Hayes PK,Walsby AE. An investigation into the recycling of gas vesicle protein derived from collapsed gas vesicles. Journal of General Microbiology,1984,130: 1591-1596.
[2]
Takamura N,Yasuno M,Sugahara K. Overwintering of Microcystis aeruginosa Kütz. in a shallow lake. Journal of Plankton Research,1984,6(6): 1019-1029.
[3]
Harada K. Recent advances of toxic cyanobacteria research. Journal of Health Science,1999,45(3): 150-165.
[4]
Matsunaga H,Harada KI,Senma M et al. Possible cause of unnatural mass death of wild birds in a pond in Nishinomiya, Japan: Sudden appearance of toxic cyanobacteria. Natural Toxins,1999,7(2): 81-85.
[5]
Falconer IR,Toxic cyanobacterial bloom problems in Australian waters: Risks and impacts on human health. Phycologia, 2001,40(3): 228-233.
[6]
Oliver RL,Ganf GG. Freshwater blooms. The ecology of cyanobacteria. Netherlands: Springer,2000: 149-194.
[7]
Bonnet MP,Poulin M. Numerical modeling of the planktonic succession in a nutrient-rich reservoir: environmental and physiological factors leading to Microcystis aeruginosa dominance. Ecological Model,2002,156: 93-112.
Justin DB,Geogre GG. Variations in the buoyancy response of Microcystis aeruginosa to nitrogen,phosphorus and light. Journal of Plankton Research,2001,23(12): 1399-1411.
[10]
Cheng HM,Qiu BS. Cyanobacterial gas vesicles and their regulation on the vertical distribution of cyanobacteria in water body. Plant Physiology Communications,2006,42(5): 974-980.
[11]
Walsby AE. Homeostasis in buoyancy regulation by planktonic cyanobacteria. FEMS Symposium,1988,44: 99-116.
[12]
Walsby AE. Gas vesicles. Microbiology Reviews,1994,58: 94-144.
[13]
Yamamoto Y,Shiah FK,Chen YL. Importance of large colony formation in bloom-forming cyanobacteria to dominate in eutrophic ponds. Cambridge: Cambridge University Press,2011.
[14]
Zhao SC,Xiang GJ,Bo Y et al. Buoyancy regulation of Microcystis flos-aquae during phosphorus-limited and nitrogen-limited growth. Journal of Plankton Research,2007,29(9): 739-745.