Pyrimidine morpholino oligonucleotides form a stable triple helix in the absence of magnesium ions

被引:30
作者
Lacroix, L [1 ]
Arimondo, PB [1 ]
Takasugi, M [1 ]
Hélène, C [1 ]
Mergny, JL [1 ]
机构
[1] CNRS, Biophys Lab, Museum Natl Hist Nat, INSERM,U201,UMR8646, F-75005 Paris, France
关键词
oligonucleotides; triple helix; morpholino; N3 ' -> P5 ' phosphoramidate;
D O I
10.1006/bbrc.2000.2438
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Oligonucleotides can be used as sequence-specific DNA ligands by forming a local triple helix. In order to form more stable triple-helical structures or prevent their degradation in cells, oligonucleotide analogues that are modified at either the backbone or base level are routinely used. Morpholino oligonucleotides appeared recently as a promising modification for antisense applications. We report here a study that indicates the possibility of a triple helix formation with a morpholino pyrimidine TFO and its comparison with a phosphodiester and a phosphoramidate oligonueleotide. At a neutral pH and in the presence of a high magnesium ion concentration (10 mM), the phosphoramidate oligomer forms the most stable triple helix, whereas in the absence of magnesium ion but at a physiological monovalent cation concentration (0.14 M) only morpholino oligonucleotides form a stable triplex. To our knowledge, this is the first report of a stable triple helix in the pyrimidine motif formed by a noncharged oligonucleotide third strand (the morpholino oligonucleotide) and a DNA duplex. We show here that the structure formed with the morpholino oligomer is a bona fide triple helix and it is destabilized by high concentrations of potassium ions or divalent cations(Mg2+). (C) 2000 Academic Press.
引用
收藏
页码:363 / 369
页数:7
相关论文
共 47 条
[1]   Thermodynamic and kinetic studies of the formation of triple helices between purine-rich deoxyribo-oligonucleotides and the promoter region of the human c-src proto-oncogene [J].
Aich, P ;
Ritchie, S ;
Bonham, K ;
Lee, JS .
NUCLEIC ACIDS RESEARCH, 1998, 26 (18) :4173-4177
[2]   Triple helix formation by (G,A)-containing oligonucleotides:: Asymmetric sequence effect [J].
Arimondo, PB ;
Barcelo, F ;
Sun, JS ;
Maurizot, JC ;
Garestier, T ;
Hélène, C .
BIOCHEMISTRY, 1998, 37 (47) :16627-16635
[3]   DETECTION AND KINETIC-STUDIES OF TRIPLEX FORMATION BY OLIGODEOXYNUCLEOTIDES USING REAL-TIME BIOMOLECULAR INTERACTION ANALYSIS (BIA) [J].
BATES, PJ ;
DOSANJH, HS ;
KUMAR, S ;
JENKINS, TC ;
LAUGHTON, CA ;
NEIDLE, S .
NUCLEIC ACIDS RESEARCH, 1995, 23 (18) :3627-3632
[4]   2ND STRUCTURAL MOTIF FOR RECOGNITION OF DNA BY OLIGONUCLEOTIDE-DIRECTED TRIPLE-HELIX FORMATION [J].
BEAL, PA ;
DERVAN, PB .
SCIENCE, 1991, 251 (4999) :1360-1363
[5]   COMPARATIVE CIRCULAR-DICHROISM AND FLUORESCENCE STUDIES OF OLIGODEOXYRIBONUCLEOTIDE AND OLIGODEOXYRIBONUCLEOSIDE METHYLPHOSPHONATE PYRIMIDINE STRANDS IN DUPLEX AND TRIPLEX FORMATION [J].
CALLAHAN, DE ;
TRAPANE, TL ;
MILLER, PS ;
TSO, POP ;
KAN, LS .
BIOCHEMISTRY, 1991, 30 (06) :1650-1655
[6]   OLIGONUCLEOTIDE INTERACTIONS .3. CIRCULAR DICHROISM STUDIES OF CONFORMATION OF DEOXYOLIGONUCLEOTIDES [J].
CANTOR, CR ;
WARSHAW, MM ;
SHAPIRO, H .
BIOPOLYMERS, 1970, 9 (09) :1059-&
[7]   Triplex DNA: Fundamentals, advances, and potential applications for gene therapy [J].
Chan, PP ;
Glazer, PM .
JOURNAL OF MOLECULAR MEDICINE-JMM, 1997, 75 (04) :267-282
[8]   Alternate strand recognition of double-helical DNA by (T,G)-containing oligonucleotides in the presence of a triple helix-specific ligand [J].
deBizemont, T ;
DuvalValentin, G ;
Sun, JS ;
Bisagni, E ;
Garestier, T ;
Helene, C .
NUCLEIC ACIDS RESEARCH, 1996, 24 (06) :1136-1143
[9]   NMR-STUDIES OF DNA (R+)N.(Y-)N.(Y+)N TRIPLE HELICES IN SOLUTION - IMINO AND AMINO PROTON MARKERS OF T.A.T AND C.G.C+ BASE-TRIPLE FORMATION [J].
DELOSSANTOS, C ;
ROSEN, M ;
PATEL, D .
BIOCHEMISTRY, 1989, 28 (18) :7282-7289
[10]  
ESCUDE C, 1992, CR ACAD SCI III-VIE, V315, P521