[Synthesis and properties of DNA duplexes with covalent bonds between cross-links]. 1996

S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
Genset Corporation, Paris, France.

Synthesis of cross-linked modified DNA duplexes is described. The structure of the duplexes was confirmed by digestion with the AluI restriction endonuclease. Thermostability and resistance to enzymatic hydrolysis of the cross-linked duplexes were studied.

UI MeSH Term Description Entries
D008969 Molecular Sequence Data Descriptions of specific amino acid, carbohydrate, or nucleotide sequences which have appeared in the published literature and/or are deposited in and maintained by databanks such as GENBANK, European Molecular Biology Laboratory (EMBL), National Biomedical Research Foundation (NBRF), or other sequence repositories. Sequence Data, Molecular,Molecular Sequencing Data,Data, Molecular Sequence,Data, Molecular Sequencing,Sequencing Data, Molecular
D003432 Cross-Linking Reagents Reagents with two reactive groups, usually at opposite ends of the molecule, that are capable of reacting with and thereby forming bridges between side chains of amino acids in proteins; the locations of naturally reactive areas within proteins can thereby be identified; may also be used for other macromolecules, like glycoproteins, nucleic acids, or other. Bifunctional Reagent,Bifunctional Reagents,Cross Linking Reagent,Crosslinking Reagent,Cross Linking Reagents,Crosslinking Reagents,Linking Reagent, Cross,Linking Reagents, Cross,Reagent, Bifunctional,Reagent, Cross Linking,Reagent, Crosslinking,Reagents, Bifunctional,Reagents, Cross Linking,Reagents, Cross-Linking,Reagents, Crosslinking
D004247 DNA A deoxyribonucleotide polymer that is the primary genetic material of all cells. Eukaryotic and prokaryotic organisms normally contain DNA in a double-stranded state, yet several important biological processes transiently involve single-stranded regions. DNA, which consists of a polysugar-phosphate backbone possessing projections of purines (adenine and guanine) and pyrimidines (thymine and cytosine), forms a double helix that is held together by hydrogen bonds between these purines and pyrimidines (adenine to thymine and guanine to cytosine). DNA, Double-Stranded,Deoxyribonucleic Acid,ds-DNA,DNA, Double Stranded,Double-Stranded DNA,ds DNA
D006868 Hydrolysis The process of cleaving a chemical compound by the addition of a molecule of water.
D001483 Base Sequence The sequence of PURINES and PYRIMIDINES in nucleic acids and polynucleotides. It is also called nucleotide sequence. DNA Sequence,Nucleotide Sequence,RNA Sequence,DNA Sequences,Base Sequences,Nucleotide Sequences,RNA Sequences,Sequence, Base,Sequence, DNA,Sequence, Nucleotide,Sequence, RNA,Sequences, Base,Sequences, DNA,Sequences, Nucleotide,Sequences, RNA
D013696 Temperature The property of objects that determines the direction of heat flow when they are placed in direct thermal contact. The temperature is the energy of microscopic motions (vibrational and translational) of the particles of atoms. Temperatures
D015252 Deoxyribonucleases, Type II Site-Specific Enzyme systems containing a single subunit and requiring only magnesium for endonucleolytic activity. The corresponding modification methylases are separate enzymes. The systems recognize specific short DNA sequences and cleave either within, or at a short specific distance from, the recognition sequence to give specific double-stranded fragments with terminal 5'-phosphates. Enzymes from different microorganisms with the same specificity are called isoschizomers. EC 3.1.21.4. DNA Restriction Enzymes, Type II,DNase, Site-Specific, Type II,Restriction Endonucleases, Type II,Type II Restriction Enzymes,DNase, Site Specific, Type II,Deoxyribonucleases, Type II, Site Specific,Deoxyribonucleases, Type II, Site-Specific,Site-Specific DNase, Type II,Type II Site Specific DNase,Type II Site Specific Deoxyribonucleases,Type II Site-Specific DNase,Type II Site-Specific Deoxyribonucleases,Deoxyribonucleases, Type II Site Specific,Site Specific DNase, Type II

Related Publications

S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
January 1996, FEBS letters,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
February 2011, Biochemistry,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
January 2023, Journal of the American Chemical Society,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
January 1994, Bioorganicheskaia khimiia,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
March 2013, Chemical science,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
January 1985, Biofizika,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
November 2006, Journal of the American Chemical Society,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
August 2004, Journal of the American Chemical Society,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
January 2002, Biochemistry,
S I Antsypovich, and T S Oretskaia, and E A Romanova, and E M Volkov, and V N Tashlitskiĭ, and M Vasseur, and Z A Shabarova
December 2012, Langmuir : the ACS journal of surfaces and colloids,
Copied contents to your clipboard!