prolifera[J].  PLoS  One,  2012,  ence, 2005, 20(3): 359 − 365.
                   7(5): e37438.                              [47]   权伟,应苗苗,康华靖,等. 中国近海海藻养殖及碳汇
              [39]   Valiela I, Liu D Y, Lloret J, et al. Stable isotopic evid-  强度估算  [J]. 水产学报,2014,38(4) :509 − 514.
                   ence of nitrogen sources and C 4  metabolism driving the  Quan W, Ying M M, Kang H J, et al. Marine algae cul-
                   world’s  largest  macroalgal  green  tides  in  the  Yellow  ture  and  the  estimation  of  carbon  sink  capacity  in  the
   127   128   129   130   131   132   133   134   135   136   137