TY - JOUR
T1 - Construction of a novel glucose-sensing molecule based on a substrate-binding protein for intracellular sensing
AU - Sakaguchi-Mikami, Akane
AU - Taniguchi, Akiyoshi
AU - Sode, Koji
AU - Yamazaki, Tomohiko
PY - 2011/4
Y1 - 2011/4
N2 - A novel transcriptional regulator responding to glucose was designed with a substrate-binding protein (SBP) as a probe towards intracellular sensing system for glucose in mammalian cells. A chimeric protein of an SBP for glucose (GBP) and a LacI-type regulator, LacI (SLCPGL), was designed, constructed and characterized using Escherichia coli recombinant protein. We report that SLCPGL has a glucose-specific binding ability and an operator-sequence specific DNA-binding ability. The loss of its DNA-binding ability in the presence of glucose suggests a role as a transcriptional regulator in vitro. The glucose-dependent gene regulation function of SLCPGL in cells was investigated using mammalian cells co-transfected with SLCPGL and Lac operator-fused luciferase gene constructs. The luciferase activity of the transfected cells increased with the glucose concentration in the medium, showing that the expression of the luciferase gene is regulated by SLCPGL, which can dissociate from DNA in a glucose concentration-dependent manner. Therefore, we demonstrated that SLCPGL functions as a glucose-sensitive transcriptional regulator in mammalian cells. These results reveal the possibility of developing an SBP-based regulator as a probe of intracellular sensing and gene regulation system for mammalian cells in response to a desired ligands depending on the SBP ligand specificity.
AB - A novel transcriptional regulator responding to glucose was designed with a substrate-binding protein (SBP) as a probe towards intracellular sensing system for glucose in mammalian cells. A chimeric protein of an SBP for glucose (GBP) and a LacI-type regulator, LacI (SLCPGL), was designed, constructed and characterized using Escherichia coli recombinant protein. We report that SLCPGL has a glucose-specific binding ability and an operator-sequence specific DNA-binding ability. The loss of its DNA-binding ability in the presence of glucose suggests a role as a transcriptional regulator in vitro. The glucose-dependent gene regulation function of SLCPGL in cells was investigated using mammalian cells co-transfected with SLCPGL and Lac operator-fused luciferase gene constructs. The luciferase activity of the transfected cells increased with the glucose concentration in the medium, showing that the expression of the luciferase gene is regulated by SLCPGL, which can dissociate from DNA in a glucose concentration-dependent manner. Therefore, we demonstrated that SLCPGL functions as a glucose-sensitive transcriptional regulator in mammalian cells. These results reveal the possibility of developing an SBP-based regulator as a probe of intracellular sensing and gene regulation system for mammalian cells in response to a desired ligands depending on the SBP ligand specificity.
KW - Gene regulation
KW - Glucose-/galactose-binding protein (GBP)
KW - Intracellular sensing
KW - Lactose repressor (LacI)
KW - Substratebinding proteins (SBPs)
KW - Transcriptional regulator
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U2 - 10.1002/bit.23006
DO - 10.1002/bit.23006
M3 - Article
C2 - 21404246
AN - SCOPUS:79952578982
SN - 0006-3592
VL - 108
SP - 725
EP - 733
JO - Biotechnology and Bioengineering
JF - Biotechnology and Bioengineering
IS - 4
ER -