115. Xu RB, Hilt S, Pei Y, Yin LJ, Wang XL, Chang XX (2016) Growth phase-dependent
allelopathic effects of cyanobacterial exudates on Potamogeton crispus L. seedlings.
Hydrobiologia 767:137–149
116. Vanormelingen P, Vyverman W, De Bock D, Van der Gucht K, Meester LD (2009) Local
genetic adaptation to grazing pressure of the green alga Desmodesmus armatus in a strongly
connected pond system. Limnol Oceanogr 54:503–511
117. Eigemann F, Vanormelingen P, Hilt S (2013) Sensitivity of the green alga Pediastrum duplex
Meyen to allelochemicals is strain-specific and not related to co-occurrence with allelopathic
macrophytes. PLoS One 8:e78463
118. Chang XX, Eigemann F, Hilt S (2012) Do macrophytes support harmful cyanobacteria?
Interactions with a green alga reverse the inhibiting effects of macrophyte allelochemicals
on Microcystis aeruginosa. Harmful Algae 19:76–84
119. Chia MA, Cordeiro-Araújo MK, Lorenzi AS, do Carmo Bittencourt-Oliveira M (2017)
Cylindrospermopsin induced changes in growth, toxin production and antioxidant response
of Acutodesmus acuminatus and Microcystis aeruginosa under differing light and nitrogen
conditions. Ecotoxicol Environ Saf 142:189–199
120. Pei Y, Liu L, Hilt S, Xu R, Wang B, Li C, Chang X (2018) Root exudated algicide of
Eichhornia crassipes enhances allelopathic effects of cyanobacteria Microcystis aeruginosa
on green algae. Hydrobiologia 823:67–77
121. Lürling M, Eshetu F, Faassen EJ, Kosten S, Huszar VLM (2013) Comparison of
cyanobacterial and green algal growth rates at different temperatures. Freshw Biol 58:552–559
122. Chen Y, Qin B, Teubner K, Dokulil MT (2003) Long-term dynamics of phytoplankton
assemblages: Microcystis-domination in Lake Taihu, a large shallow lake in China. J Plankton
Res 25:445–453
123. Imai H, Chang KH, Kusaba M, Nakano S (2009) Temperature-dependent dominance of
Microcystis (Cyanophyceae) species: M. aeruginosa and M. wesenbergii. J Plankton Res
31:171–178
124. Lei L, Li C, Peng L, Han BP (2015) Competition between toxic and non-toxic Microcystis
aeruginosa and its ecological implication. Ecotoxicology 24:1411–1418
125. Antunes JT, Leao PN, Vasconcelos VM (2012) Influence of biotic and abiotic factors on the
allelopathic activity of the cyanobacterium Cylindrospermopsis raciborskii strain LEGE
99043. Microb Ecol 64:584–592
126. Nobel W, Matthijs HCP, Elert E, Mur LR (1998) Comparison of the light-limited growth of the
nitrogen-fixing cyanobacteria Anabaena and Aphanizomenon. New Phytol 138:579–587
127. Ray S, Bagchi SN (2001) Nutrients and pH regulate algicide accumulation in cultures of the
cyanobacterium Oscillatoria laetevirens. New Phytol 149:455–460
128. Shimoda Y, Arhonditsis GB (2016) Phytoplankton functional type modelling: running before
we can walk? A critical evaluation of the current state of knowledge. Ecol Model 320:29–43
344
Y. Pei et al.
allelopathic effects of cyanobacterial exudates on Potamogeton crispus L. seedlings.
Hydrobiologia 767:137–149
116. Vanormelingen P, Vyverman W, De Bock D, Van der Gucht K, Meester LD (2009) Local
genetic adaptation to grazing pressure of the green alga Desmodesmus armatus in a strongly
connected pond system. Limnol Oceanogr 54:503–511
117. Eigemann F, Vanormelingen P, Hilt S (2013) Sensitivity of the green alga Pediastrum duplex
Meyen to allelochemicals is strain-specific and not related to co-occurrence with allelopathic
macrophytes. PLoS One 8:e78463
118. Chang XX, Eigemann F, Hilt S (2012) Do macrophytes support harmful cyanobacteria?
Interactions with a green alga reverse the inhibiting effects of macrophyte allelochemicals
on Microcystis aeruginosa. Harmful Algae 19:76–84
119. Chia MA, Cordeiro-Araújo MK, Lorenzi AS, do Carmo Bittencourt-Oliveira M (2017)
Cylindrospermopsin induced changes in growth, toxin production and antioxidant response
of Acutodesmus acuminatus and Microcystis aeruginosa under differing light and nitrogen
conditions. Ecotoxicol Environ Saf 142:189–199
120. Pei Y, Liu L, Hilt S, Xu R, Wang B, Li C, Chang X (2018) Root exudated algicide of
Eichhornia crassipes enhances allelopathic effects of cyanobacteria Microcystis aeruginosa
on green algae. Hydrobiologia 823:67–77
121. Lürling M, Eshetu F, Faassen EJ, Kosten S, Huszar VLM (2013) Comparison of
cyanobacterial and green algal growth rates at different temperatures. Freshw Biol 58:552–559
122. Chen Y, Qin B, Teubner K, Dokulil MT (2003) Long-term dynamics of phytoplankton
assemblages: Microcystis-domination in Lake Taihu, a large shallow lake in China. J Plankton
Res 25:445–453
123. Imai H, Chang KH, Kusaba M, Nakano S (2009) Temperature-dependent dominance of
Microcystis (Cyanophyceae) species: M. aeruginosa and M. wesenbergii. J Plankton Res
31:171–178
124. Lei L, Li C, Peng L, Han BP (2015) Competition between toxic and non-toxic Microcystis
aeruginosa and its ecological implication. Ecotoxicology 24:1411–1418
125. Antunes JT, Leao PN, Vasconcelos VM (2012) Influence of biotic and abiotic factors on the
allelopathic activity of the cyanobacterium Cylindrospermopsis raciborskii strain LEGE
99043. Microb Ecol 64:584–592
126. Nobel W, Matthijs HCP, Elert E, Mur LR (1998) Comparison of the light-limited growth of the
nitrogen-fixing cyanobacteria Anabaena and Aphanizomenon. New Phytol 138:579–587
127. Ray S, Bagchi SN (2001) Nutrients and pH regulate algicide accumulation in cultures of the
cyanobacterium Oscillatoria laetevirens. New Phytol 149:455–460
128. Shimoda Y, Arhonditsis GB (2016) Phytoplankton functional type modelling: running before
we can walk? A critical evaluation of the current state of knowledge. Ecol Model 320:29–43
344
Y. Pei et al.
