
Previously, we have developed a highly efficient and selective cross-linking reaction to the cytosine base at the target site of DNA using the oligodeoxynucleotide (ODN) containing 2-amino-6-vinylpurine derivative (1). Based on these results, we have designed the novel cross-linking agents, which are pyrimidine derivatives having two hydrogen bond sites and vinyl group as a reactive moiety. In this paper, we wish to report the results to investigate on the synthesis of the pyrimidine derivatives having potential as novel cross-linking agents.
The approach to the synthesis of 5'-lipophilic conjugates of functional nucleic acids based on a combination of H-phosphonate and phosphoramidite methods is presented.
Twisted intercalating nucleic acids form stable triplexes with polypurine tracts of double-stranded DNA. Their affinity depends on their length, primary structure and base contents, parallel or antiparallel orientation of oligonucleotides respectively to DNA, number of TINA residues and their relative positions. Basing on parallel CT, GT and antiparallel GT triplex-forming 16-mer oligonucleotides targeted to polypurine tract of HIV proviral DNA, we synthesized eleven different oligonucleotides with 2-4 TINA insertions in different positions. Studies of their interaction with target duplex by gel shift, fluorescence spectroscopy, circular dichroism and thermal denaturation demonstrated that antiparallel GT oligonucleotides form more stable triplexes than parallel TC or TG ones. Two best candidates were selected for the further studies. The first one (5'-AGGGxGGGTTTxTGTTTT-3', Kd = 219 nM) contains only two TINA insertions and does not aggregate in non-denaturing conditions, in contrast to majority of other oligonucleotides.
Synthesis of 4'-C-ethynyl-2'-deoxy-4'-thionucleosides was carried out based on electrophilic glycosidation using 4-C-ethynyl-4-thiofuranoid glycal. The glycal 15 was prepared as follows: oxidative cleavage of 6 with Pb(OAc)(4) forming the aldehyde 7, aldol reaction of 7 and subsequent silylation to furnish 8, conversion of the formyl group of 8 into an ethynyl group, and finally beta-elimination of the resulting 14 with t-BuLi. The glycosyl donor 16 was prepared by silyl-protection of 15. Electrophilic glycosidation was performed between silylated N(4)-acetylcytosine and 16 in the presence of N-iodosuccinimide. Radical-mediated removal of the introduced iodine atom followed by deprotection gave 4'-C-ethynyl-2'-deoxy-4'-thiocytidine (18).
Synthesis of 4'-C-ethynyl-2'-deoxy-4'-thionucleosides was carried out based on electrophilic glycosidation using 4-C-ethynyl-4-thiofuranoid glycal. The glycal 15 was prepared as follows: oxidative cleavage of 6 with Pb(OAc)(4) forming the aldehyde 7, aldol reaction of 7 and subsequent silylation to furnish 8, conversion of the formyl group of 8 into an ethynyl group, and finally beta-elimination of the resulting 14 with t-BuLi. The glycosyl donor 16 was prepared by silyl-protection of 15. Electrophilic glycosidation was performed between silylated N(4)-acetylcytosine and 16 in the presence of N-iodosuccinimide. Radical-mediated removal of the introduced iodine atom followed by deprotection gave 4'-C-ethynyl-2'-deoxy-4'-thiocytidine (18).
Mouse telomeric DNA sequence, Tel3.5: 5'-AGGG(T TAGGG)(3)-3', has the ability to form antiparallel tetraplex structure in the presence of Na(+). We examined the interaction between the antiparallel tetraplex structure of Tel3.5 and each of two single-stranded telomeric DNA-binding domains of mouse telomere binding protein Pot1, mPot1OB1 and mPot1OB2. The antiparallel tetraplex of Tel3.5 became unfolded upon the interaction with mPot1OB1. On the other hand, no significant structural change of the antiparallel tetraplex of Tel3.5 was observed upon the interaction with mPot1OB2. Considering that the antiparallel tetraplex inhibits telomerase-mediated telomere elongation, we conclude that the ability of mPot1OB1 to unfold the antiparallel tetraplex of the mouse telomeric DNA is required for telomerase-mediated telomere elongation.
Recently, in hammerhead ribozymes, newly identified loop-loop interaction was found to be important for their activation. Therefore, we chemically synthesized a hammerhead ribozyme with this extra loop sequences and its mutant ribozymes, as well as their substrate RNA strands in order to clarify their cleavable sequences. After purification with an anion exchange column chromatography, we were able to obtain 44mer and 20mer RNA.
We synthesized C8-vinylpyrene-substituted 2'-deoxyguanosine (VPy)G and studied the photoinduced reversible E-Z isomerization. When E-isomer was irradiated with visible light (>420 nm), E- to Z-isomerization took place very rapidly, while upon irradiation with UV-light ( approximately 365 nm), Z-isomer was converted to E-isomer. When Z-isomer was illuminated with 365- 400 nm light, no fluorescence was observed, while E-isomer showed a very strong fluorescence emission, indicating that (VPy)G could be a useful fluorescence switching molecule.
A variety of 2'-O-arylnucleosides with functional groups were synthesized by the microwave-assisted reaction of 2,2'-anhydrouridine with phenol derivatives. The 2'-O-arylnucleosides thus obtained were incorporated into 2'-O-Me RNA or DNA oligomers and their hybridization properties were studied by T(m) measurements.
We developed a new artificial DNA triplex triad which has the adenine nucleobase in the first strand. This triplex triad (A-psi-C*) is composed of adenine, pseudouridine and 5-sudstituted cytosine as the 1st, 2nd and 3rd strand nucleobases, respectively. The molecular design and synthesis of the nucleobases for the 2nd and 3rd strand of the triplex are also described.
Guanine-rich DNA sequences form unique three-dimensional conformation known as G-quadruplexes (G-q). G-q structures have been found in telomere and in some oncogene promoter. Recently, it was suggested that G-q showed some biological activities including telomere shortening and transcriptional regulation. In this paper, we synthesized selective G-q binders and evaluated of their biological activities.
A ribonucleopeptide aptamer against ATP was obtained by the in vitro selection method. This ribonucleopeptide aptamer comprises a randomized and selected RNA linked to the Rev-responsive element (RRE) in complex with a peptide derived from an HIV Rev protein. The ribonucleopeptide aptamer selectively binds ATP in the presence of the Rev-derived peptide, exclusively. Here, we present the structural analysis of the ribonucleopeptide aptamer with NMR. The secondary structure of the RNA part of the aptamer, the selected RNA region linked to RRE, in the presence of the Rev-derived peptide was determined in an Ado-bound form. G:A and G:G base pairs, together with canonical base pairs, are formed in a duplex of RRE. The selected RNA region plays a crucial role in target binding. It has been found that the two U residues located in the selected RNA region trap Ado through the formation of the U:A:U base triple. This was directly confirmed by the HNN-COSY experiment through the detection of spin-spin couplings across the hydrogen bonds for Watson-Crick and Hoogsteen A:U base pairs in the U:A:U base triple.
Synthetic short-interfering RNA (siRNA) has been a powerful tool to control gene expression. Chemical modification of the 3'-overhang regions of siRNA with amide-linked RNAs improved the exonuclease resistance and was compatible with RNAi function in cultured cells. To improve endonuclease resistance of the siRNA having amide-linked RNA modification at the 3'-terminal regions, we designed and synthesized new modified double stranded RNAs (dsRNAs) the 3'-terminal regions of which were modified with amide-linked RNA moieties and formed duplex structures with the complementary unmodified RNA moieties. The modified dsRNAs showed remarkable increase of stability in cell culture medium containing 10% serum in comparison with the modified siRNAs having 3'-overhang regions of amide-linked RNAs. The result suggests that the resistance of siRNA against endonuclease as well as 3'-exonuclease in serum can be enhanced by the introduction of the structures of amide-linked RNA:unmodified RNA duplexes at both ends of siRNA.
Cap analogues having differently methylated adenosine at 2' and N6 position, m(7)G(5')pppApG which is existed in plant mRNA (plant type), m(7)G(5')pppAmpG (animal type), m(7)G(5')pppm(6)AmpG (mammalian type) and m(7)G(5')pppm(6)ApG (unnnatural type), were synthesized. In order to clarify the function of these methyl groups, luciferase mRNAs having differently methylated adenosine at the 5'-terminus, were successfully prepared by in vitro transcription using the synthesized cap anologues. As the preliminary results of in vitro translation with rabbit reticulocyte lysate and luciferase assay, luciferase mRNA having the mammalian type of cap structure, m(7)G(5')pppm(6)AmpG, was most efficiently translated. In the case of m(7)G(5')pppApG (plant type) efficiency of translation was lowest.
RsgA is a unique GTP hydrolytic protein, in which the GTPase activity is significantly enhanced by the small ribosomal subunit. Depletion of RsgA causes slow cell growth as well as defects in the subunit assembly of the ribosome and the 16S rRNA processing, suggesting its involvement in the maturation of the small subunit. Several antibiotics bound to the decoding center of the small subunit inhibited the ribosome-dependent GTPase activity of RsgA. Our recent study using chemical modification indicates that the binding of RsgA induces conformational changes around the A site, P site, and helix 44. These results suggest that RsgA is involved in the maturation step of the decoding center of the small subunit of ribosome. Here, we also show a physiological role of RsgA under stress condition.
A novel fluorescent oligonucleotide probe containing pyrene-labeled C8 alkylamino-substituted 2'-deoxyguanosine and a practically useful 3'- and 5'- ends-free self-quenched molecular beacons (MB) were designed. A unique MB detectable by pyrene excimer fluorescence was also demonstrated.
With an aim to synthesize 4'-substituted cordycepins, the 4'-phenylthio precursor 4 was prepared from adenosine through an electrophilic addition to the 3',4'-unsaturated derivative 2 by using NIS/PhSH system. Nucleophilic substitution of 4 with a series of alcohols in the presence of NBS gave the respective 4'-alpha-alkoxy cordycepins 6 as the major stereoisomer. Use of DAST, in stead of alcohol in this reaction, gave the 4'-fluoro analogue 7. The 4'-sulfone derivative 8 obtained by m-CPBA oxidation of 4 was employed for the reaction with organoaluminum reagents. These reactions furnished various types of the 4'-carbon-substituted cordycepins 9.
We have successfully developed a new method for photoregulation of G-quadruplex formation using cis-trans photoisomerization of the photochromic nucleobase (8FV)G. Our photo-controllable quadruplexes can be switched between a very stable quadruplex state and a non-structured state in a straightforward and reversible fashion. We also demonstrated reversibly control binding of a G-quadruplex aptamer to thrombin.