chemolithoautotrophic alkaliphilic sulfur-oxidizing bacteria from soda lakes. FEMS Microbiol
Lett 243:181–187
77. Takatani N, Nishida K, Sawabe T, Maoka T, Miyashita K, Hosokawa M (2014) Identification
of a novel carotenoid, 2
0 -isopentenylsaproxanthin, by Jejuia pallidilutea strain 11shimoA1
and its increased production under alkaline condition. Appl Microbiol Biotechnol
98:6633–6640. https://doi.org/10.1007/s00253-014-5702-y
78. Zav’yalov V, Zavialov A, Zav’yalova G, Korpela T (2010) Adhesive organelles of Gramnegative pathogens assembled with the classical chaperone/usher machinery: structure and
function from a clinical standpoint. FEMS Microbiol Rev 34(3):317–378. https://doi.org/10.
1111/j.1574-6976.2009.00201.x
79. Nicolaus B, Kambourova M, Oner E (2010) Exopolysaccharides from extremophiles: from
fundamentals to biotechnology. Environ Technol 31:1145–1158
80. Korpela T, Mattsson P, Hellman J, Paavilainen S, Mäkelä M (1989) Cyclodextrins: production, properties and applications in food chemistry. Food Biotechnol 2:199–210
81. Mattsson P, Korpela T, Mäkelä M (1990) Methods to produce starch syrups containing
cyclodextrins. Finnish patent no. 8116
82. Mattsson P, Meklin S, Korpela T (1990) Analysis of cyclomaltodextrin glucanotransferase
isoenzymes by isoelectric focusing in immobilized pH gradients. J Biochem Biophys Methods
20:237–246
83. Mattsson P, Korpela T, Paavilainen S, Mäkelä M (1991) Enhanced conversion of starch to
cyclodextrins in ethanolic solutions by Bacillus circulans var alkalophilus cyclomaltodextrin
glucanotransferase. Appl Biochem Biotechnol 30:17–28
84. Salminen L, Uosukainen M, Mattsson P, Korpela T (1990) Action of cyclodextrins on
germinating seeds and on micropropagated plants. Starch 42:350–353
85. Spano A, Gugliandolo C, Lentini V, Maugeri TL, Anzelmo G, Poli A, Nicolaus B (2013) A
novel EPS-producing strain of Bacillus licheniformis isolated from a shallow vent off Panarea
Island (Italy). Curr Microbiol 67:21–29. https://doi.org/10.1007/s00284-013-0327-4
86. Wang L, Zhang H, Yang L, Liang X, Zhang F, Linhardt RJ (2017) Structural characterization
and bioactivity of exopolysaccharide synthesized by Geobacillus sp. TS3-9 isolated from
radioactive radon hot spring. Adv Biotechnol Microbiol 4(2):555634. https://doi.org/10.
19080/AIBM.2017.04.555635
87. Poli A, Esposito E, Orlando P, Lama L, Giordano A, de Appolonia F, Nicolaus B, Gambacorta
A (2007) Halomonas alkaliantarctica sp. nov., isolated from saline lake Cape Russell in
Antarctica, an alkalophilic moderately halophilic, exopolysaccharide-producing bacterium.
Syst Appl Microbiol 30(1):31–38. https://doi.org/10.1016/j.syapm.2006.03.003
88. Doronina NV, Lee TD, Ivanova EG, Trotsenko YA (2005) Methylophaga murata sp. nov.: a
haloalkaliphilic aerobic methylotroph from deteriorating marble. Microbiology 74(4):440–447
89. Shukla P, Patel N, Mohan RR, Shukla J, Verma S et al (2011) Isolation and characterization of
polyhydroxyalkanoate and exopolysaccharide producing Bacillus sp. PS1 isolated from sugarcane field in Bhilai, India. J Microb Biochem Technol 3:33–35. https://doi.org/10.4172/
1948-5948.1000048
90. Arun J, Sathishkumar R, Muneeswaran T (2014) Optimization of extracellular polysaccharide
production in Halobacillus trueperi AJSK using response surface methodology. Afr J
Biotechnol 13(48):4449–4457. https://doi.org/10.5897/AJB2014.14109
91. Dah Dossounon YD, Lee K, Belghmi K, Benzha F, Blaghen M (2016) Exopolysaccharide
(EPS) production by Exiguobacterium aurantiacum isolated from Marchica lagoon ecosystem
in Morocco. Am J Microbiol Res 4(5):147–152. https://doi.org/10.12691/ajmr-4-5-4
92. Corsaro MM, Grant WD, Grant S, Marciano CE, Parrilli M (1999) Structure determination of
an exopolysaccharide from an alkaliphilic bacterium closely related to Bacillus spp. Eur J
Biochem 264:554–561
93. Joshi AA, Kanekar PP (2011) Production of exopolysaccharide by Vagococcus carniphilus
MCM B-1018 isolated from alkaline Lonar Lake, India. Ann Microbiol 61(4):733–740.
https://doi.org/10.1007/s13213-010-0189-y
Metabolites Produced by Alkaliphiles with Potential Biotechnological. . .
191
Lett 243:181–187
77. Takatani N, Nishida K, Sawabe T, Maoka T, Miyashita K, Hosokawa M (2014) Identification
of a novel carotenoid, 2
0 -isopentenylsaproxanthin, by Jejuia pallidilutea strain 11shimoA1
and its increased production under alkaline condition. Appl Microbiol Biotechnol
98:6633–6640. https://doi.org/10.1007/s00253-014-5702-y
78. Zav’yalov V, Zavialov A, Zav’yalova G, Korpela T (2010) Adhesive organelles of Gramnegative pathogens assembled with the classical chaperone/usher machinery: structure and
function from a clinical standpoint. FEMS Microbiol Rev 34(3):317–378. https://doi.org/10.
1111/j.1574-6976.2009.00201.x
79. Nicolaus B, Kambourova M, Oner E (2010) Exopolysaccharides from extremophiles: from
fundamentals to biotechnology. Environ Technol 31:1145–1158
80. Korpela T, Mattsson P, Hellman J, Paavilainen S, Mäkelä M (1989) Cyclodextrins: production, properties and applications in food chemistry. Food Biotechnol 2:199–210
81. Mattsson P, Korpela T, Mäkelä M (1990) Methods to produce starch syrups containing
cyclodextrins. Finnish patent no. 8116
82. Mattsson P, Meklin S, Korpela T (1990) Analysis of cyclomaltodextrin glucanotransferase
isoenzymes by isoelectric focusing in immobilized pH gradients. J Biochem Biophys Methods
20:237–246
83. Mattsson P, Korpela T, Paavilainen S, Mäkelä M (1991) Enhanced conversion of starch to
cyclodextrins in ethanolic solutions by Bacillus circulans var alkalophilus cyclomaltodextrin
glucanotransferase. Appl Biochem Biotechnol 30:17–28
84. Salminen L, Uosukainen M, Mattsson P, Korpela T (1990) Action of cyclodextrins on
germinating seeds and on micropropagated plants. Starch 42:350–353
85. Spano A, Gugliandolo C, Lentini V, Maugeri TL, Anzelmo G, Poli A, Nicolaus B (2013) A
novel EPS-producing strain of Bacillus licheniformis isolated from a shallow vent off Panarea
Island (Italy). Curr Microbiol 67:21–29. https://doi.org/10.1007/s00284-013-0327-4
86. Wang L, Zhang H, Yang L, Liang X, Zhang F, Linhardt RJ (2017) Structural characterization
and bioactivity of exopolysaccharide synthesized by Geobacillus sp. TS3-9 isolated from
radioactive radon hot spring. Adv Biotechnol Microbiol 4(2):555634. https://doi.org/10.
19080/AIBM.2017.04.555635
87. Poli A, Esposito E, Orlando P, Lama L, Giordano A, de Appolonia F, Nicolaus B, Gambacorta
A (2007) Halomonas alkaliantarctica sp. nov., isolated from saline lake Cape Russell in
Antarctica, an alkalophilic moderately halophilic, exopolysaccharide-producing bacterium.
Syst Appl Microbiol 30(1):31–38. https://doi.org/10.1016/j.syapm.2006.03.003
88. Doronina NV, Lee TD, Ivanova EG, Trotsenko YA (2005) Methylophaga murata sp. nov.: a
haloalkaliphilic aerobic methylotroph from deteriorating marble. Microbiology 74(4):440–447
89. Shukla P, Patel N, Mohan RR, Shukla J, Verma S et al (2011) Isolation and characterization of
polyhydroxyalkanoate and exopolysaccharide producing Bacillus sp. PS1 isolated from sugarcane field in Bhilai, India. J Microb Biochem Technol 3:33–35. https://doi.org/10.4172/
1948-5948.1000048
90. Arun J, Sathishkumar R, Muneeswaran T (2014) Optimization of extracellular polysaccharide
production in Halobacillus trueperi AJSK using response surface methodology. Afr J
Biotechnol 13(48):4449–4457. https://doi.org/10.5897/AJB2014.14109
91. Dah Dossounon YD, Lee K, Belghmi K, Benzha F, Blaghen M (2016) Exopolysaccharide
(EPS) production by Exiguobacterium aurantiacum isolated from Marchica lagoon ecosystem
in Morocco. Am J Microbiol Res 4(5):147–152. https://doi.org/10.12691/ajmr-4-5-4
92. Corsaro MM, Grant WD, Grant S, Marciano CE, Parrilli M (1999) Structure determination of
an exopolysaccharide from an alkaliphilic bacterium closely related to Bacillus spp. Eur J
Biochem 264:554–561
93. Joshi AA, Kanekar PP (2011) Production of exopolysaccharide by Vagococcus carniphilus
MCM B-1018 isolated from alkaline Lonar Lake, India. Ann Microbiol 61(4):733–740.
https://doi.org/10.1007/s13213-010-0189-y
Metabolites Produced by Alkaliphiles with Potential Biotechnological. . .
191
