42. Reidsma P, Feng S, van Loon M, Luo X, Kang C, Lubbers M, Kanellopoulos A, Wolf J, van
Ittersum MK, Qu F (2012) Integrated assessment of agricultural land use policies on nutrient
pollution and sustainable development in Taihu Basin, China. Environ Sci Policy 18:66–76
43. Villa P, Lechi G, Gomarasca MA (2009) Multivariate differencing techniques for land cover
change detection: the normalized difference reflectance approach. In: Ho PG (ed) Geoscience
and remote sensing. InTech, Rijeka, pp 277–299
44. Shapiro J (1990) Current beliefs regarding dominance by blue-greens: the case for the
importance of CO 2 and pH. Verh Int Ver Limnol 24:38–54
45. Laamanen MJ, Forsstro ¨m L, Sivonen K (2002) Diversity of Aphanizomenon flos-aquae
(cyanobacterium) populations along a Baltic Sea salinity gradient. Appl Environ Microbiol
68:5296–5303
46. Sellner KG, Lacouture RV, Parrish CR (1988) Effects of increasing salinity on a cyanobacteria
bloom in the Potomac River estuary. J Plankton Res 10:49–61
47. Dokulil MT, Teubner K (2000) Cyanobacterial dominance in lakes. Hydrobiologia 438(1–3):
1–12
48. Gustavs L, Eggert A, Michalik D, Karsten U (2010) Physiological and biochemical responses
of green microalgae from different habitats to osmotic and matric stress. Protoplasma 243:
3–14
49. Zevenboom W (1982) N 2 -fixing cyanobacteria: why they do not become dominant in
shallow hypertrophic lakes. Aquat Ecol 16:289–290
50. Kosten S, Huszar VLM, Becares E, Costa LS, van Donk E, Hansson LA, Jeppesen E, Kruk C,
Lacerot G, Mazzeo N, De Meester L, Moss B, Lurling M, Noges T, Romo S, Scheffer M (2012)
Warmer climates boost cyanobacterial dominance in shallow lakes. Global Change Biol 18:
118–126
51. O’Neil JM, Davis TW, Burford MA, Gobler CJ (2012) The rise of harmful cyanobacteria
blooms: the potential roles of eutrophication and climate change. Harmful Algae 14:313–334
52. Schindler DW (1977) Evolution of phosphorus limitation in lakes. Science 195(4275):
260–262
53. Jacoby JM, Collier DC, Welch EB, Hardy FJ, Crayton M (2000) Environmental factors
associated with a toxic bloom of Microcystis aeruginosa. Can J Fish Aquat Sci 57(1):231–240
54. Oliver RL, Ganf GG (2000) Freshwater blooms. In: Potts M, Whitton BA (eds) The ecology of
cyanobacteria. Springer, Dordrecht, pp 149–194
55. van Beusekom JEE, Loebl M, Martens P (2009) Distant riverine nutrient supply and
local temperature drive the long-term phytoplankton development in a temperate coastal basin.
J Sea Res 61:26–33
56. Kutser T, Metsamaa L, Strombeck N, Vahtmae E (2006) Monitoring cyanobacterial blooms by
satellite remote sensing. Estuar Coast Shelf Sci 67:303–312
57. Latour D, Sabido O, Salencon MJ, Giraudet H (2004) Dynamics and metabolic activity of
the benthic cyanobacterium Microcystis aeruginosa in the Grangent reservoir (France).
J Plankton Res 26:719–726
58. Fay P (1988) Viability of akinetes of the planktonic cyanobacterium Anabaena circinalis.
Proc R Soc Lond B Biol Sci 234(1276):283–301
59. Lai G, Yu G (2006) A numerical simulation of nutrient transport in Taihu Basin. In: Proceedings of the International Conference on Hydrology and Management of Forested Wetlands, New Bern, NC, 8–12 April 2006. doi:10.13031/2013.20329
60. Lu J, Wang H, Wang W, Yin C (2007) Vegetation and soil properties in restored wetlands near
Lake Taihu, China. Hydrobiologia 581(1):151–159
110
P. Villa et al.
Ittersum MK, Qu F (2012) Integrated assessment of agricultural land use policies on nutrient
pollution and sustainable development in Taihu Basin, China. Environ Sci Policy 18:66–76
43. Villa P, Lechi G, Gomarasca MA (2009) Multivariate differencing techniques for land cover
change detection: the normalized difference reflectance approach. In: Ho PG (ed) Geoscience
and remote sensing. InTech, Rijeka, pp 277–299
44. Shapiro J (1990) Current beliefs regarding dominance by blue-greens: the case for the
importance of CO 2 and pH. Verh Int Ver Limnol 24:38–54
45. Laamanen MJ, Forsstro ¨m L, Sivonen K (2002) Diversity of Aphanizomenon flos-aquae
(cyanobacterium) populations along a Baltic Sea salinity gradient. Appl Environ Microbiol
68:5296–5303
46. Sellner KG, Lacouture RV, Parrish CR (1988) Effects of increasing salinity on a cyanobacteria
bloom in the Potomac River estuary. J Plankton Res 10:49–61
47. Dokulil MT, Teubner K (2000) Cyanobacterial dominance in lakes. Hydrobiologia 438(1–3):
1–12
48. Gustavs L, Eggert A, Michalik D, Karsten U (2010) Physiological and biochemical responses
of green microalgae from different habitats to osmotic and matric stress. Protoplasma 243:
3–14
49. Zevenboom W (1982) N 2 -fixing cyanobacteria: why they do not become dominant in
shallow hypertrophic lakes. Aquat Ecol 16:289–290
50. Kosten S, Huszar VLM, Becares E, Costa LS, van Donk E, Hansson LA, Jeppesen E, Kruk C,
Lacerot G, Mazzeo N, De Meester L, Moss B, Lurling M, Noges T, Romo S, Scheffer M (2012)
Warmer climates boost cyanobacterial dominance in shallow lakes. Global Change Biol 18:
118–126
51. O’Neil JM, Davis TW, Burford MA, Gobler CJ (2012) The rise of harmful cyanobacteria
blooms: the potential roles of eutrophication and climate change. Harmful Algae 14:313–334
52. Schindler DW (1977) Evolution of phosphorus limitation in lakes. Science 195(4275):
260–262
53. Jacoby JM, Collier DC, Welch EB, Hardy FJ, Crayton M (2000) Environmental factors
associated with a toxic bloom of Microcystis aeruginosa. Can J Fish Aquat Sci 57(1):231–240
54. Oliver RL, Ganf GG (2000) Freshwater blooms. In: Potts M, Whitton BA (eds) The ecology of
cyanobacteria. Springer, Dordrecht, pp 149–194
55. van Beusekom JEE, Loebl M, Martens P (2009) Distant riverine nutrient supply and
local temperature drive the long-term phytoplankton development in a temperate coastal basin.
J Sea Res 61:26–33
56. Kutser T, Metsamaa L, Strombeck N, Vahtmae E (2006) Monitoring cyanobacterial blooms by
satellite remote sensing. Estuar Coast Shelf Sci 67:303–312
57. Latour D, Sabido O, Salencon MJ, Giraudet H (2004) Dynamics and metabolic activity of
the benthic cyanobacterium Microcystis aeruginosa in the Grangent reservoir (France).
J Plankton Res 26:719–726
58. Fay P (1988) Viability of akinetes of the planktonic cyanobacterium Anabaena circinalis.
Proc R Soc Lond B Biol Sci 234(1276):283–301
59. Lai G, Yu G (2006) A numerical simulation of nutrient transport in Taihu Basin. In: Proceedings of the International Conference on Hydrology and Management of Forested Wetlands, New Bern, NC, 8–12 April 2006. doi:10.13031/2013.20329
60. Lu J, Wang H, Wang W, Yin C (2007) Vegetation and soil properties in restored wetlands near
Lake Taihu, China. Hydrobiologia 581(1):151–159
110
P. Villa et al.
