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Versatile Synthesis and Rational Design of Caged Morpholinos

[Image: see text] Embryogenesis is regulated by genetic programs that are dynamically executed in a stereotypic manner, and deciphering these molecular mechanisms requires the ability to control embryonic gene function with similar spatial and temporal precision. Chemical technologies can enable suc...

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Autores principales: Ouyang, Xiaohu, Shestopalov, Ilya A., Sinha, Surajit, Zheng, Genhua, Pitt, Cameron L. W., Li, Wen-Hong, Olson, Andrew J., Chen, James K.
Formato: Texto
Lenguaje:English
Publicado: American Chemical Society 2009
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2745229/
https://www.ncbi.nlm.nih.gov/pubmed/19708646
http://dx.doi.org/10.1021/ja809933h
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author Ouyang, Xiaohu
Shestopalov, Ilya A.
Sinha, Surajit
Zheng, Genhua
Pitt, Cameron L. W.
Li, Wen-Hong
Olson, Andrew J.
Chen, James K.
author_facet Ouyang, Xiaohu
Shestopalov, Ilya A.
Sinha, Surajit
Zheng, Genhua
Pitt, Cameron L. W.
Li, Wen-Hong
Olson, Andrew J.
Chen, James K.
author_sort Ouyang, Xiaohu
collection PubMed
description [Image: see text] Embryogenesis is regulated by genetic programs that are dynamically executed in a stereotypic manner, and deciphering these molecular mechanisms requires the ability to control embryonic gene function with similar spatial and temporal precision. Chemical technologies can enable such genetic manipulations, as exemplified by the use of caged morpholino (cMO) oligonucleotides to inactivate genes in zebrafish and other optically transparent organisms with spatiotemporal control. Here we report optimized methods for the design and synthesis of hairpin cMOs incorporating a dimethoxynitrobenzyl (DMNB)-based bifunctional linker that permits cMO assembly in only three steps from commercially available reagents. Using this simplified procedure, we have systematically prepared cMOs with differing structural configurations and investigated how the in vitro thermodynamic properties of these reagents correlate with their in vivo activities. Through these studies, we have established general principles for cMO design and successfully applied them to several developmental genes. Our optimized synthetic and design methodologies have also enabled us to prepare a next-generation cMO that contains a bromohydroxyquinoline (BHQ)-based linker for two-photon uncaging. Collectively, these advances establish the generality of cMO technologies and will facilitate the application of these chemical probes in vivo for functional genomic studies.
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spelling pubmed-27452292009-09-16 Versatile Synthesis and Rational Design of Caged Morpholinos Ouyang, Xiaohu Shestopalov, Ilya A. Sinha, Surajit Zheng, Genhua Pitt, Cameron L. W. Li, Wen-Hong Olson, Andrew J. Chen, James K. J Am Chem Soc [Image: see text] Embryogenesis is regulated by genetic programs that are dynamically executed in a stereotypic manner, and deciphering these molecular mechanisms requires the ability to control embryonic gene function with similar spatial and temporal precision. Chemical technologies can enable such genetic manipulations, as exemplified by the use of caged morpholino (cMO) oligonucleotides to inactivate genes in zebrafish and other optically transparent organisms with spatiotemporal control. Here we report optimized methods for the design and synthesis of hairpin cMOs incorporating a dimethoxynitrobenzyl (DMNB)-based bifunctional linker that permits cMO assembly in only three steps from commercially available reagents. Using this simplified procedure, we have systematically prepared cMOs with differing structural configurations and investigated how the in vitro thermodynamic properties of these reagents correlate with their in vivo activities. Through these studies, we have established general principles for cMO design and successfully applied them to several developmental genes. Our optimized synthetic and design methodologies have also enabled us to prepare a next-generation cMO that contains a bromohydroxyquinoline (BHQ)-based linker for two-photon uncaging. Collectively, these advances establish the generality of cMO technologies and will facilitate the application of these chemical probes in vivo for functional genomic studies. American Chemical Society 2009-08-26 2009-09-23 /pmc/articles/PMC2745229/ /pubmed/19708646 http://dx.doi.org/10.1021/ja809933h Text en Copyright © 2009 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Ouyang, Xiaohu
Shestopalov, Ilya A.
Sinha, Surajit
Zheng, Genhua
Pitt, Cameron L. W.
Li, Wen-Hong
Olson, Andrew J.
Chen, James K.
Versatile Synthesis and Rational Design of Caged Morpholinos
title Versatile Synthesis and Rational Design of Caged Morpholinos
title_full Versatile Synthesis and Rational Design of Caged Morpholinos
title_fullStr Versatile Synthesis and Rational Design of Caged Morpholinos
title_full_unstemmed Versatile Synthesis and Rational Design of Caged Morpholinos
title_short Versatile Synthesis and Rational Design of Caged Morpholinos
title_sort versatile synthesis and rational design of caged morpholinos
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2745229/
https://www.ncbi.nlm.nih.gov/pubmed/19708646
http://dx.doi.org/10.1021/ja809933h
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