Difference between revisions of "Team:Paris Bettencourt/Sustainability/Continuity"
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<p>When going from labs lead by specialists to the users community, a lot of technical challenges arise. When inventing new biotechnological devices, biologists have access to biosafety cabinets, powerful freezers and autoclaves, but the people who need our product the most won't have these. For a biological product to leave the benches and actually reach the population, it's essential to foresee its life in the hands of the people who will cultivate it and make sure it stays alive all along. Here, we provide strategies to create an durable, usable product.</p> | <p>When going from labs lead by specialists to the users community, a lot of technical challenges arise. When inventing new biotechnological devices, biologists have access to biosafety cabinets, powerful freezers and autoclaves, but the people who need our product the most won't have these. For a biological product to leave the benches and actually reach the population, it's essential to foresee its life in the hands of the people who will cultivate it and make sure it stays alive all along. Here, we provide strategies to create an durable, usable product.</p> | ||
− | < | + | <h1 class="date one" id="specification">Specification</h1> |
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<div class="column-left"> | <div class="column-left"> | ||
+ | <h2 id="from-the-lab-to-the-real-world">From the lab to the world</h2> | ||
<p>On paper, the plan is simple: volunteers grow the micro-organism, distribute it to the rest of the town and save a little fraction to start a new culture with. This could in principle last forever, but in reality the universal rules of biology soon kick back in.</p> | <p>On paper, the plan is simple: volunteers grow the micro-organism, distribute it to the rest of the town and save a little fraction to start a new culture with. This could in principle last forever, but in reality the universal rules of biology soon kick back in.</p> | ||
<p>Let's consider the following scenario: a wild type organism sneaks into the incubator and starts to replicate along with the engineered organism. This contaminant has been selected precisely for its ability to sneak into environments and replicate, during hundreds of years, while our organism has the burden of producing tons of enzymes to make the precious vitamins. Only the fittest survives, and we simply can't compete. After a couple of growth cycle, the worst seems unavoidable: the micro-organism that will be distributed will not be the right one. Not only this one doesn't produce nutrients, but it might not ferment the rice well or even be pathogenic.</p> | <p>Let's consider the following scenario: a wild type organism sneaks into the incubator and starts to replicate along with the engineered organism. This contaminant has been selected precisely for its ability to sneak into environments and replicate, during hundreds of years, while our organism has the burden of producing tons of enzymes to make the precious vitamins. Only the fittest survives, and we simply can't compete. After a couple of growth cycle, the worst seems unavoidable: the micro-organism that will be distributed will not be the right one. Not only this one doesn't produce nutrients, but it might not ferment the rice well or even be pathogenic.</p> | ||
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− | < | + | <h3 id="a-barrier-against-contaminants">A barrier against contaminants</h3> |
<p>Completely mastering the first critical point is not an easy task for hacklabs in the south of India. If we can't afford a biosafety cabinet, we can at least take the maximum precautions so the contaminations are as rare as possible.</p> | <p>Completely mastering the first critical point is not an easy task for hacklabs in the south of India. If we can't afford a biosafety cabinet, we can at least take the maximum precautions so the contaminations are as rare as possible.</p> | ||
− | < | + | <h3 id="reducing-the-fitness-burden">Reducing the fitness burden</h3> |
<p>Mastering the second critical point equals to improve the fitness of the micro-organism on the medium, or -more likely- to make it so our modifications come with a minimal fitness cost. Modified micro-organisms usually have much more work to do than their wild-type counterparts: all their resources should be dedicated to the production of vitamins. Additionally, unnatural proteins and metabolites can have toxic effects when their production rate is high. It is therefore expected that our deeply repurposed bacterium or yeast would grow slower or would be less resistant to stress and growth condition changes than the natural micro-organisms.</p> | <p>Mastering the second critical point equals to improve the fitness of the micro-organism on the medium, or -more likely- to make it so our modifications come with a minimal fitness cost. Modified micro-organisms usually have much more work to do than their wild-type counterparts: all their resources should be dedicated to the production of vitamins. Additionally, unnatural proteins and metabolites can have toxic effects when their production rate is high. It is therefore expected that our deeply repurposed bacterium or yeast would grow slower or would be less resistant to stress and growth condition changes than the natural micro-organisms.</p> | ||
− | < | + | <h3 id="quality-control">Quality control</h3> |
Ham prosciutto andouille pork loin ribeye shoulder, doner frankfurter beef filet mignon pork. Frankfurter sausage hamburger meatball t-bone short loin. Filet mignon hamburger kielbasa, pork belly swine picanha pancetta cupim ham hock tri-tip sausage. Hamburger t-bone ball tip bacon tongue porchetta. | Ham prosciutto andouille pork loin ribeye shoulder, doner frankfurter beef filet mignon pork. Frankfurter sausage hamburger meatball t-bone short loin. Filet mignon hamburger kielbasa, pork belly swine picanha pancetta cupim ham hock tri-tip sausage. Hamburger t-bone ball tip bacon tongue porchetta. | ||
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<div class="column-left"> | <div class="column-left"> | ||
− | < | + | <h2 id="an-extendable-chassis">An extensible chassis</h2> |
Ham prosciutto andouille pork loin ribeye shoulder, doner frankfurter beef filet mignon pork. Frankfurter sausage hamburger meatball t-bone short loin. Filet mignon hamburger kielbasa, pork belly swine picanha pancetta cupim ham hock tri-tip sausage. Hamburger t-bone ball tip bacon tongue porchetta. | Ham prosciutto andouille pork loin ribeye shoulder, doner frankfurter beef filet mignon pork. Frankfurter sausage hamburger meatball t-bone short loin. Filet mignon hamburger kielbasa, pork belly swine picanha pancetta cupim ham hock tri-tip sausage. Hamburger t-bone ball tip bacon tongue porchetta. | ||
</div> | </div> | ||
<div style="clear:both"></div> | <div style="clear:both"></div> | ||
− | < | + | <h2 id="all-in-one">All in one</h2> |
<p>make manufacturing simpler only one production line</p> | <p>make manufacturing simpler only one production line</p> | ||
− | < | + | <h1 class="date two" id="our-design">Our design</h1> |
<h3 id="overview">Overview</h3> | <h3 id="overview">Overview</h3> | ||
<p>It seems impossible to make a strain that fullfills its nutrient-producing functions while growing as fast as the wild type, so we found a workaround: the cells that people use are not the cells that people grow. We embedded a differentiation system into our organism, so the vitamin-producing pathways are only expressed after a recombination event. The cells that are grown are almost identical to the wild-type cells. The battle against contaminants is now a fair fight.</p> | <p>It seems impossible to make a strain that fullfills its nutrient-producing functions while growing as fast as the wild type, so we found a workaround: the cells that people use are not the cells that people grow. We embedded a differentiation system into our organism, so the vitamin-producing pathways are only expressed after a recombination event. The cells that are grown are almost identical to the wild-type cells. The battle against contaminants is now a fair fight.</p> |
Revision as of 19:55, 17 September 2015