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Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates

Potent knockdown of pathogenic RNA in vivo is an urgent health need unmet by both small-molecule and biologic drugs. ‘Smart’ supramolecular assembly of catalysts offers precise recognition and potent destruction of targeted RNA, hitherto not found in nature. Peptidyl-oligonucleotide ribonucleases ar...

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Autores principales: Staroseletz, Yaroslav, Amirloo, Bahareh, Williams, Aled, Lomzov, Alexander, Burusco, Kepa K, Clarke, David J, Brown, Tom, Zenkova, Marina A, Bichenkova, Elena V
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7641753/
https://www.ncbi.nlm.nih.gov/pubmed/33010175
http://dx.doi.org/10.1093/nar/gkaa780
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author Staroseletz, Yaroslav
Amirloo, Bahareh
Williams, Aled
Lomzov, Alexander
Burusco, Kepa K
Clarke, David J
Brown, Tom
Zenkova, Marina A
Bichenkova, Elena V
author_facet Staroseletz, Yaroslav
Amirloo, Bahareh
Williams, Aled
Lomzov, Alexander
Burusco, Kepa K
Clarke, David J
Brown, Tom
Zenkova, Marina A
Bichenkova, Elena V
author_sort Staroseletz, Yaroslav
collection PubMed
description Potent knockdown of pathogenic RNA in vivo is an urgent health need unmet by both small-molecule and biologic drugs. ‘Smart’ supramolecular assembly of catalysts offers precise recognition and potent destruction of targeted RNA, hitherto not found in nature. Peptidyl-oligonucleotide ribonucleases are here chemically engineered to create and attack bulge-loop regions upon hybridization to target RNA. Catalytic peptide was incorporated either via a centrally modified nucleotide (Type 1) or through an abasic sugar residue (Type 2) within the RNA-recognition motif to reveal striking differences in biological performance and strict structural demands of ribonuclease activity. None of the Type 1 conjugates were catalytically active, whereas all Type 2 conjugates cleaved RNA target in a sequence-specific manner, with up to 90% cleavage from 5-nt bulge-loops (BC5-α and BC5L-β anomers) through multiple cuts, including in folds nearby. Molecular dynamics simulations provided structural explanation of accessibility of the RNA cleavage sites to the peptide with adoption of an ‘in-line’ attack conformation for catalysis. Hybridization assays and enzymatic probing with RNases illuminated how RNA binding specificity and dissociation after cleavage can be balanced to permit turnover of the catalytic reaction. This is an essential requirement for inactivation of multiple copies of disease-associated RNA and therapeutic efficacy.
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spelling pubmed-76417532020-11-10 Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates Staroseletz, Yaroslav Amirloo, Bahareh Williams, Aled Lomzov, Alexander Burusco, Kepa K Clarke, David J Brown, Tom Zenkova, Marina A Bichenkova, Elena V Nucleic Acids Res Chemical Biology and Nucleic Acid Chemistry Potent knockdown of pathogenic RNA in vivo is an urgent health need unmet by both small-molecule and biologic drugs. ‘Smart’ supramolecular assembly of catalysts offers precise recognition and potent destruction of targeted RNA, hitherto not found in nature. Peptidyl-oligonucleotide ribonucleases are here chemically engineered to create and attack bulge-loop regions upon hybridization to target RNA. Catalytic peptide was incorporated either via a centrally modified nucleotide (Type 1) or through an abasic sugar residue (Type 2) within the RNA-recognition motif to reveal striking differences in biological performance and strict structural demands of ribonuclease activity. None of the Type 1 conjugates were catalytically active, whereas all Type 2 conjugates cleaved RNA target in a sequence-specific manner, with up to 90% cleavage from 5-nt bulge-loops (BC5-α and BC5L-β anomers) through multiple cuts, including in folds nearby. Molecular dynamics simulations provided structural explanation of accessibility of the RNA cleavage sites to the peptide with adoption of an ‘in-line’ attack conformation for catalysis. Hybridization assays and enzymatic probing with RNases illuminated how RNA binding specificity and dissociation after cleavage can be balanced to permit turnover of the catalytic reaction. This is an essential requirement for inactivation of multiple copies of disease-associated RNA and therapeutic efficacy. Oxford University Press 2020-10-03 /pmc/articles/PMC7641753/ /pubmed/33010175 http://dx.doi.org/10.1093/nar/gkaa780 Text en © The Author(s) 2020. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemical Biology and Nucleic Acid Chemistry
Staroseletz, Yaroslav
Amirloo, Bahareh
Williams, Aled
Lomzov, Alexander
Burusco, Kepa K
Clarke, David J
Brown, Tom
Zenkova, Marina A
Bichenkova, Elena V
Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title_full Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title_fullStr Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title_full_unstemmed Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title_short Strict conformational demands of RNA cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
title_sort strict conformational demands of rna cleavage in bulge-loops created by peptidyl-oligonucleotide conjugates
topic Chemical Biology and Nucleic Acid Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7641753/
https://www.ncbi.nlm.nih.gov/pubmed/33010175
http://dx.doi.org/10.1093/nar/gkaa780
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