Difference between revisions of "Team:BostonU/HP/Gold Integrated"

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<p class="body-type mainwrap">We then visited the Fraunhofer Center for Manufacturing Innovation’s Boston facility to discuss microfluidic systems and their applications. We learned that microfluidics can significantly increase efficiency of synthetic biologists’ work, since they can enable experiments to run semi-autonomously once all reagents are added. This automation allows scientists to take the time to work on other aspects of their projects such as data analysis and experimental design. Microfluidic chips are also portable and easy to use, which make them more accessible for point-of-care applications. These characteristics of microfluidics aligned with our initial intention of developing user-friendly diagnostic devices. However, through further conversations with Fraunhofer and our collaboration experience with <a href="https://2017.igem.org/Team:BostonU/Collaborations">BostonU Hardware,</a> we realized that with our resources and protocol, encapsulating our system in a microfluidic device would not be possible given the current state of our toehold technology. </p>
 
<p class="body-type mainwrap">We then visited the Fraunhofer Center for Manufacturing Innovation’s Boston facility to discuss microfluidic systems and their applications. We learned that microfluidics can significantly increase efficiency of synthetic biologists’ work, since they can enable experiments to run semi-autonomously once all reagents are added. This automation allows scientists to take the time to work on other aspects of their projects such as data analysis and experimental design. Microfluidic chips are also portable and easy to use, which make them more accessible for point-of-care applications. These characteristics of microfluidics aligned with our initial intention of developing user-friendly diagnostic devices. However, through further conversations with Fraunhofer and our collaboration experience with <a href="https://2017.igem.org/Team:BostonU/Collaborations">BostonU Hardware,</a> we realized that with our resources and protocol, encapsulating our system in a microfluidic device would not be possible given the current state of our toehold technology. </p>
 
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  <p class="body-type mainwrap">Our conversations with Dr. Zaman and with the Fraunhofer team thus steered our primary focus toward making our project a foundational advance of the toehold technology in our own cell-free system. Future conversations within our team led to the incorporation of recombinases and the shift to a molecular computation focus for our project. We still see potential applications in microfluidic devices, but within the scope of our project we instead wanted to focus on developing this new molecular computational technology in a standalone system.</p>
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<p class="body-type mainwrap">Our conversations with Dr. Zaman and with the Fraunhofer team thus steered our primary focus toward making our project a foundational advance of the toehold technology in our own cell-free system. Future conversations within our team led to the incorporation of recombinases and the shift to a molecular computation focus for our project. We still see potential applications in microfluidic devices, but within the scope of our project we instead wanted to focus on developing this new molecular computational technology in a standalone system.</p>
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  <p class="inline-heading-type mainwrap">Part II: Sharing the impact of foundational advances with the community</p>
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<p class="inline-heading-type mainwrap">Part II: Sharing the impact of foundational advances with the community</p>
  
  <p class="body-type mainwrap">Despite our productive conversations with industrial and academic leaders, we struggled with portraying the importance of foundational advances when describing our project to non-scientific audiences. We found ourselves leaning heavily on justifying our project using potential future applications as opposed to the core technology itself, which sent a confusing message to people with whom we interacted.</p>
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<p class="body-type mainwrap">Despite our productive conversations with industrial and academic leaders, we struggled with portraying the importance of foundational advances when describing our project to non-scientific audiences. We found ourselves leaning heavily on justifying our project using potential future applications as opposed to the core technology itself, which sent a confusing message to people with whom we interacted.</p>
 
   <p class="body-type mainwrap">&nbsp;</p>
 
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   <p class="body-type mainwrap">For example, we presented our work at the STEM Pathways Dinner and Dialogue, in which a variety of academic and industry speakers showcased new technologies in synthetic biology. In this setting, we were able to witness large-scale conversations about synthetic biology in action, all in the presence of scientists, graduate and undergraduate students, high school teachers, and other members from our Boston community. Presentations focused on new synthetic biology technologies and applications, such as shoes made of silk engineered to be stronger than traditional silk from silkworms. In this instance, the new product is interesting, but what we find even more important is the foundational technology that allows for the product, what has an extensive application space. [include sentence about how it’s the foundational advance of the material itself that matters, and not the product] Some attendees started to voice concerns and frustrations after these presentations, with an overall sentiment that the power of synthetic biology was being leveraged for making shoes and not for more pressing applications like curing diseases. In this conversation, we saw a reflection of the difficulties we faced in promoting the importance of foundational advances in research. We want to emphasize that foundational advances are the cornerstone of life-changing innovations in synthetic biology.</p>
 
   <p class="body-type mainwrap">For example, we presented our work at the STEM Pathways Dinner and Dialogue, in which a variety of academic and industry speakers showcased new technologies in synthetic biology. In this setting, we were able to witness large-scale conversations about synthetic biology in action, all in the presence of scientists, graduate and undergraduate students, high school teachers, and other members from our Boston community. Presentations focused on new synthetic biology technologies and applications, such as shoes made of silk engineered to be stronger than traditional silk from silkworms. In this instance, the new product is interesting, but what we find even more important is the foundational technology that allows for the product, what has an extensive application space. [include sentence about how it’s the foundational advance of the material itself that matters, and not the product] Some attendees started to voice concerns and frustrations after these presentations, with an overall sentiment that the power of synthetic biology was being leveraged for making shoes and not for more pressing applications like curing diseases. In this conversation, we saw a reflection of the difficulties we faced in promoting the importance of foundational advances in research. We want to emphasize that foundational advances are the cornerstone of life-changing innovations in synthetic biology.</p>

Revision as of 04:18, 31 October 2017

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