14
M. Al-Sahari et al.
Higa T (2001) The technology of effective microorganisms—Concept and philosophy. In: Proceedings of a seminar on the application of effective microorganisms (EM) techniques in organic
farming, organised by the International Society of the Royal Agricultural College
Huh JH, Ahn JW (2017) A perspective of chemical treatment for cyanobacteria control toward
sustainable freshwater development. Environ Eng Res 22(1):1–11
HuSSain S (2015) Native rice starch and linseed gum blends: effect on the pasting, thermal and
rheological properties. Czech J Food Sci 33(6):556–563
Jamaludin SN, Kadir AA, Azhari NW (2016) Study on NPK performance in food waste composting
by using agricultural fermentation
Jiang X, Ren C, Hu C, Zhao Z (2014) Isolation and algicidal characterization of Bowmanella
denitrificans S088 against Chlorella vulgaris. World J Microbiol Biotechnol 30(2):621–629
Jin Y, Pei H, Hu W, Zhu Y, Xu H, Ma C, Li H (2017) A promising application of chitosan quaternary
ammonium salt to removal of Microcystis aeruginosa cells from drinking water. Sci Total Environ
583:496–504
Jung SW, Kim BH, Katano T, Kong DS, Han MS (2008) Pseudomonas fluorescens HYK0210SK09 offers species-specific biological control of winter algal blooms caused by freshwater
diatom Stephanodiscus hantzschii. J Appl Microbiol 105(1):186–195
Jung S, Cho H, Kim D, Kim K, Han JI, Myung H (2017) Development of algal bloom removal
system using unmanned aerial vehicle and surface vehicle. IEEE Access 5:22166–22176
Kale DK, Anthappan PD (2012) Solid waste management by use of effective microorganisms
technology. Asian J Exp Sci 26(1):5–10
Kudela RM, Bickel A, Carter ML, Howard MD, Rosenfeld L (2015) The monitoring of harmful
algal blooms through ocean observing: the development of the California Harmful Algal Bloom
monitoring and alert program. In: Coastal ocean observing systems. Academic Press, pp 58–75
Lee S, Lee D (2018) Improved prediction of harmful algal blooms in four Major South Korea’s
Rivers using deep learning models. Int J Environ Res Public Health 15(7):1322
Li L, Zhang H, Pan G (2015a) Influence of zeta potential on the flocculation of cyanobacteria cells
using chitosan modified soil. J Environ Sci 28:47–53
Li Y, Zhu H, Lei X, Zhang H, Cai G, Chen Z, Zheng T (2015b) The death mechanism of the harmful
algal bloom species Alexandrium tamarense induced by algicidal bacterium Deinococcus sp.
Y35. Front Microbiol 6:992
Li Y, Lei X, Zhu H, Zhang H, Guan C, Chen Z, Zheng T (2016) Chitinase producing bacteria with
direct algicidal activity on marine diatoms. Sci Rep 6:21984
Liao C, Liu X (2014) High-cell-density cultivation and algicidal activity assays of a novel algicidal
bacterium to control algal bloom caused by water eutrophication. Water Air Soil Pollut 225(11)
McPartlin DA, Loftus JH, Crawley AS, Silke J, Murphy CS, O’Kennedy RJ (2017) Biosensors for
the monitoring of harmful algal blooms. Curr Opin Biotechnol 45:164–169
Merfield CN (2012) Treating food preparation ‘waste’ by Bokashi fermentation versus composting
for crop land application: a feasibility and scoping review. Report commissioned by Gisborne
District Council. Canterbury, Lincoln University, The BHU Future Farming Centre
Misra RV, Roy RN, Hiraoka H (2003) On-farm composting methods. UN-FAO, Rome, Italy
Mohr KI (2018) Diversity of Myxobacteria—we only see the tip of the iceberg. Microorganisms
6(3):84
Naceradska J, Pivokonsky M, Pivokonska L, Baresova M, Henderson RK, Zamyadi A, Janda V
(2017) The impact of pre-oxidation with potassium permanganate on cyanobacterial organic
matter removal by coagulation. Water Res 114:42–49
Nishu SD, Kang Y, Han I, Jung TY, Lee TK (2019) Nutritional status regulates algicidal activity of
Aeromonas sp. L23 against cyanobacteria and green algae. PloS one 14(3):e0213370
Noyma NP, de Magalhaes L, Furtado LL, Mucci M, van Oosterhout F, Huszar VL, Lürling M
(2016) Controlling cyanobacterial blooms through effective flocculation and sedimentation with
combined use of flocculants and phosphorus adsorbing natural soil and modified clay. Water Res
97:26–38
M. Al-Sahari et al.
Higa T (2001) The technology of effective microorganisms—Concept and philosophy. In: Proceedings of a seminar on the application of effective microorganisms (EM) techniques in organic
farming, organised by the International Society of the Royal Agricultural College
Huh JH, Ahn JW (2017) A perspective of chemical treatment for cyanobacteria control toward
sustainable freshwater development. Environ Eng Res 22(1):1–11
HuSSain S (2015) Native rice starch and linseed gum blends: effect on the pasting, thermal and
rheological properties. Czech J Food Sci 33(6):556–563
Jamaludin SN, Kadir AA, Azhari NW (2016) Study on NPK performance in food waste composting
by using agricultural fermentation
Jiang X, Ren C, Hu C, Zhao Z (2014) Isolation and algicidal characterization of Bowmanella
denitrificans S088 against Chlorella vulgaris. World J Microbiol Biotechnol 30(2):621–629
Jin Y, Pei H, Hu W, Zhu Y, Xu H, Ma C, Li H (2017) A promising application of chitosan quaternary
ammonium salt to removal of Microcystis aeruginosa cells from drinking water. Sci Total Environ
583:496–504
Jung SW, Kim BH, Katano T, Kong DS, Han MS (2008) Pseudomonas fluorescens HYK0210SK09 offers species-specific biological control of winter algal blooms caused by freshwater
diatom Stephanodiscus hantzschii. J Appl Microbiol 105(1):186–195
Jung S, Cho H, Kim D, Kim K, Han JI, Myung H (2017) Development of algal bloom removal
system using unmanned aerial vehicle and surface vehicle. IEEE Access 5:22166–22176
Kale DK, Anthappan PD (2012) Solid waste management by use of effective microorganisms
technology. Asian J Exp Sci 26(1):5–10
Kudela RM, Bickel A, Carter ML, Howard MD, Rosenfeld L (2015) The monitoring of harmful
algal blooms through ocean observing: the development of the California Harmful Algal Bloom
monitoring and alert program. In: Coastal ocean observing systems. Academic Press, pp 58–75
Lee S, Lee D (2018) Improved prediction of harmful algal blooms in four Major South Korea’s
Rivers using deep learning models. Int J Environ Res Public Health 15(7):1322
Li L, Zhang H, Pan G (2015a) Influence of zeta potential on the flocculation of cyanobacteria cells
using chitosan modified soil. J Environ Sci 28:47–53
Li Y, Zhu H, Lei X, Zhang H, Cai G, Chen Z, Zheng T (2015b) The death mechanism of the harmful
algal bloom species Alexandrium tamarense induced by algicidal bacterium Deinococcus sp.
Y35. Front Microbiol 6:992
Li Y, Lei X, Zhu H, Zhang H, Guan C, Chen Z, Zheng T (2016) Chitinase producing bacteria with
direct algicidal activity on marine diatoms. Sci Rep 6:21984
Liao C, Liu X (2014) High-cell-density cultivation and algicidal activity assays of a novel algicidal
bacterium to control algal bloom caused by water eutrophication. Water Air Soil Pollut 225(11)
McPartlin DA, Loftus JH, Crawley AS, Silke J, Murphy CS, O’Kennedy RJ (2017) Biosensors for
the monitoring of harmful algal blooms. Curr Opin Biotechnol 45:164–169
Merfield CN (2012) Treating food preparation ‘waste’ by Bokashi fermentation versus composting
for crop land application: a feasibility and scoping review. Report commissioned by Gisborne
District Council. Canterbury, Lincoln University, The BHU Future Farming Centre
Misra RV, Roy RN, Hiraoka H (2003) On-farm composting methods. UN-FAO, Rome, Italy
Mohr KI (2018) Diversity of Myxobacteria—we only see the tip of the iceberg. Microorganisms
6(3):84
Naceradska J, Pivokonsky M, Pivokonska L, Baresova M, Henderson RK, Zamyadi A, Janda V
(2017) The impact of pre-oxidation with potassium permanganate on cyanobacterial organic
matter removal by coagulation. Water Res 114:42–49
Nishu SD, Kang Y, Han I, Jung TY, Lee TK (2019) Nutritional status regulates algicidal activity of
Aeromonas sp. L23 against cyanobacteria and green algae. PloS one 14(3):e0213370
Noyma NP, de Magalhaes L, Furtado LL, Mucci M, van Oosterhout F, Huszar VL, Lürling M
(2016) Controlling cyanobacterial blooms through effective flocculation and sedimentation with
combined use of flocculants and phosphorus adsorbing natural soil and modified clay. Water Res
97:26–38
