78. Shao J, Peng L, Luo S, Yu G, Gu J-d, Lin S, Li R (2013) First report on the allelopathic effect
of Tychonema bourrellyi (Cyanobacteria) against Microcystis aeruginosa (Cyanobacteria).
J Appl Phycol 25:1567–1573
79. Volk R-B (2005) Screening of microalgal culture media for the presence of algicidal compounds and isolation and identification of two bioactive metabolites, excreted by the
cyanobacteria Nostoc insulare and Nodularia harveyana. J Appl Phycol 17:339–347
80. Gromov BV, Vepritskiy AA, Titova NN, Mamkayeva KA, Alexandrova OV (1991) Production of the antibiotic cyanobacterin LU-1 by Nostoc linckia CALU 892 (cyanobacterium). J
Appl Phycol 3:55–59
81. Song H, Lavoie M, Fan XJ, Tan HN, Liu GF, Xu PF, Fu ZW, Paerl HW, Qian HF (2017)
Allelopathic interactions of linoleic acid and nitric oxide increase the competitive ability of
Microcystis aeruginosa. ISME J 11:1865–1876
82. Jaja-Chimedza A, Gantar M, Mayer GD, Gibbs PDL, Berry JP (2012) Effects of
cyanobacterial lipopolysaccharides from microcystis on glutathione-based detoxification pathways in the zebrafish (Danio rerio) embryo. Toxins 4:390–404
83. Jaja-Chimedza A, Saez C, Sanchez K, Gantar M, Berry JP (2015) Identification of teratogenic
polymethoxy-1-alkenes from Cylindrospermopsis raciborskii, and taxonomically diverse
freshwater cyanobacteria and green algae. Harmful Algae 49:156–161
84. Gross EM, Wolk CP, Jüttner F (1991) Fischerellin, a new allelochemical from the freshwater
cyanobacterium Fischerella muscicola. J Phycol 27:686–692
85. Ishida K, Murakami M (2000) Kasumigamide, an antialgal peptide from the cyanobacterium
Microcystis aeruginosa. J Org Chem 65:5898–5900
86. An T, Kumar TKS, Wang M, Liu L, Lay JO Jr, Liyanage R, Berry J, Gantar M, Marks V,
Gawley RE, Rein KS (2007) Structures of pahayokolides A and B, cyclic peptides from
a Lyngbya sp. J Nat Prod 70:730–735
87. Vestola J, Shishido TK, Jokela J, Fewer DP, Aitio O, Permi P, Wahlsten M, Wang H,
Rouhiainen L, Sivonen K (2014) Hassallidins, antifungal glycolipopeptides, are widespread
among cyanobacteria and are the end-product of a nonribosomal pathway. Proc Natl Acad Sci
111:E1909–E1917
88. Adiv S, Ahronov-Nadborny R, Carmeli S (2012) New aeruginazoles, a group of thiazolecontaining cyclic peptides from Microcystis aeruginosa blooms. Tetrahedron
68:1376–1383
89. Leikoski N, Fewer DP, Jokela J, Alakoski P, Wahlsten M, Sivonen K (2012) Analysis of an
inactive cyanobactin biosynthetic gene cluster leads to discovery of new natural products from
strains of the genus Microcystis. PLoS One 7:e43002
90. Banker R, Carmeli S (1999) Inhibitors of serine proteases from a waterbloom of the cyanobacterium Microcystis sp. Tetrahedron 55:10835–10844
91. Jüttner F, Todorova AK, Walch N, von Philipsborn W (2001) Nostocyclamide M: a
cyanobacterial cyclic peptide with allelopathic activity from Nostoc 31. Phytochemistry
57:613–619
92. Portmann C, Blom JF, Gademann K, Jüttner F (2008) Aerucyclamides A and B: isolation and
synthesis of toxic ribosomal heterocyclic peptides from the cyanobacterium Microcystis
aeruginosa PCC 7806. J Nat Prod 71:1193–1196
93. Pérez Gutiérrez RM, Martínez Flores A, Vargas Solís R, Carmona Jimenez J (2008) Two new
antibacterial norabietane diterpenoids from cyanobacteria, Microcoleous lacustris. J Nat Med
62:328–331
94. Höckelmann C, Becher PG, von Reuss SH, Jüttner F (2009) Sesquiterpenes of the geosminproducing cyanobacterium Calothrix PCC 7507 and their toxicity to invertebrates. Zeitschrift
fur Naturforschung. C. J Biosci 64:49–55
95. Zhang K, Lin TF, Zhang T, Li C, Gao N (2013) Characterization of typical taste and odor
compounds formed by Microcystis aeruginosa. J Environ Sci 25:1539–1548
96. Walsh K, Jones GJ, Dunstan RH (1998) Effect of high irradiance and iron on volatile odour
compounds in the cyanobacterium Microcystis aeruginosa. Phytochemistry 49:1227–1239
342
Y. Pei et al.
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