6. Goto T, Matsuno T, Hishinuma-Narisawa M, Yamazaki K, Matsuyama H, Inoue N, Yumoto I
(2005) Cytochrome c and bioenergetic hypothetical model for alkaliphilic Bacillus spp.
J Biosci Bioeng 100(4):365–379. https://doi.org/10.1263/jbb.100.365
7. Matsuno T, Yumoto I (2015) Bioenergetics and the role of soluble cytochrome c for alkaline
adaptation in alkaliphilic Pseudomonas. Biomed Res Int 2015:847945
8. Mäkelä M, Paavilainen S, Korpela T (1990) Growth dynamics of cyclomatodextrin
glucanotransferase-producing Bacillus circulans var. alkalophilus. Can J Microbiol
36:176–182
9. Mäkelä M, Paavilainen S, Korpela T (1990) A device for automatic sampling of microbial
culture fluids. Lab Pract 37:69–70
10. Paavilainen S, Mäkelä M, Korpela T (1995) Proton and carbon inventory during the growth of
an alkaliphilic Bacillus indicates that protons are independent from acid anions. J Ferment
Bioeng 80:429–433
11. Preiss L, Hicks D, Suzuki S, Meier T, Krulwich T (2015) Alkaliphilic bacteria with impact on
industrial applications, concepts of early life forms, and bioenergetics of ASTP synthesis.
Front Bioeng Biotechnol 3:1–16
12. Hirabayashi T, Goto T, Morimoto H, Yoshimune K, Matsyama H, Yumoto I (2012) Relationship between rates of respiratory proton extrusion and ATP synthesis in obligately
alkaliphilic Bacillus clarkii DSM 8720. J Bioenerg Biomembr 44:265–272
13. Kulshreshtha N, Kumar A, Dhall P, Gupta S, Gopal B, Pasha S, Singh V, Kumar R (2010)
Neutralization of alkaline industrial waste waters using Exiguobacterium sp. Int Biodeter
Biodegr 64:191–196
14. Kulshreshtha N, Kumar A, Gobal B, Pasha S, Kumar R (2012) Usefulness of organic acids
produced by Exiguobacterium sp. 12/1 on neutralization of alkaline waste water. Sci World J
2012:345101
15. Yokaryo H, Tokiwa Y (2014) Isolation of alkaliphilic bacteria for production of high optically
pure L-(+)-lactic acid. J Gen Appl Microbiol 60:270–275
16. Assavvasirinda N, Ge D, Yu B, Xue Y, Ma Y (2016) Efficient fermentative production of
polymer-grade D-lactate by an engineered alkaliphilic Bacillus sp. strain under non-sterile
conditions. Microb Cell Fact 15(1):3. https://doi.org/10.1186/s12934-015-0408-0
17. Kanekar P, Joshi A, Kelkar A, Boregave S, Sarnaik S (2008) Alkaline Lonar lake, India – a
treasure of alkaliphilic and halophilic bacteria. In: Sengupta M, Dalawani R (eds) Proceedings
of Taal 2007: the 12th world lake conference, pp 1765–1774
18. Zhao R, Yan Y, Chen S (2014) How could haloalkaliphilic microorganisms contribute to
biotechnology? Can J Microbiol 60:717–727
19. Li Z, Yang J, Loh XJ (2016) Polyhydroxyalkanoates: opening doors for a sustainable future.
NPG Asia Mater 8(4):e265
20. Chen G, Jiang X (2018) Engineering microorganisms for improving polyhydroxyalkanoate
biosynthesis. Curr Opin Biotechnol 53:20–25
21. Janto B, Ahmed A, Ito M, Liu J, Hicks DB, Pagni S, Fackelmayer OJ, Smith TA, Earl J,
Elbourne LD, Hassan K, Paulsen IT, Koplsto AB, Tourasse NJ, Ehrlich GD, Boissy R, Ivey
DM, Li G, Xue Y, Ma Y, Krulwich TA (2011) Genome of alkaliphilic Bacillus pseudofirmus
OF4 reveals adaptations that support the ability to grow in an external pH range from 7.5 to
11.4. Environ Microbiol 13:3289–3309
22. Roberts MF (2005) Organic compatible solutes of halotolerant and halophilic microorganisms.
Saline Syst 1(5):1–36
23. Korpela T, Mattinen J, Himanen JP, Mekhanic M, Torchinsky Y (1987) Phosphorus -31
nuclear magnetic resonance of aspartate aminotransferase from chicken heart cytosol.
Biochem Biophys Acta 915:299–304
24. Meretting-Bruns U, Jelen E (2009) Anaerobic biodegradation of detergent surfactants. Materials 2:181–206. https://doi.org/10.3390/ma2010181. https://www.ncbi.nlm.nih.gov/pmc/arti
cles/PMC5445686/
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