Team:LCG-UNAM-Mexico/Notebook/2008-June
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- | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/ | + | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Project" class="navText">Our project</a></td> |
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- | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/ | + | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Modeling" class="navText">Modeling</a></td> |
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- | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Experiments" class="navText"> | + | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Experiments" class="navText">Wet Lab</a></td> |
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- | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/ | + | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Notebook" class="navText">Notebook</a></td> |
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- | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/ | + | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Story" class="navText">Our story</a></td> |
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+ | <td width="165" bgcolor="#5C743D"><a href="https://2008.igem.org/Team:LCG-UNAM-Mexico/Team" class="navText">About us</a></td> | ||
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+ | <b><u>GROUP SESSION:</b></u><br> | ||
<b><p>Session with Dr. Miguel<br /></b> | <b><p>Session with Dr. Miguel<br /></b> | ||
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• An electrode is not really necessary, measurements can be done with conventional methods.<br /> | • An electrode is not really necessary, measurements can be done with conventional methods.<br /> | ||
<br /> | <br /> | ||
- | Researching Metal Efflux Pumps:<br /> | + | <b>Researching Metal Efflux Pumps:</b><br /> |
(The metal must be ionizable, maybe using a simple salt, the anion doesn't matter). <br /> | (The metal must be ionizable, maybe using a simple salt, the anion doesn't matter). <br /> | ||
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• Read more to start writing.</p> | • Read more to start writing.</p> | ||
</p> | </p> | ||
- | </td> | + | </div></td> |
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- | <td class="bodyText"><p><b>Expositions: Choosing the efflux pump:<br /></b> | + | <td class="bodyText"><div align="justify"><p><b><u>GROUP SESSION:</b></u><br><b>Expositions: Choosing the efflux pump:<br /></b> |
<br /> | <br /> | ||
<strong>Nickel and cobalt </strong><br /> | <strong>Nickel and cobalt </strong><br /> | ||
• Very specific<br /> | • Very specific<br /> | ||
• We don't know how to get the Co inside the cell.<br /> | • We don't know how to get the Co inside the cell.<br /> | ||
- | • We can | + | • We can keep the wild type entry, and regulate the efflux. <br /> |
• All this in <i>E. coli</i>. <br /> | • All this in <i>E. coli</i>. <br /> | ||
• Co is very toxic, it can damage the cell, we better only use Nickel. <br /> | • Co is very toxic, it can damage the cell, we better only use Nickel. <br /> | ||
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• The cell hold up to 2 millimolar of Ni. <br /> | • The cell hold up to 2 millimolar of Ni. <br /> | ||
• It has more than one system for Ni entry.<br /> | • It has more than one system for Ni entry.<br /> | ||
- | • | + | • RcnA & RcnR (~200 & ~300 aa) are used during Ni efflux. <br /> |
- | • Pending: How does Co enter and the mechanism of Ni entry.<br /> | + | • Pending: How does Co enter the cell and the mechanism of Ni entry.<br /> |
<br /> | <br /> | ||
<strong>Zinc </strong><br /> | <strong>Zinc </strong><br /> | ||
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• The only specific entry for Zn is ZnuABC, the others also transport other metals. <br /> | • The only specific entry for Zn is ZnuABC, the others also transport other metals. <br /> | ||
• Regulated by Zurt, which binds Zn. <br /> | • Regulated by Zurt, which binds Zn. <br /> | ||
- | • To withdraw Zn: ZntA only works at high concentrations, but is not specific for Zn; ZitB is not specific either | + | • To withdraw Zn: ZntA only works at high concentrations, but is not specific for Zn; ZitB is not specific either and it only operates at low concentrations. <br /> |
• Problem: It is difficult to regulate their extrusion. <br /> | • Problem: It is difficult to regulate their extrusion. <br /> | ||
• Zn is essential.<br /> | • Zn is essential.<br /> | ||
<br /> | <br /> | ||
<strong>Cadmium </strong><br /> | <strong>Cadmium </strong><br /> | ||
- | • Its entry is a transportation system of divalent ions, it is cotransported with Manganese, which is essential for the cell, so the | + | • Its entry is mediated by a transportation system of divalent ions, it is cotransported with Manganese, which is essential for the cell, so the entry is not tightly regulated.<br /> |
- | • It is toxic to the cell, but it | + | • It is toxic to the cell, but it doesn't seem too serious.<br /> |
- | • The | + | • The efflux can be mediated by multiple systems, all found in <i>E. coli</i> (CzcD, CzcCBA, CadA, ...). <br /> |
- | • Legatzki et al. (2003) | + | • Legatzki et al. (2003) made an experiment in which they use a mutant <i>E coli</i> GG48 ((delta) zntA & (delta) zitB) that accumulates both Zn and Cd, but when they transform it with a plasmid with zntA & cadA of R. metallidurans, it regained resistance. It is true that we will not regulate all systems involved, but according to their experiment, change is quite significant. It could be useful. <br /> |
• Genes are large, up to ~800aa. <br /> | • Genes are large, up to ~800aa. <br /> | ||
• Pending: What concentration can the cell hold? <br /> | • Pending: What concentration can the cell hold? <br /> | ||
<br /> | <br /> | ||
<strong>Iron</strong><br /> | <strong>Iron</strong><br /> | ||
- | • There are many ways to get iron | + | • There are many ways to get iron, including through siderophores. <br /> |
- | • Problem: On entering the cell, it forms a complex with | + | • Problem: On entering the cell, it forms a complex with a global regulator (fur) involved in many important functions. Essential. <br /> |
- | • The pump is ok, | + | • The pump Fief (~920kb) is ok, highly specific and the only way to remove the iron. . <br /> |
<br /> | <br /> | ||
<strong>Tellurium</strong> <br /> | <strong>Tellurium</strong> <br /> | ||
• Not so much an extrusion pump, because there is a transformation by means of an enzyme, which is not well known. <br /> | • Not so much an extrusion pump, because there is a transformation by means of an enzyme, which is not well known. <br /> | ||
• All resistance genes are in two plasmids. <br /> | • All resistance genes are in two plasmids. <br /> | ||
- | • | + | • Entry to the cell is based on a ionic potential in membranes. <br /> |
- | • It is not necessary, toxic. <br /> | + | • It is not necessary, rather toxic. <br /> |
- | • We can not regulate the entry and when the Tellurium enters, unless there is resistance, the cell dies immediately. <br /> | + | • We can not regulate the entry, and when the Tellurium enters, unless there is resistance, the cell dies immediately. <br /> |
• The role of the genes involved in resistance is not well understood. <br /> | • The role of the genes involved in resistance is not well understood. <br /> | ||
<br /> | <br /> | ||
<strong>Copper </strong><br /> | <strong>Copper </strong><br /> | ||
- | • When it enters, it is reduced from 2+ to +, because the extrusion systems only recognize | + | • When it enters, it is reduced from 2+ to 1+, because the extrusion systems only recognize Cu1+. <br /> |
- | • | + | • Cells hold up to 3.5 miniMolar. <br /> |
- | • CusCFAB operon is responsible for | + | • CusCFAB operon is responsible for efflux, regulated transcriptionally by cusRS. There is probably a biopart. Known in <i>E. coli.</i> <br /> |
- | • CusRS ~1000 aa. Cus CFAB ~2000aa. <br /> | + | • CusRS is ~1000 aa. Cus CFAB ~2000aa. <br /> |
- | • Problem: | + | • Problem: Its size! <br /> |
- | • Admission is ATPase dependent... by | + | • Admission is ATPase dependent... by pumps? Described in yeast and animals, it is known to enter to <i>E. coli</i>, but how can we regulate it? <br /> |
• It is not essential, it is highly toxic. <br /> | • It is not essential, it is highly toxic. <br /> | ||
- | • Pending: | + | • Pending: How is the entry mediated? <br /> |
<br /> | <br /> | ||
<strong>Arsenic</strong> <br /> | <strong>Arsenic</strong> <br /> | ||
- | • | + | • Resistance is in a plasmid in <i>E. coli</i>. Five genes (Ars [RABCD] ~ 1.4Kb), the plasmid is in total ~ 4.4kb. Some genes on the chromosome are also involved; they are not necessary but the resistance is reduced from 10 to 100 times if they are absent. <br /> |
• Do they have a translational control? <br /> | • Do they have a translational control? <br /> | ||
• The pump works with ATP. <br /> | • The pump works with ATP. <br /> | ||
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<br /> | <br /> | ||
<strong>Mercury </strong><br /> | <strong>Mercury </strong><br /> | ||
- | • Free | + | • Free diffusion, and three carriers are known.<br /> |
- | • It is highly toxic, | + | • It is highly toxic, to reduce its toxicity it is reduced. <br /> |
- | • | + | • Ther is no well-known system of entry. <br /> |
• The pumps are quite specific.<br /> | • The pumps are quite specific.<br /> | ||
- | • Also toxic | + | • Also toxic in the cells environment, therefore cells absorb it, for processing. <br /> |
- | • Pending: Getting | + | • Pending: Getting Hg out of the cells? <br /> |
<br /> | <br /> | ||
<strong>Lead </strong><br /> | <strong>Lead </strong><br /> | ||
• It enters together with manganese, Zn or Co. <br /> | • It enters together with manganese, Zn or Co. <br /> | ||
- | • It is highly toxic to E. coli because it affects membranes. <br /> | + | • It is highly toxic to <i>E. coli</i> because it affects membranes. <br /> |
- | • Calcium pumps that | + | • Calcium pumps that transport it into the cells are known, but they are animals.<br /> |
- | • To remove it, it uses the Cd | + | • To remove it, it uses the Cd detoxification systems, there are no specific system.<br /> |
- | • Pending: Finding a target, Concentration that endures? </p> | + | • Pending: Finding a target, Concentration that cells can endures? </p> |
<p><strong><br /> | <p><strong><br /> | ||
- | Not useful</strong><br /> | + | Not useful for our purposes</strong><br /> |
• Iron <br /> | • Iron <br /> | ||
• Lead <br /> | • Lead <br /> | ||
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• Tellurium <br /> | • Tellurium <br /> | ||
<br /> | <br /> | ||
- | <strong> | + | <strong>Probably useful</strong> <br /> |
- | • Zinc | + | • Zinc (Cons: It is essential.) <br /> |
- | • Copper | + | • Copper (Cons: It is very big.)<br /> |
<br /> | <br /> | ||
<strong>Favourites </strong><br /> | <strong>Favourites </strong><br /> | ||
• Cobalt & Nickel <br /> | • Cobalt & Nickel <br /> | ||
• Cadmium <br /> | • Cadmium <br /> | ||
- | • | + | • Arsenic </p> |
- | </td> | + | </div></td> |
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- | <td class="bodyText"><p><strong>Project Design</strong></p> | + | <td class="bodyText"><div align="justify"><p><b><u>GROUP SESSION:</b></u><br><strong>Project Design</strong></p> |
- | <p><strong | + | <p><strong> Experimental</strong></p> |
<p> | <p> | ||
- | + | <b>Pump we will use: </b>Nickel. </p> | |
- | <p> | + | <p>Articles:</p> |
- | <p> | + | <p> <li>Complex Transcriptional Control Links NikABCDE-HYDROGEN with Dependent Nickel Transport Expression in <i>E. coli</i> (2005).</li> |
- | + | <li>Nickel homeostasis in <i>Escherichia coli</i> - the rcnR-rcnA efflux pathway and its linkage to NikR function (2006).</li> | |
- | + | <li>Identification of rcnA (yohM), Nickel and Cobalt Resistance Gene in <i>Escherichia coli</i> (2005).</li> </p> | |
- | <p>< | + | <p><b> Pending: </b></p> |
- | <p> | + | <p> <li>Check bioparts</li> |
- | + | <li>Design vectors</li> | |
- | + | <li>Design primers</li> | |
- | + | <li>Strain with deletion of rcnA.</li> | |
- | + | ||
- | + | ||
<br /> | <br /> | ||
+ | <b>Preliminary design</b>: <br /> | ||
• The mechanism of entry of Nickel will remain wildtype. <br /> | • The mechanism of entry of Nickel will remain wildtype. <br /> | ||
- | • In the absence of Nickel, RcnR (whose gene will remain in the | + | • In the absence of Nickel, RcnR (whose gene will remain in the chromosome with its normal regulation) will repress rcnA (which will be deleted from the chromosome and inserted into a plasmid). <br /> |
- | • By | + | • By adding (*) to the system we will repress transcription of rcnA, even in the presence of Nickel, so this will be will be our signal to retain the metal inside the cell and modify the concentration of the medium (if it is not enough to turn off the pump, it will be necessary to find a new level of regulation). <br /> |
• How will we turn off the signal (*)? </p> | • How will we turn off the signal (*)? </p> | ||
- | <p> | + | <p><strong>Task:</strong> Suggest a molecule for (*)! <br /> |
<br /> | <br /> | ||
- | <strong | + | <strong>Modeling</strong> </p> |
- | + | ||
- | + | ||
<p> Pending: </p> | <p> Pending: </p> | ||
- | <p> | + | <p> <li>Response vs. Concentration (experimental part).</li> |
- | + | <li> Set thresholds & limitations. </li> | |
- | + | <li> Efficiency of interactions? </li> | |
- | + | <li>Defining variables: </li> | |
- | + | - Metal concentration.<br /> | |
- | + | - Repressor concentration.<br /> | |
- | + | - (*) concentration.</p> | |
- | </td> | + | </div></td> |
</tr> | </tr> | ||
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Latest revision as of 01:14, 29 October 2008
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