Team:Peking/Modeling/Ring
From 2012.igem.org
Line 10: | Line 10: | ||
<h3 id="title1">Background</h3> | <h3 id="title1">Background</h3> | ||
<p> | <p> | ||
- | Genetic engineering circuits in <i>E.coli<i> enable cells to perform programmably; however, more complex functions are limited by leakage of the gene expression. Consider that cells are able to detect environmental signals such as explosives (e.g., RDX and TNT), toxins, metals, salinity, pH, temperature and light, cell-cell communication-based multicellular networks provide an extended vista for synthetic biology.<br /><br /> | + | Genetic engineering circuits in <i>E.coli</i> enable cells to perform programmably; however, more complex functions are limited by leakage of the gene expression. Consider that cells are able to detect environmental signals such as explosives (e.g., RDX and TNT), toxins, metals, salinity, pH, temperature and light, cell-cell communication-based multicellular networks provide an extended vista for synthetic biology.<br /><br /> |
As a hallmark of coordinated cellular behavior, pattern formation typically required cell-cell communication and intracellular signal processing. For more site-specific signaling and pattern formation, light may be more appropriate alternative. Due to the high sensitivity of our Luminesensor, it is possible to construct a ring-like pattern based on light-communication, previously done by AHL. | As a hallmark of coordinated cellular behavior, pattern formation typically required cell-cell communication and intracellular signal processing. For more site-specific signaling and pattern formation, light may be more appropriate alternative. Due to the high sensitivity of our Luminesensor, it is possible to construct a ring-like pattern based on light-communication, previously done by AHL. | ||
</p> | </p> | ||
Line 17: | Line 17: | ||
<div class="PKU_context floatR first"> | <div class="PKU_context floatR first"> | ||
<h3 id="title1">Circuit Design</h3> | <h3 id="title1">Circuit Design</h3> | ||
- | + | <p> | |
+ | Figure 1 illustrates the design of the synthetic multicellular system. There are two kinds of E. coli cells on the plate: | ||
+ | </p> | ||
</div> | </div> | ||
Line 23: | Line 25: | ||
<h3 id="title2">Reference</h3> | <h3 id="title2">Reference</h3> | ||
<p></p> | <p></p> | ||
- | <ul class="refer"><li id="ref1"> | + | <ul class="refer"> |
+ | <li id="ref1"> | ||
1. Zoltowski, B.D., Crane, B.R.(2008). Light Activation of the LOV Protein Vivid Generates a Rapidly Exchanging Dimer. <i>Biochemistry</i>, 47: 7012: 7019 | 1. Zoltowski, B.D., Crane, B.R.(2008). Light Activation of the LOV Protein Vivid Generates a Rapidly Exchanging Dimer. <i>Biochemistry</i>, 47: 7012: 7019 | ||
- | |||
- | |||
- | |||
- | |||
- | |||
- | |||
</li></ul> | </li></ul> | ||
</div> | </div> | ||
</html>{{Template:Peking2012_Color_Epilogue}} | </html>{{Template:Peking2012_Color_Epilogue}} |
Revision as of 16:26, 21 October 2012
Background
Genetic engineering circuits in E.coli enable cells to perform programmably; however, more complex functions are limited by leakage of the gene expression. Consider that cells are able to detect environmental signals such as explosives (e.g., RDX and TNT), toxins, metals, salinity, pH, temperature and light, cell-cell communication-based multicellular networks provide an extended vista for synthetic biology.
As a hallmark of coordinated cellular behavior, pattern formation typically required cell-cell communication and intracellular signal processing. For more site-specific signaling and pattern formation, light may be more appropriate alternative. Due to the high sensitivity of our Luminesensor, it is possible to construct a ring-like pattern based on light-communication, previously done by AHL.
Circuit Design
Figure 1 illustrates the design of the synthetic multicellular system. There are two kinds of E. coli cells on the plate:
Reference
- 1. Zoltowski, B.D., Crane, B.R.(2008). Light Activation of the LOV Protein Vivid Generates a Rapidly Exchanging Dimer. Biochemistry, 47: 7012: 7019