The rate and extent of binding of [PtCl2(hpip)] (hpip=homopiperazine-1,4-diazacycloheptane) and cis-[PtCl2(NH3)2] to calf thymus DNA was measured using atomic absorption spectroscopy and it was found that [PtCl2(hpip)] bound both more rapidly and to a greater extent than did cis-[PtCl2(NH3)2]. The binding of [PtCl2(hpip)] and [PtCl2(en)] (en=ethane-1,2-diamine) to salmon sperm DNA and to synthetic, self-complementary 10-base-pair and 52-base-pair oligonucleotides was studied using enzymatic digestion and HPLC analysis of the products. [PtCl2(hpip)] forms approximately two-fold fewer GpG and ApG intrastrand adducts and concomitantly more monofunctional adducts than does [PtCl2(en)]. In the case of [PtCl2(hpip)], two GpG adducts, corresponding to the different orientations of the hpip ligand with respect to the DNA, were observed in a 1:3.3 ratio. The minor product corresponds to the orientation in which the bulkier propylene chain of the hpip ligand is adjacent to, and makes close contacts with, the floor of the major groove. When the reaction was repeated with a synthetic oligonucleotide decamer duplex, the ratio of the two forms was approximately 1:1.9 and with the 52-mer duplex it was 1:2.4, revealing an apparent systematic dependence of stereoselectivity on nucleotide size. Computer modeling of the two adducts formed by [PtCl2(hpip)] and those formed by [PtCl2(en)] and cis-[PtCl2(NH3)2] revealed that non-bonded interactions between the hpip ligand and the DNA were probably responsible for both the decreased proportion of GpG adducts formed by [PtCl2(hpip)] and the stereoselectivity exhibited in the formation of these adducts. This is the first case in which the stereoselectivity can be ascribed to steric factors alone.
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http://dx.doi.org/10.1007/s007750100230 | DOI Listing |
Inorg Chem
January 2024
College of Chemistry and Environmental Science, Qujing Normal University, Qujing 655011, P. R. China.
In this paper, the synthesis, photophysics, electrochemistry, and intramolecular energy transfer of two series of dinuclear and tetranuclear metallic complexes [(bpy)MM(bpy)] ( = 1, 2; M = Ru, M = Ru/Os; M = Os, M = Ru) and {[Ru(bpy)()]Ru} based on new heteroditopic bridging ligands ( = 6-phenyl-4-Hpip-2-2'-bipyridine, = 6-Hpip-2-2'-bipyridine, Hpip = 2-phenyl-1-imidazo[4,5-][1,10]phenanthroline) are reported. The dimetallic and tetrametallic complexes exhibit rich redox properties with successive reversible metal-centered oxidation and ligand-centered reduction couples. All complexes display intense absorption in the entire ultraviolet-visible spectral regions.
View Article and Find Full Text PDFBioorg Chem
June 2023
Key Lab of Environment-friendly Chemistry and Application in Ministry of Education, XiangtanUniversity, Xiangtan 411105, Peoples Republic of China; Key Laboratory for Green Organic Synthesis and Application of Hunan Province, Xiangtan University, Xiangtan 411105, Peoples Republic of China. Electronic address:
To further explore the binding properties of Ru(Ⅱ) polypyridine complexes with RNA, three Ru(Ⅱ) complexes [Ru(phen)(PIP)] (Ru1), [Ru(phen)(p-HPIP)] (Ru2), and [Ru(phen)(m- HPIP)] (Ru3) have been synthesized and characterized in this work. The binding properties of three Ru(Ⅱ) complexes with RNA duplex poly(A)•poly(U) have been investigated by spectral and viscosity experiments. These studies all support that these three Ru(Ⅱ) complexes bind to poly RNA duplex poly(A)•poly(U) by intercalation, and Ru1 without substituents has a stronger binding affinity for poly(A)•poly(U).
View Article and Find Full Text PDFMolecules
February 2022
Departament de Química, Universitat Autònoma de Barcelona, 08193 Barcelona, Spain.
Aggregation between discrete molecules is an essential factor to prevent aggregation-caused quenching (ACQ). Indeed, functional groups capable of generating strong hydrogen bonds are likely to assemble and cause ACQ and photoinduced electron transfer processes. Thus, it is possible to compare absorption and emission properties by incorporating two ligands with a different toward intra- and intermolecular interactions that can induce a specific structural arrangement.
View Article and Find Full Text PDFJ Inorg Biochem
December 2020
College of Chemistry, Xiangtan University, Xiangtan 411105, People's Republic of China.
The association of two ruthenium(II) complexes [Ru(phen)(o-HPIP)] (Ru1; phen = 1,10-phenanthroline, o-HPIP = 2-(2-hydroxyphenyl)-imidazo[4,5-f][1,10] phenanthroline) and [Ru(phen)(m-HPIP)] (Ru2; m-HPIP = 2-(3-hydroxyphenyl)-imidazo[4,5-f][1,10]phenan- throline) with the RNA poly(U)·poly(A)⁎poly(U) triplex has been investigated by spectrophotometric titrations and melting experiments in this work. All experimental data reveal an intercalative triplex-binding mode of the two complexes, whereas the binding constant for Ru1 is significantly higher than that for Ru2. Circular dichroism spectroscopic investigations show that the two complexes could bind to the chiral environment of the triplex, but the triplex perturbation effects induced by Ru1 are more marked.
View Article and Find Full Text PDFActa Crystallogr B Struct Sci Cryst Eng Mater
October 2020
Institute of Low Temperature and Structure Research, Polish Academy of Science, PO Box 1410, Wroclaw, 50950, Poland.
Four new praseodymium(III) metal-organic compounds varying in dimensionality from 0D to 3D have been designed and synthesized based on N-heterocyclic polycarboxylic acids, including pyridine-2,6-dicarboxylic acid (Hpydc) and pyrazine-2,3-dicarboxylic acid (Hpzdc). Altering the concentration of piperazine (pip, ancillary ligand) enables control over the dimensionality of the compound by switching between the 0D [Hpip][Hpip][Pr(pydc)]·4HO (I) and the 1D {[Pr(pydc)(Hpydc)(HO)]·4HO} (II) coordination polymer (CP). Upon replacing Hpydc with Hpzdc, CP II is converted to the 2D CP [Pr(pzdc)(Hpzdc)(HO)] (III) and using the metalloligand [Zn(Hpzdc)(HO)], the 3D heterometallic CP {[PrZn(pzdc)(HO)]·2HO} (IV) is formed.
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