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Jing-Min Zhou

Publications and source records attributed to Jing-Min Zhou.

13 recordsLinked to original sources

Ribosome-inactivation display system.

We present a novel strategy for the connection of phenotype and genotype in vitro that can be used for the selection of functional proteins. The strategy involves the generation of a stable complex among a ribosome, an messenger RNA and its translated protein, without removal of the termination codon, as a result of the action of the ricin A chain during translation. The technique requires no transfection, no chemical synthesis, no ligation, and no removal of the termination codon. Thus, our novel ribosome-inactivation display system should provide, without loss of the pool population, a reliable, simple, and robust selection system for the in vitro evolution of the properties of proteins in a predictable direction by a combination of randomization and appropriate selection strategies.

Amino Acid Sequence↗

Genetic recombination without using either restriction enzyme or PCR.

We recently prepared artificial restriction DNA cutters (ARCUT) for site-selective scission of double-stranded DNA by combining Ce(IV)/EDTA complex with a pair of pseudo-complementary peptide nucleic acids (pcPNAs). Here we report an improved method for genetic recombination using ARCUT. The key point is to treat the scission fragments with nuclease S1 (a single-stranded DNA specific enzyme) and form blunt ends. By this procedure, these scission fragments are efficiently ligated with foreign DNA fragments having blunt ends, providing desired recombinant DNA in high yields. Neither restriction enzyme nor PCR amplification is required.

DNA Restriction Enzymes↗

Gene manipulation using artificial restriction DNA cutter.

Artificial restriction DNA cutter (ARCUT), which we developed recently, was used for manipulation of plasmid DNA. PCR product was inserted into pBR322 plasmid vector using ARCUT, and E. coli cells were transfected with this recombinant plasmid DNA. Successful growth of cells shows that the recombination proceeds without any unexpected mutations. Furthermore, this artificial system was applied to PCR-free construction of chimera protein.

Cerium↗

Site-selective DNA hydrolysis by combining Ce(IV)/EDTA with monophosphate-bearing oligonucleotides and enzymatic ligation of the scission fragments.

By using two oligonucleotide additives that bear a monophosphate group at the termini through various linkers, gap structures were formed at predetermined positions in substrate DNA, and the monophosphate groups were placed at both edges of these gaps. At pH 7.0 and 37 degrees C, the phosphodiester linkages in the gap sites were efficiently and selectively hydrolyzed by Ce(IV)/EDTA complex (EDTA = ethylenediamine-N,N,N',N'-tetraacetate). The linkages in the middle of the gaps were predominantly hydrolyzed. Compared with DNA scission using oligonucleotide additives that bear no terminal monophosphate, the present scission was much faster (22-fold for a 3-base gap and 14-fold for a 5-base gap) and more site selective. Introduction of one monophosphate group to either edge of the gaps was also effective for promotion of both site selectivity and scission rate. The monophosphate group(s) at the gap site recruits the Ce(IV) to the target site and magnifies the difference in intrinsic reactivity between the target site and the others. Even at higher reaction temperatures, the site selectivity remained satisfactorily high. Furthermore, the fragments formed by the site-selective scission were connected with various oligonucleotides by using DNA ligase, producing desired recombinant DNAs.

Base Sequence↗

Straightforward detection of SNPs in double-stranded DNA by using exonuclease III/nuclease S1/PNA system.

Single-nucleotide polymorphisms (SNPs) in double-stranded DNA (dsDNA) have been straightforwardly genotyped by matrix-assisted laser desorption/ ionization time-of-flight mass spectrometry (MALDI-TOF MS). Peptide nucleic acid (PNA), a DNA analog, was used as a probe molecule. In its presence, genomic dsDNA was first treated with exonuclease III and then with nuclease S1. By these one-pot reactions, single-stranded DNA fragments including the SNP sites were formed in situ. These fragments were directly analyzed by MALDI-TOF MS, and the identity of the DNA base at the SNP site was determined in terms of mass number. By using two or more PNA probes simultaneously, multiplex analysis was also successful. Various genotypes of apolipoprotein E gene (epsilon2/epsilon2, epsilon3/epsilon3, epsilon4/epsilon4, epsilon2/epsilon3 and epsilon3/epsilon4) were identified from dsDNA obtained by PCR from corresponding patients.

Apolipoproteins E↗

Selective activation of two sites in RNA by acridine-bearing oligonucleotides for clipping of designated RNA fragments.

Artificial enzymes for selective scission of RNA at two designated sites, which are valuable for advanced RNA science, have been prepared by combining lanthanide(III) ion with an oligonucleotide bearing two acridine groups. When these modified oligonucleotides form heteroduplexes with substrate RNA, the two phosphodiester linkages in front of the acridines are selectively activated and preferentially hydrolyzed by lanthanide ion. This two-site RNA scission does not require any specific RNA sequence at the scission sites, and the length of clipped RNA fragment is easily and precisely controllable by changing the distance between two acridine groups in the modified oligonucleotide. The two-site scission is also successful even when the substrate RNA has higher-order structures. By using these two-site RNA cutters, RNA fragments of predetermined length were obtained from long RNA substrates and analyzed by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF MS). Single nucleotide polymorphisms in homozygous and heterozygous samples were accurately and easily detected in terms of the difference in mass number. Multiplex analyses of in vitro transcripts from human genome were also successful.

Acridines↗

Manipulation of DNA through Ce(IV)/EDTA-induced site-selective hydrolysis using phosphate-bearing oligonucleotides.

By using two oligonucleotides bearing a monophosphate group at the terminus and placing them at both edges of gap-site formed in substrate DNA, this site was preferentially and efficiently hydrolyzed by Ce(IV)/EDTA. In this study, site-selective hydrolysis of gap-site in long substrate DNA (274-mer) was investigated. When two monophosphate groups were placed to both edges of 5-base gap, predetermined site was selectively hydrolyzed by Ce(IV)/EDTA. Furthermore, desired recombinant DNA was prepared from this fragment and foreign DNA using T4 DNA ligase.

Cerium↗

Manipulation of double-stranded DNA by artificial restriction enzyme composed of Ce(IV)/EDTA and PNA.

Through the invasion of pseudo-complementary PNA (pePNA) to double-stranded DNA, gap-like structures were formed at predetermined sites in both strands of PBR322 plasmid DNA. These gap-like sites were selectively hydrolyzed by Ce(IV)/EDTA complex, and two designed fragments were obtained. Furthermore, the scission fragment by this artificial restriction enzyme was successfully ligated with foreign DNA.

Cerium↗

PNA for one-base differentiating protection of DNA from nuclease and its use for SNPs detection.

By the combination of peptide nucleic acid (PNA) with single-stranded DNA specific nucleases, alteration of a single base to another in DNA has been detected with high accuracy. Only the DNAs in DNA/PNA duplexes involving a mismatch are efficiently hydrolyzed by these enzymes, whereas fully matching sequences are kept intact. This difference is visually scored by adding 3,3'-diethylthiadicarbocyanine, which changes its color from blue to purple upon binding to DNA/PNA duplexes. These findings are applied to the convenient and straightforward detection of single nucleotide polymorphisms (SNPs). When the target site in the sample DNA is completely complementary with the PNA, a notable amount of DNA/PNA duplex remains and thus the solution exhibits purple color. In the presence of even one mismatch between PNA and DNA, however, the DNA is completely digested by the enzyme and therefore the dye shows its intrinsic blue color. The SNPs in the apolipoprotein E gene of human DNA have been successfully genotyped by this method.

Apolipoproteins E↗

Simultaneous detection of multiple single nucleotide polymorphism by single-strand-specific nuclease and PNA probe.

The combination of PNA (peptide nucleic acid) and single-strand-specific nuclease have been used for detection of single nucleotide polymorphisms (SNPs). When DNA is perfectly complementary to PNA, it is protected from digestion by the nuclease. If there exists a single-base mismatch between them, however, the DNA is completely digested. These differences are visualized by using 3,3'-diethylthiadicarbocyanine (DiSc2(5)), which changes its color from blue to purple upon binding to PNA/DNA hybrids. In terms of this methodology, homozygous and heterozygous SNPs in apoE gene have been successfully analyzed. Furthermore, the multiplex SNPs are simultaneously genotyped. This technique provides a simple, straightforward, facile, and visual genetic screening, with no need for expensive and complicated equipment.

Base Sequence↗

Existence of efficient divalent metal ion-catalyzed and inefficient divalent metal ion-independent channels in reactions catalyzed by a hammerhead ribozyme.

The hammerhead ribozyme is generally accepted as a well characterized metalloenzyme. However, the precise nature of the interactions of the RNA with metal ions remains to be fully defined. Examination of metal ion-catalyzed hammerhead reactions at limited concentrations of metal ions is useful for evaluation of the role of metal ions, as demonstrated in this study. At concentrations of Mn2+ ions from 0.3 to 3 mM, addition of the ribozyme to the reaction mixture under single-turnover conditions enhances the reaction with the product reaching a fixed maximum level. Further addition of the ribozyme inhibits the reaction, demonstrating that a certain number of divalent metal ions is required for proper folding and also for catalysis. At extremely high concentrations, monovalent ions, such as Na+ ions, can also serve as cofactors in hammerhead ribozyme-catalyzed reactions. However, the catalytic efficiency of monovalent ions is extremely low and, thus, high concentrations are required. Furthermore, addition of monovalent ions to divalent metal ion-catalyzed hammerhead reactions inhibits the divalent metal ion-catalyzed reactions, suggesting that the more desirable divalent metal ion-ribozyme complexes are converted to less desirable monovalent metal ion-ribozyme complexes via removal of divalent metal ions, which serve as a structural support in the ribozyme complex. Even though two channels appear to exist, namely an efficient divalent metal ion-catalyzed channel and an inefficient monovalent metal ion-catalyzed channel, it is clear that, under physiological conditions, hammerhead ribozymes are metalloenzymes that act via the significantly more efficient divalent metal ion-dependent channel. Moreover, the observed kinetic data are consistent with Lilley's and DeRose's two-phase folding model that was based on ground state structure analyses.

Base Sequence↗

A novel strategy by the action of ricin that connects phenotype and genotype without loss of the diversity of libraries.

We present a novel strategy for connection of phenotype and genotype in vitro that can be used for the selection of functional proteins even at room temperature. The strategy involves generation of a stable complex between a ribosome, an mRNA, and its translated protein, without removal of the termination codon, as a result of the action of the ricin A chain during translation. We demonstrate the potential selection capacity of this novel strategy by isolating such complexes that contain newly synthesized streptavidin and glutathione-S-transferase (GST) using appropriate ligands. The technique requires no transfection, no chemical synthesis, no ligation, and no removal of the termination codon. Thus our novel "Ribosome-Inactivation Display System (RIDS)" should provide, without loss of the pool population, a reliable, simple, and robust selection system for in vitro evolution of the properties of proteins in a predictable direction by a combination of randomization and appropriate selection strategies.

Gene Expression Profiling↗

Comparison of metal-ion-dependent cleavages of RNA by a DNA enzyme and a hammerhead ribozyme.

Joyce's DNA enzyme catalyzes cleavage of RNAs with almost the same efficiency as the hammerhead ribozyme. The cleavage activity of the DNA enzyme was pH dependent, and the logarithm of the cleavage rate increased linearly with pH from pH 6 to pH 9 with a slope of approximately unity. The existence of an apparent solvent isotope effect, with cleavage of RNA by the DNA enzyme in H(2)O being 4.3 times faster than cleavage in D(2)O, was in accord with the interpretation that, at a given pH, the concentration of the active species (deprotonated species) is 4.3 times higher in H(2)O than the concentration in D(2)O. This leads to the intrinsic isotope effect of unity, demonstrating that no proton transfer occurs in the transition state in reactions catalyzed by the DNA enzyme. Addition of La(3+) ions to the Mg(2+)-background reaction mixture inhibited the DNA enzyme-catalyzed reactions, suggesting the replacement of catalytically and/or structurally important Mg(2+) ions by La(3+) ions. Similar kinetic features of DNA enzyme mediated cleavage of RNA and of hammerhead ribozyme-mediated cleavage suggest that a very similar catalytic mechanism is used by the two types of enzyme, despite their different compositions.

Binding Sites↗