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Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment

Тип публикацииJournal Article
Дата публикации2021-07-16
SCImago Q1
WOS Q2
БС1
SJR0.915
CiteScore10.3
Impact factor5.1
ISSN14203049
Organic Chemistry
Drug Discovery
Physical and Theoretical Chemistry
Pharmaceutical Science
Molecular Medicine
Analytical Chemistry
Chemistry (miscellaneous)
Краткое описание

A series of tripeptides TrpTrpPhe (1), TrpTrpTyr (2), and TrpTrpTyr[CH2N(CH3)2] (3) were synthesized, and their photophysical properties and non-covalent binding to polynucleotides were investigated. Fluorescent Trp residues (quantum yield in aqueous solvent ΦF = 0.03–0.06), allowed for the fluorometric study of non-covalent binding to DNA and RNA. Moreover, high and similar affinities of 2×HCl and 3×HCl to all studied double stranded (ds)-polynucleotides were found (logKa = 6.0–6.8). However, the fluorescence spectral responses were strongly dependent on base pair composition: the GC-containing polynucleotides efficiently quenched Trp emission, at variance to AT- or AU-polynucleotides, which induced bisignate response. Namely, addition of AT(U) polynucleotides at excess over studied peptide induced the quenching (attributed to aggregation in the grooves of polynucleotides), whereas at excess of DNA/RNA over peptide the fluorescence increase of Trp was observed. The thermal denaturation and circular dichroism (CD) experiments supported peptides binding within the grooves of polynucleotides. The photogenerated quinone methide (QM) reacts with nucleophiles giving adducts, as demonstrated by the photomethanolysis (quantum yield ΦR = 0.11–0.13). Furthermore, we have demonstrated photoalkylation of AT oligonucleotides by QM, at variance to previous reports describing the highest reactivity of QMs with the GC reach regions of polynucleotides. Our investigations show a proof of principle that QM precursor can be imbedded into a peptide and used as a photochemical switch to enable alkylation of polynucleotides, enabling further applications in chemistry and biology.

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Russian Chemical Bulletin
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Molecules
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Springer Nature
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MDPI
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Erben A. et al. Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment // Molecules. 2021. Vol. 26. No. 14. p. 4315.
ГОСТ со всеми авторами (до 50) Скопировать
Erben A., Sviben I., Mihaljević B., Piantanida I., Basarić N. Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment // Molecules. 2021. Vol. 26. No. 14. p. 4315.
RIS |
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TY - JOUR
DO - 10.3390/molecules26144315
UR - https://doi.org/10.3390/molecules26144315
TI - Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment
T2 - Molecules
AU - Erben, Antonija
AU - Sviben, Igor
AU - Mihaljević, Branka
AU - Piantanida, Ivo
AU - Basarić, Nikola
PY - 2021
DA - 2021/07/16
PB - MDPI
SP - 4315
IS - 14
VL - 26
PMID - 34299591
SN - 1420-3049
ER -
BibTex |
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@article{2021_Erben,
author = {Antonija Erben and Igor Sviben and Branka Mihaljević and Ivo Piantanida and Nikola Basarić},
title = {Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment},
journal = {Molecules},
year = {2021},
volume = {26},
publisher = {MDPI},
month = {jul},
url = {https://doi.org/10.3390/molecules26144315},
number = {14},
pages = {4315},
doi = {10.3390/molecules26144315}
}
MLA
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Erben, Antonija, et al. “Non-Covalent Binding of Tripeptides-Containing Tryptophan to Polynucleotides and Photochemical Deamination of Modified Tyrosine to Quinone Methide Leading to Covalent Attachment.” Molecules, vol. 26, no. 14, Jul. 2021, p. 4315. https://doi.org/10.3390/molecules26144315.
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