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Starkenburg, S. R., Reitenga, K. G., Freitas, T., Johnson, S., Chain, P. S., Garcia-Pichel, F., et al.
(2011). Genome of the cyanobacterium Microcoleus vaginatus FGP-2, a photosynthetic
ecosystem engineer of arid land soil biocrusts worldwide. Journal of Bacteriology , 193 ,
4569-4570.
Strøm, A. R., & Kaasen, I. (1993). Trehalose metabolism in Escherichia coli : stress protection
and stress regulation of gene expression. Molecular Microbiology , 8 , 205-210.
Waditee, R., Bhuiyan, M. N., Rai, V., Aoki, K., Tanaka, Y., Hibino, T., et al. (2005). Genes for
direct methylation of glycine provide high levels of glycinebetaine and abiotic-stress
tolerance in Synechococcus and Arabidopsis. Proceedings of the National Academy of Sciences
USA , 102 , 1318-1323.
Waditee, R., Hibino, T., Nakamura, T., Incharoensakdi, A., & Takabe, T. (2002). Overexpres-
sion of a Na + /H + antiporter confers salt tolerance on a freshwater cyanobacterium,
making it capable of growth in sea water. Proceedings of the National Academy of Sciences
USA , 99 , 4109-4114.
Waditee, R., Hibino, T., Tanaka, Y., Nakamura, T., Incharoensakdi, A., & Takabe, T. (2001).
Halotolerant cyanobacterium Aphanothece halophytica contains an Na + /H + antiporter,
homologous to eukaryotic ones, with novel ion specificity affected by C-terminal tail.
Journal of Biological Chemistry , 276 , 36931-36938.
Waditee, R., Tanaka, Y., Aoki, K., Hibino, T., Jikuya, H., Takano, J., et al. (2003). Isolation
and functional characterization of N-methyltransferases that catalyze betaine synthesis
from glycine in a halotolerant photosynthetic organism Aphanothece halophytica . Journal of
Biological Chemistry , 278 , 4932-4942.
Wang, H. L., Postier, B. L., & Burnap, R. L. (2002). Polymerase chain reaction-based muta-
geneses identify key transporters belonging to multigene families involved in Na + and
pH homeostasis of Synechocystis sp. PCC 6803. Molecular Microbiology , 44 , 1493-1506.
Wolf, A., Krämer, R., & Morbach, S. (2003). Three pathways for trehalose metabolism in
Corynebacterium glutamicum ATCC13032 and their significance in response to osmotic
stress. Molecular Microbiology , 49 , 1119-1134.
Wood, J. M. (1999). Osmosensing by bacteria: signals and membrane-based sensors. Microbiol-
ogy and Molecular Biology Reviews , 63 , 230-262.
Wu, S., He, L., Shen, R., Zhang, X., & Wang, Q. (2010). Molecular cloning of maltooli-
gosyltrehalose trehalohydrolase gene from Nostoc flagelliforme and trehalose-related
response to stresses. Journal of Microbiology and Biotechnology , 21 , 830-837.
Yoshida, T., & Sakamoto, T. (2009). Water-stress induced trehalose accumulation and control
of trehalase in the cyanobacterium Nostoc punctiforme IAM M-15. Journal of General and
Applied Microbiology , 55 , 135-145.
Yoshikawa, T., Ikeda,Y., Sakata, T., & Maeda, H. (2011). Cloning and analysis of the ggpS gene
from cyanobacteria Arthrospira spp. involved in the synthesis of an osmolyte glucosylg-
lycerol. Biocontrol Science , 16 , 55-61.
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