Page 47 - 《渔业研究》2025年第3期
P. 47

304                                  渔  业  研  究                                     第 47 卷

                   lodinium  veneficum  dinoflagellate  blooms  in  stratified  ation coupled with lateral flow dipstick for the sensitive
                   water of the East China Sea[J]. Deep Sea Research Part  detection  of  Karenia  mikimotoi[J].  Harmful  Algae,
                   Ⅱ: Topical Studies in Oceanography, 2014, 101: 237 −  2019, 84: 151 − 160.
                   243.                                       [29]   Xu M T, Zhang C Y, Liu F G, et al. Recombinase-aided
              [23]   Wang  X,  Liu  C,  Zhang  Q  C,  et  al.  A  dinoflagellate  amplification combined with lateral flow dipstick for the
                   bloom caused by multiple species of Kareniaceae in the  rapid detection of Amphidinium carterae[J]. Journal of
                   coastal waters of Fujian in June 2022 and its adverse im-  Applied Phycology, 2022, 34(1): 435 − 447.
                   pacts  on  Brachionus  plicatilis  and  Artemia  salina[J].  [30]   Kim J H, Kim J H, Park B S, et al. Development of a qP-
                   Marine Pollution Bulletin, 2023, 196: 115685.    CR  assay  for  tracking  the  ecological  niches  of  genetic
              [24]   Gu H F, Wu Y R, Lü S H, et al. Emerging harmful algal  sub-populations within Pseudo-nitzschia pungens (Bacil-
                   bloom  species  over  the  last  four  decades  in  China[J].  lariophyceae)[J]. Harmful Algae, 2017, 63: 68 − 78.
                   Harmful Algae, 2022, 111: 102059.          [31]   Garneau M È, Schnetzer A, Countway P D, et al. Exam-
              [25]   Huang H L, Zhu P, Zhou C X, et al. The development of  ination of the seasonal dynamics of the toxic dinoflagel-

                   loop-mediated  isothermal  amplification  combined  with  late  Alexandrium  catenella  at Redondo  Beach,   Califor-
                   lateral flow dipstick for detection of Karlodinium vene-  nia, by quantitative PCR[J]. Applied and Environment-
                   ficum[J]. Harmful Algae, 2017, 62: 20 − 29.      al Microbiology, 2011, 77(21): 7669 − 7680.
              [26]   Zhu P, Huang H L, Zhou C X, et al. Sensitive and rapid  [32]   Yuan J, Mi T Z, Zhen Y, et al. Development of a rapid
                   detection  of  Prymnesium  parvum  (Haptophyceae)  by  detection and quantification method of Karenia mikimo-
                   loop-mediated isothermal amplification combined with a  toi  by  real-time  quantitative  PCR[J].  Harmful  Algae,
                   lateral flow dipstick[J]. Aquaculture, 2019, 505: 199 −  2012, 17: 83 − 91.
                   205.                                       [33]   Liu F G, Zhang C Y, Wang Y Y, et al. A review of the
              [27]   Han X T, Zhao T, Yan T, et al. Rapid and sensitive detec-  current and emerging detection methods of marine harm-
                   tion of Karenia mikimotoi by loop-mediated isothermal  ful  microalgae[J].  Science  of  the  Total  Environment,
                   amplification  combined  with  a  lateral  flow  dipstick[J].  2022, 815: 152913.
                   Environmental  Science  and  Pollution  Research,  2022,  [34]   Kleinstiver  B  P,  Tsai  S  Q,  Prew  M  S,  et  al.  Genome-
                   29(17): 24696 − 24703.                           wide specificities of CRISPR-Cas Cpf1 nucleases in hu-
              [28]   Zhang C Y, Chen G F, Wang Y Y, et al. Establishment  man cells[J]. Nature Biotechnology, 2016, 34(8): 869 −
                   and application of hyperbranched rolling circle amplific-  874.
   42   43   44   45   46   47   48   49   50   51   52