TY - JOUR
T1 - Biochemical characterization of the kink-turn RNA motif
AU - Matsumura, Shigeyoshi
AU - Ikawa, Yoshiya
AU - Inoue, Tan
N1 - Funding Information:
We thank the members of the Inoue Laboratory for critical reading of the manuscript. This work was supported by Grants-in-Aid for Scientific Research on Priority Areas and the Takeda Science Foundation (T.I.) and the Encouragement of Young Scientists (Y.I.) from the Ministry of Education, Science, Sports and Culture, Japan.
PY - 2003/10/1
Y1 - 2003/10/1
N2 - RNA, which acts as a medium for transmitting genetic information, plays a variety of roles in a cell. As with proteins, elucidation of the three-dimensional (3D) structures of RNAs is important or understanding their various roles. Determination of the atomic structures of crystallized ribosome has enabled the identification of previously unknown RNA structural motifs. The kink-turn (K-turn or GA) motif, which causes a sharp bend in an RNA double helix, was identified as one of these structural motifs. To biochemically characterize the K-turn, the motif was inserted into a hinge region of P4-P6 RNA, which is the most extensively studied self-folding RNA, and its properties were investigated. The stability and metal ion requirement of the constructs containing three different K-turn motifs were analyzed using native PAGE and dimethyl sulfate (DMS) modification. The formation of the sharp bending structure depends on the presence of divalent cation like Mg2+ or Ca2+, although its required concentration is different for each motif.
AB - RNA, which acts as a medium for transmitting genetic information, plays a variety of roles in a cell. As with proteins, elucidation of the three-dimensional (3D) structures of RNAs is important or understanding their various roles. Determination of the atomic structures of crystallized ribosome has enabled the identification of previously unknown RNA structural motifs. The kink-turn (K-turn or GA) motif, which causes a sharp bend in an RNA double helix, was identified as one of these structural motifs. To biochemically characterize the K-turn, the motif was inserted into a hinge region of P4-P6 RNA, which is the most extensively studied self-folding RNA, and its properties were investigated. The stability and metal ion requirement of the constructs containing three different K-turn motifs were analyzed using native PAGE and dimethyl sulfate (DMS) modification. The formation of the sharp bending structure depends on the presence of divalent cation like Mg2+ or Ca2+, although its required concentration is different for each motif.
UR - http://www.scopus.com/inward/record.url?scp=0141940267&partnerID=8YFLogxK
U2 - 10.1093/nar/gkg760
DO - 10.1093/nar/gkg760
M3 - 学術論文
C2 - 14500816
AN - SCOPUS:0141940267
SN - 0305-1048
VL - 31
SP - 5544
EP - 5551
JO - Nucleic Acids Research
JF - Nucleic Acids Research
IS - 19
ER -