Biomod/2014/idea: Difference between revisions
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<p align="justify"><font size="3pt">DNA is not only a polymer which stores genetic information. Because of its complementary nucleobases DNA provides the opportunity to build complex structures – so called DNA origami – and use them as a template to investigate interactions of molecules, proteins and nanoparticles or as vehicle to transport cargo. Our team designs a nanoscale car consisting of DNA which we called Nanoscooter (from 'Autoscooter', german for 'bumper car'). This Nanoscooter becomes motile on mica surfaces by adapting the kind and concentration of cations in the buffer. Directed movement is achieved by the repulsion of emerging gases that are produced at platinum nanoparticles tethered to the back of the Nanoscooter. The shape of the DNA origami is confirmed by atomic force microscopy, while the movement of the car on a flat mica surface is illustrated by fluorescence microscopy using fluorescent beads. This type of DNA origami can be used for directed transport of different components. In the future this technology could be used for the supply in nanoscale factories or as a lithographic pen by controlling the location of nanoscale catalysis.<br><br> | <p align="justify"><font size="3pt">DNA is not only a polymer which stores genetic information. Because of its complementary nucleobases DNA provides the opportunity to build complex structures – so called DNA origami – and use them as a template to investigate interactions of molecules, proteins and nanoparticles or as vehicle to transport cargo. Our team designs a nanoscale car consisting of DNA which we called Nanoscooter (from 'Autoscooter', german for 'bumper car'). This Nanoscooter becomes motile on mica surfaces by adapting the kind and concentration of cations in the buffer. Directed movement is achieved by the repulsion of emerging gases that are produced at platinum nanoparticles tethered to the back of the Nanoscooter. The shape of the DNA origami is confirmed by atomic force microscopy, while the movement of the car on a flat mica surface is illustrated by fluorescence microscopy using fluorescent beads. This type of DNA origami can be used for directed transport of different components. In the future this technology could be used for the supply in nanoscale factories or as a lithographic pen by controlling the location of nanoscale catalysis.<br><br> | ||
To realize our final goal of controlled movement of the Nanoscooter, we assigned several stopovers:<br> | To realize our final goal of controlled movement of the Nanoscooter, we assigned several stopovers:<br> | ||
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- DNA origami design and verification: Using the caDNAno software, a three-dimensional DNA | - DNA origami design and verification: Using the caDNAno software, a three-dimensional DNA | ||
origami structure is designed. Folding conditions are adjusted (e.g. magnesium concentration | origami structure is designed. Folding conditions are adjusted (e.g. magnesium concentration | ||
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imaging and on the fluorescence microscope.<br><br> | imaging and on the fluorescence microscope.<br><br> | ||
- Activemovement: Directed movement is shown by adding the H<sub>2</sub>O<sub>2</sub> fuel and checking for | - Activemovement: Directed movement is shown by adding the H<sub>2</sub>O<sub>2</sub> fuel and checking for | ||
differences in speed in comparison to the random diffusion.</p></i> | differences in speed in comparison to the random diffusion.</font></p></i> | ||
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Revision as of 11:23, 22 October 2014
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<table align="center" border="0"> <colgroup span="4"></colgroup> <tr> <th> <img src="http://openwetware.org/images/thumb/2/27/Nanoscooter_TUBS-siegel.jpg/800px-Nanoscooter_TUBS-siegel.jpg" width="383" height="142" alt="Logo TU Braunschweig"> </th> <th> <img src="http://openwetware.org/images/thumb/c/c3/Nanoscooter_Gruppenfoto-Banner.jpg/800px-Nanoscooter_Gruppenfoto-Banner.jpg" width="463" height="142" alt="our group" title="our group (Nanoscooter) for Biomod competition"> </th> <th><img src="http://openwetware.org/images/2/24/Nanoscooter.jpg" width="165" height="142" alt="Logo Nanoscooter"> </th>
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<h1> Team Nanoscooter Braunschweig </h1>
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<colgroup width="158" span="6"></colgroup> <tr> <th bgcolor="#be1e3c"><center><font size="+1"><a href="Braunschweig"><span style="color:white">Home</span></a></font></center></th> <th bgcolor="#be1e3c"><center><font size="+1"><a href="Team"><span style="color:white">Team</span></a></font></center></th> <th bgcolor="white"><center><font size="+1"><a href="idea"><span style="color:#be1e3c">Project idea</span></a></font></center></th> <th bgcolor="#be1e3c"><center><font size="+1"><a href="results"><span style="color:white">Results</span></a></font></center></th> <th bgcolor="#be1e3c"><center><font size="+1"><a href="perspectives"><span style="color:white">Perspectives</span></a></font></center></th> <th bgcolor="#be1e3c"><center><font size="+1"><a href="Sponsoren"><span style="color:white">Sponsoring</span></a></font></center></th> </tr>
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<tr> <td><font size="+1">Project idea: Building the world´s smallest car</font> <p align="justify"> <br>
<p align="justify"><font size="3pt">DNA is not only a polymer which stores genetic information. Because of its complementary nucleobases DNA provides the opportunity to build complex structures – so called DNA origami – and use them as a template to investigate interactions of molecules, proteins and nanoparticles or as vehicle to transport cargo. Our team designs a nanoscale car consisting of DNA which we called Nanoscooter (from 'Autoscooter', german for 'bumper car'). This Nanoscooter becomes motile on mica surfaces by adapting the kind and concentration of cations in the buffer. Directed movement is achieved by the repulsion of emerging gases that are produced at platinum nanoparticles tethered to the back of the Nanoscooter. The shape of the DNA origami is confirmed by atomic force microscopy, while the movement of the car on a flat mica surface is illustrated by fluorescence microscopy using fluorescent beads. This type of DNA origami can be used for directed transport of different components. In the future this technology could be used for the supply in nanoscale factories or as a lithographic pen by controlling the location of nanoscale catalysis.<br><br> To realize our final goal of controlled movement of the Nanoscooter, we assigned several stopovers:<br>
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- DNA origami design and verification: Using the caDNAno software, a three-dimensional DNA origami structure is designed. Folding conditions are adjusted (e.g. magnesium concentration and folding time) and folding is verified using gel electrophoresis and atomic force microscopy (AFM).<br><br> - Pt-particle functionalization and attachment to the Nanoscooter: Pt-nanoparticles are functionalized with single stranded DNA. Functionalization is controlled using dynamic light scattering (DLS). The Pt-particles are attached to the Nanoscooter and successful attachment is verified via gel electrophoresis.<br><br> - Fluorescent labeling: To achieve bright and stable fluorescent labeling, a fluorescent bead is attached to the DNA origami using streptavidin coated beads and in the Nanoscooter incorporated biotin anchors. <br><br> - Random movement: To observe random diffusion on mica surfaces, the suitable cation concentrations have to be determined. Movement is visualized on the AFM by time-lapse imaging and on the fluorescence microscope.<br><br> - Activemovement: Directed movement is shown by adding the H<sub>2</sub>O<sub>2</sub> fuel and checking for differences in speed in comparison to the random diffusion.</font></p></i>
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<td><img src="http://openwetware.org/images/f/f8/Scooter_II.jpg" width="475" height="350"><br><br> <img src="http://openwetware.org/images/thumb/6/62/Scooter_I.jpg/800px-Scooter_I.jpg" width="475" height="350"> </td> </tr>
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