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<a href="https://2016.igem.org/Team:MIT/Experiments/Recombinases"> | <a href="https://2016.igem.org/Team:MIT/Experiments/Recombinases"> | ||
<img src="https://static.igem.org/mediawiki/2016/e/e2/T--MIT--recombinasesbutton.svg" alt="Recombinases" > | <img src="https://static.igem.org/mediawiki/2016/e/e2/T--MIT--recombinasesbutton.svg" alt="Recombinases" > | ||
− | <span class="text-content"><span><br><br><br><br><br><br>Read more about how we characterized | + | <span class="text-content"><span><br><br><br><br><br><br>Read more about how we characterized serine integrase TP901 that could give a circuit memory across a cycle<br><br></span></span> |
</a> | </a> | ||
</li></ul><br> | </li></ul><br> | ||
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</a> | </a> | ||
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<li> | <li> | ||
<a href="https://2016.igem.org/Team:MIT/Diagnosis_and_Future_Implications"> | <a href="https://2016.igem.org/Team:MIT/Diagnosis_and_Future_Implications"> |
Revision as of 03:13, 17 October 2016
This diagnostic process can be expedited with synthetic biological tools that sense the following molecular markers in endometrial biopsy samples.
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Read more about how we created synthetic promoters to respond to this disease marker
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Read more about how we characterized miRNA profiles in model cells under varying conditions
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Read more about how we characterized serine integrase TP901 that could give a circuit memory across a cycle
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Explore how our sensors interact logically by transfecting 4 to 5-unit genetic circuits into model cell cultures
Read more
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Read more about the future of our work through circuit design, clinical application, and iGEM collaborations