Comprehensive characterization of molecular interactions based on nanomechanics.

Molecular interaction is a key concept in our understanding of the biological mechanisms of life. Two physical properties change when one molecular partner binds to another. Firstly, the masses combine and secondly, the structure of at least one binding partner is altered, mechanically transducing t...

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Main Authors: Murali Krishna Ghatkesar, Hans-Peter Lang, Christoph Gerber, Martin Hegner, Thomas Braun
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2008-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2572191?pdf=render
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spelling doaj-309139fca05c4de8bb5bc99d27842f2b2020-11-25T01:46:41ZengPublic Library of Science (PLoS)PLoS ONE1932-62032008-01-01311e361010.1371/journal.pone.0003610Comprehensive characterization of molecular interactions based on nanomechanics.Murali Krishna GhatkesarHans-Peter LangChristoph GerberMartin HegnerThomas BraunMolecular interaction is a key concept in our understanding of the biological mechanisms of life. Two physical properties change when one molecular partner binds to another. Firstly, the masses combine and secondly, the structure of at least one binding partner is altered, mechanically transducing the binding into subsequent biological reactions. Here we present a nanomechanical micro-array technique for bio-medical research, which not only monitors the binding of effector molecules to their target but also the subsequent effect on a biological system in vitro. This label-free and real-time method directly and simultaneously tracks mass and nanomechanical changes at the sensor interface using micro-cantilever technology. To prove the concept we measured lipid vesicle (approximately 748*10(6) Da) adsorption on the sensor interface followed by subsequent binding of the bee venom peptide melittin (2840 Da) to the vesicles. The results show the high dynamic range of the instrument and that measuring the mass and structural changes simultaneously allow a comprehensive discussion of molecular interactions.http://europepmc.org/articles/PMC2572191?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Murali Krishna Ghatkesar
Hans-Peter Lang
Christoph Gerber
Martin Hegner
Thomas Braun
spellingShingle Murali Krishna Ghatkesar
Hans-Peter Lang
Christoph Gerber
Martin Hegner
Thomas Braun
Comprehensive characterization of molecular interactions based on nanomechanics.
PLoS ONE
author_facet Murali Krishna Ghatkesar
Hans-Peter Lang
Christoph Gerber
Martin Hegner
Thomas Braun
author_sort Murali Krishna Ghatkesar
title Comprehensive characterization of molecular interactions based on nanomechanics.
title_short Comprehensive characterization of molecular interactions based on nanomechanics.
title_full Comprehensive characterization of molecular interactions based on nanomechanics.
title_fullStr Comprehensive characterization of molecular interactions based on nanomechanics.
title_full_unstemmed Comprehensive characterization of molecular interactions based on nanomechanics.
title_sort comprehensive characterization of molecular interactions based on nanomechanics.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2008-01-01
description Molecular interaction is a key concept in our understanding of the biological mechanisms of life. Two physical properties change when one molecular partner binds to another. Firstly, the masses combine and secondly, the structure of at least one binding partner is altered, mechanically transducing the binding into subsequent biological reactions. Here we present a nanomechanical micro-array technique for bio-medical research, which not only monitors the binding of effector molecules to their target but also the subsequent effect on a biological system in vitro. This label-free and real-time method directly and simultaneously tracks mass and nanomechanical changes at the sensor interface using micro-cantilever technology. To prove the concept we measured lipid vesicle (approximately 748*10(6) Da) adsorption on the sensor interface followed by subsequent binding of the bee venom peptide melittin (2840 Da) to the vesicles. The results show the high dynamic range of the instrument and that measuring the mass and structural changes simultaneously allow a comprehensive discussion of molecular interactions.
url http://europepmc.org/articles/PMC2572191?pdf=render
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AT christophgerber comprehensivecharacterizationofmolecularinteractionsbasedonnanomechanics
AT martinhegner comprehensivecharacterizationofmolecularinteractionsbasedonnanomechanics
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