Aptamer-modified nanomaterials: Principles and applications

Publikation: Beitrag in FachzeitschriftÜbersichtsarbeitForschungPeer-Review

Autorschaft

Organisationseinheiten

Externe Organisationen

  • Technion-Israel Institute of Technology
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Aufsatznummer20160012
FachzeitschriftBioNanoMaterials
Jahrgang18
Ausgabenummer1-2
PublikationsstatusVeröffentlicht - 31 Aug. 2016

Abstract

Aptamers are promising alternative binders that can substitute antibodies in various applications. Due to the advantages of aptamers, namely their high affinity, specificity and stability, along with the benefits originating from the chemical synthesis of aptamers, they have attracted attention in various applications including their use on nanostructured material. This necessitates the immobilization of aptamers on a solid support. Since aptamer immobilization may interfere with its binding properties, the immobilization of aptamers has to be investigated and optimized. Within this review, we give general insights into the principles and factors controlling the binding affinity of immobilized aptamers. Specific features of aptamer immobilization on nanostructured surfaces and nanoparticles are highlighted and a brief overview of applications of aptamer-modified nanostructured materials is given.

ASJC Scopus Sachgebiete

Zitieren

Aptamer-modified nanomaterials: Principles and applications. / Urmann, Katharina; Modrejewski, Julia; Scheper, Thomas et al.
in: BioNanoMaterials, Jahrgang 18, Nr. 1-2, 20160012, 31.08.2016.

Publikation: Beitrag in FachzeitschriftÜbersichtsarbeitForschungPeer-Review

Urmann, K, Modrejewski, J, Scheper, T & Walter, JG 2016, 'Aptamer-modified nanomaterials: Principles and applications', BioNanoMaterials, Jg. 18, Nr. 1-2, 20160012. https://doi.org/10.1515/bnm-2016-0012
Urmann, K., Modrejewski, J., Scheper, T., & Walter, J. G. (2016). Aptamer-modified nanomaterials: Principles and applications. BioNanoMaterials, 18(1-2), Artikel 20160012. https://doi.org/10.1515/bnm-2016-0012
Urmann K, Modrejewski J, Scheper T, Walter JG. Aptamer-modified nanomaterials: Principles and applications. BioNanoMaterials. 2016 Aug 31;18(1-2):20160012. doi: 10.1515/bnm-2016-0012
Urmann, Katharina ; Modrejewski, Julia ; Scheper, Thomas et al. / Aptamer-modified nanomaterials: Principles and applications. in: BioNanoMaterials. 2016 ; Jahrgang 18, Nr. 1-2.
Download
@article{33916d5148be4d7ba173014b200c2e12,
title = "Aptamer-modified nanomaterials:: Principles and applications",
abstract = "Aptamers are promising alternative binders that can substitute antibodies in various applications. Due to the advantages of aptamers, namely their high affinity, specificity and stability, along with the benefits originating from the chemical synthesis of aptamers, they have attracted attention in various applications including their use on nanostructured material. This necessitates the immobilization of aptamers on a solid support. Since aptamer immobilization may interfere with its binding properties, the immobilization of aptamers has to be investigated and optimized. Within this review, we give general insights into the principles and factors controlling the binding affinity of immobilized aptamers. Specific features of aptamer immobilization on nanostructured surfaces and nanoparticles are highlighted and a brief overview of applications of aptamer-modified nanostructured materials is given.",
keywords = "applications, aptamer, immobilization, nanomaterial, nanoparticle",
author = "Katharina Urmann and Julia Modrejewski and Thomas Scheper and Walter, {Johanna G.}",
year = "2016",
month = aug,
day = "31",
doi = "10.1515/bnm-2016-0012",
language = "English",
volume = "18",
number = "1-2",

}

Download

TY - JOUR

T1 - Aptamer-modified nanomaterials:

T2 - Principles and applications

AU - Urmann, Katharina

AU - Modrejewski, Julia

AU - Scheper, Thomas

AU - Walter, Johanna G.

PY - 2016/8/31

Y1 - 2016/8/31

N2 - Aptamers are promising alternative binders that can substitute antibodies in various applications. Due to the advantages of aptamers, namely their high affinity, specificity and stability, along with the benefits originating from the chemical synthesis of aptamers, they have attracted attention in various applications including their use on nanostructured material. This necessitates the immobilization of aptamers on a solid support. Since aptamer immobilization may interfere with its binding properties, the immobilization of aptamers has to be investigated and optimized. Within this review, we give general insights into the principles and factors controlling the binding affinity of immobilized aptamers. Specific features of aptamer immobilization on nanostructured surfaces and nanoparticles are highlighted and a brief overview of applications of aptamer-modified nanostructured materials is given.

AB - Aptamers are promising alternative binders that can substitute antibodies in various applications. Due to the advantages of aptamers, namely their high affinity, specificity and stability, along with the benefits originating from the chemical synthesis of aptamers, they have attracted attention in various applications including their use on nanostructured material. This necessitates the immobilization of aptamers on a solid support. Since aptamer immobilization may interfere with its binding properties, the immobilization of aptamers has to be investigated and optimized. Within this review, we give general insights into the principles and factors controlling the binding affinity of immobilized aptamers. Specific features of aptamer immobilization on nanostructured surfaces and nanoparticles are highlighted and a brief overview of applications of aptamer-modified nanostructured materials is given.

KW - applications

KW - aptamer

KW - immobilization

KW - nanomaterial

KW - nanoparticle

UR - http://www.scopus.com/inward/record.url?scp=85020454644&partnerID=8YFLogxK

U2 - 10.1515/bnm-2016-0012

DO - 10.1515/bnm-2016-0012

M3 - Review article

AN - SCOPUS:85020454644

VL - 18

JO - BioNanoMaterials

JF - BioNanoMaterials

SN - 2193-0651

IS - 1-2

M1 - 20160012

ER -

Von denselben Autoren