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An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces

Single molecule analysis of individual enzymes can require oriented immobilization of the subject molecules on a detection surface. As part of a technology development project for single molecule DNA sequencing, we faced the multiple challenges of immobilizing both a DNA polymerase and its DNA templ...

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Autores principales: Williams, John G. K., Steffens, David L., Anderson, Jon P., Urlacher, Teresa M., Lamb, Donald T., Grone, Daniel L., Egelhoff, Jolene C.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2566871/
https://www.ncbi.nlm.nih.gov/pubmed/18723573
http://dx.doi.org/10.1093/nar/gkn531
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author Williams, John G. K.
Steffens, David L.
Anderson, Jon P.
Urlacher, Teresa M.
Lamb, Donald T.
Grone, Daniel L.
Egelhoff, Jolene C.
author_facet Williams, John G. K.
Steffens, David L.
Anderson, Jon P.
Urlacher, Teresa M.
Lamb, Donald T.
Grone, Daniel L.
Egelhoff, Jolene C.
author_sort Williams, John G. K.
collection PubMed
description Single molecule analysis of individual enzymes can require oriented immobilization of the subject molecules on a detection surface. As part of a technology development project for single molecule DNA sequencing, we faced the multiple challenges of immobilizing both a DNA polymerase and its DNA template together in an active, stable complex capable of highly processive DNA synthesis on a nonstick surface. Here, we report the genetic modification of the archaeal DNA polymerase 9°N in which two biotinylated peptide ‘legs’ are inserted at positions flanking the DNA-binding cleft. Streptavidin binding on either side of the cleft both traps the DNA template in the polymerase and orients the complex on a biotinylated surface. We present evidence that purified polymerase–DNA–streptavidin complexes are active both in solution and immobilized on a surface. Processivity is improved from <20 nt in the unmodified polymerase to several thousand nucleotides in the engineered complexes. High-molecular weight DNA synthesized by immobilized complexes is observed moving above the surface even as it remains tethered to the polymerase. Pre-formed polymerase–DNA–streptavidin complexes can be stored frozen and subsequently thawed without dissociation or loss of activity, making them convenient for use in single molecule analysis.
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spelling pubmed-25668712008-10-17 An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces Williams, John G. K. Steffens, David L. Anderson, Jon P. Urlacher, Teresa M. Lamb, Donald T. Grone, Daniel L. Egelhoff, Jolene C. Nucleic Acids Res Methods Online Single molecule analysis of individual enzymes can require oriented immobilization of the subject molecules on a detection surface. As part of a technology development project for single molecule DNA sequencing, we faced the multiple challenges of immobilizing both a DNA polymerase and its DNA template together in an active, stable complex capable of highly processive DNA synthesis on a nonstick surface. Here, we report the genetic modification of the archaeal DNA polymerase 9°N in which two biotinylated peptide ‘legs’ are inserted at positions flanking the DNA-binding cleft. Streptavidin binding on either side of the cleft both traps the DNA template in the polymerase and orients the complex on a biotinylated surface. We present evidence that purified polymerase–DNA–streptavidin complexes are active both in solution and immobilized on a surface. Processivity is improved from <20 nt in the unmodified polymerase to several thousand nucleotides in the engineered complexes. High-molecular weight DNA synthesized by immobilized complexes is observed moving above the surface even as it remains tethered to the polymerase. Pre-formed polymerase–DNA–streptavidin complexes can be stored frozen and subsequently thawed without dissociation or loss of activity, making them convenient for use in single molecule analysis. Oxford University Press 2008-10 2008-08-22 /pmc/articles/PMC2566871/ /pubmed/18723573 http://dx.doi.org/10.1093/nar/gkn531 Text en © 2008 The Author(s) http://creativecommons.org/licenses/by-nc/2.0/uk/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.0/uk/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Methods Online
Williams, John G. K.
Steffens, David L.
Anderson, Jon P.
Urlacher, Teresa M.
Lamb, Donald T.
Grone, Daniel L.
Egelhoff, Jolene C.
An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title_full An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title_fullStr An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title_full_unstemmed An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title_short An artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–DNA complexes to surfaces
title_sort artificial processivity clamp made with streptavidin facilitates oriented attachment of polymerase–dna complexes to surfaces
topic Methods Online
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2566871/
https://www.ncbi.nlm.nih.gov/pubmed/18723573
http://dx.doi.org/10.1093/nar/gkn531
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