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Masayo Ogiso

Publications and source records attributed to Masayo Ogiso.

5 recordsLinked to original sources

DNA detection system using molecularly imprinted polymer as the gel matrix in electrophoresis.

To develop a simple and inexpensive method for DNA detection, we prepared a molecularly imprinted polymer (MIP) for recognizing a specific double-stranded DNA (dsDNA) sequence and used it in an electrophoretic gel matrix. The MIP gel has many binding sites that are complementary in size, shape, and arrangement of functional groups of the target dsDNA sequence. During MIP gel electrophoresis (MIPGE), migration of the target dsDNA should be hindered by the capture effect of the binding sites in the MIP gel. This was confirmed by observation of deviations from the linear relationship between the migration distances of the DNA standard size markers in the polyacrylamide gel and those in the MIP gel. The migration distances of nontarget dsDNA maintained a linear relationship, however. In addition, the sequence selectivity of dsDNA in this method was investigated by using the Ha-ras gene and its point mutants. Except for A.T to T.A base pair substitution, mutant dsDNA (for example, substitution from A.T to C.G and from G.C to T.A) could be distinguished from the target (wild-type) dsDNA. Although some improvement in A.T (T.A) base pair distinction is still needed, this study is the first to demonstrate detection of a specific dsDNA sequence with MIPs and, as such, opens up a new realm for practical applications of MIPs.

DNA↗

Detection of a specific DNA sequence by electrophoresis through a molecularly imprinted polymer.

To develop a simple and inexpensive DNA detection method, we prepared a molecularly imprinted polymer (MIP) gel for recognizing a specific double-stranded DNA (dsDNA) target sequence in MIP gel electrophoresis (MIPGE). During MIPGE, migration of the target sequence of dsDNA should be hindered by the capture effect of the binding sites in the MIP gel. This migration hindrance of target dsDNA was determined by plotting the relationship between the migration distance in the MIP gel and that in polyacrylamide gel, commonly used in gel electrophoresis. Using this plot, detection of a target dsDNA from a mixture of different-sized dsDNA fragments was achieved. Moreover, we found the detection method successfully distinguished between a target and its base-pair substitutes. These results suggest that MIPGE could be employed for detection of a target dsDNA sequence.

Base Sequence↗

Imprinted polymer layer for recognizing double-stranded DNA.

A method of preparing a thin polymer layer able to recognize double-stranded DNA (dsDNA) was developed by using 2-vinyl-4,6-diamino-1,3,5-triazine (VDAT) as a functional monomer for creating a DNA-imprinted polymer. The formation of hydrogen bonds between VDAT and A-T base pairs in dsDNA was confirmed by measuring the effects of VDAT on the melting point and the NMR and CD spectra of dsDNA. An imprinted polymer that can recognize dsDNA of the verotoxin gene was prepared by polymerizing VDAT, acrylamide, a crosslinking agent, and the template verotoxin dsDNA on a silanized glass surface. The specificity of this polymer layer for binding verotoxin dsDNA was investigated by using fluorescent-labelled dsDNAs. The fluorescence intensity of the polymer layer after binding verotoxin dsDNA was twice as high as after binding oligo(dG)-oligo(dC), indicating that verotoxin dsDNA was preferentially bound to the polymer imprinted with verotoxin dsDNA. The kinetics of verotoxin dsDNA binding to the imprinted polymer were analyzed by surface plasmon resonance measurements. The dissociation constant (KD) was low, of the order of 10(-9)M.

Acrylic Resins↗

Molecular cloning and sequence analysis of the porcine precursor of endothelin-2.

The amino acid sequences of two of the three endothelin (ET) family peptides, ET-1 and ET-3, are identical among mammals, whereas for the other family member, ET-2 or vasoactive intestinal contractor (VIC), the mouse and rat sequences differ from the human counterpart ET-2 by one amino acid residue. To examine more deeply the structural diversity among ET-2/VIC orthologs (EDN2), we screened porcine ET-2/VIC-like cDNAs using the 5' rapid amplification of cDNA ends (RACE) method with degenerate primers based on ET-2/VIC mature peptides. Sequence analysis of the cDNAs showed that ET-2 is present in pig. The full-length cDNA sequence, produced by combining 5' RACE and 3' RACE products, revealed the porcine precursor protein of ET-2 (PPET-2). Porcine PPET-2, made up of 214 amino acids, includes a 26-residue putative signal sequence, big ET-2, mature ET-2, and ET-2-like peptide. The percent sequence identity of porcine PPET-2 with human PPET-2, and rat or mouse precursor protein of VIC runs between approximately 70% and 74%. ET-2, although expressed in intestine, has no anti-microbial activity.

Amino Acid Sequence↗

Enzymatic degradation behavior of porous silk fibroin sheets.

We investigated the degradation behavior of porous silk fibroin sheets by in vitro enzymatic experiments with alpha-chymotrypsin, collagenase IA, and protease XIV. With 1.0 U/ml protease XIV, 70% of a silk fibroin sheet was degraded within 15 days at 37 degrees C. When the fibroin sheet was exposed to collagenase IA, the amount of Silk II crystalline structure in the sheets decreased slightly, and a small amount of Silk I crystalline structure was formed. When protease XIV was used, almost all Silk II disappeared, but the crystallinity increased overall because the amount of Silk I increased. During digestion with protease XIV, the pore size of the fibroin sheets increased with increasing degradation time, until the sheets finally collapsed and became totally shapeless. The average molecular weight of the products after degradation with the three enzymes followed the order protease XIV < collagenase IA < alpha-chymotrypsin. More than 50% of the products resulting from degradation with protease XIV were free amino acids.

Amino Acids↗