Team:MIT mammalian Circuit
From 2010.igem.org
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<li><a href="https://2010.igem.org/Team:MIT_toggle">Overview</a></li> | <li><a href="https://2010.igem.org/Team:MIT_toggle">Overview</a></li> | ||
+ | <li><a href="https://2010.igem.org/Team:MIT_tmodel">Modelling</a></li> | ||
<li><a href="https://2010.igem.org/Team:MIT_tconst">Toggle Construction</a></li> | <li><a href="https://2010.igem.org/Team:MIT_tconst">Toggle Construction</a></li> | ||
- | <li><a href=" | + | <li><a href="https://2010.igem.org/Team:MIT_composite">Characterization</a></li> |
</ul> | </ul> | ||
</dd> | </dd> | ||
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+ | <p><img src="https://static.igem.org/mediawiki/2010/1/1f/Overview-of-touchpad.png" width=100%><br> | ||
Our project began with idea of a biological touchscreen. We envisioned a cellular 'iPad', a plate of cells that could sense applied pressure and differentiate in response. There are a ton of applications for this technology; at the most basic level, one could imagine drawing a pattern onto a cellular monolayer and watch bone form around the outline. The system could also be used to study morphogenesis, to explore the role of chemical and mechanical signaling in differentiation by trying to build analogous synthetic counterparts. We've developed a basic standard for linking mechanical sensing to cellular differentiation, a standard we hope to see it developed to support even more intricate systems. | Our project began with idea of a biological touchscreen. We envisioned a cellular 'iPad', a plate of cells that could sense applied pressure and differentiate in response. There are a ton of applications for this technology; at the most basic level, one could imagine drawing a pattern onto a cellular monolayer and watch bone form around the outline. The system could also be used to study morphogenesis, to explore the role of chemical and mechanical signaling in differentiation by trying to build analogous synthetic counterparts. We've developed a basic standard for linking mechanical sensing to cellular differentiation, a standard we hope to see it developed to support even more intricate systems. | ||
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Along the way, we also managed to create a new assembly standard for mammalian cells. 'MammoBlock' is a recombination-based protocol (see our New Mammalian Standard page for more information), especially useful when dealing with long mammalian construct sequences. It's a robust and efficient cloning procedure, that allows for quick creation of high-quality entry vectors. Like our morphogenetic toolkit, it is meant to act as the groundwork for future expansion in the world of mammalian synthetic biology. | Along the way, we also managed to create a new assembly standard for mammalian cells. 'MammoBlock' is a recombination-based protocol (see our New Mammalian Standard page for more information), especially useful when dealing with long mammalian construct sequences. It's a robust and efficient cloning procedure, that allows for quick creation of high-quality entry vectors. Like our morphogenetic toolkit, it is meant to act as the groundwork for future expansion in the world of mammalian synthetic biology. | ||
<b>Click on the panels below to go to the experimental pages</b> | <b>Click on the panels below to go to the experimental pages</b> | ||
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- | <a href="https://2010.igem.org/Team: | + | <td>Mechanosensation</td> |
- | + | <td>Osteogenesis</td> | |
- | <a href="https://2010.igem.org/Team:MIT_mammalian_Switch | + | <td>Bistable Toggle</td></tr> |
+ | <tr> | ||
+ | <td><a href="https://2010.igem.org/Team:MIT_mammalian_Mechanosensation"> <img src="https://static.igem.org/mediawiki/2010/b/b0/Icon_pmech.png"> </a> | ||
+ | <td><a href="https://2010.igem.org/Team:MIT_mammalian_Bone"> <img src="https://static.igem.org/mediawiki/2010/c/c7/Icon_diff.png"> </a> </td> | ||
+ | <td><a href="https://2010.igem.org/Team:MIT_mammalian_Switch"> <img src="https://static.igem.org/mediawiki/2010/e/ec/Icon_circ.png"> </a> </td> | ||
+ | </tr></table> | ||
</td></table> | </td></table> |
Latest revision as of 03:44, 28 October 2010