Tokyo/Works

From 2007.igem.org

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(First, the newly devised promoter sensed the '''Two inputs''' is necessary for the Genetic_circuit.)
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  0. [[Tokyo/Works/Hybrid promoter|Hybrid promoter]]  1. [[Tokyo/Works/Formulation |Formulation]]  2. [[Tokyo/Works/Assay |Assay1]]  3. [[Tokyo/Works/Simulation |Simulation]]  4. [[Tokyo/Works/Assay2 |Assay2]]  5. [[Tokyo/Works/Future works |Future works]]
  0. [[Tokyo/Works/Hybrid promoter|Hybrid promoter]]  1. [[Tokyo/Works/Formulation |Formulation]]  2. [[Tokyo/Works/Assay |Assay1]]  3. [[Tokyo/Works/Simulation |Simulation]]  4. [[Tokyo/Works/Assay2 |Assay2]]  5. [[Tokyo/Works/Future works |Future works]]
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以下Worksのアブストとなる文章に。上下との話のつながりも明記。
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==How to reach our goal==
==How to reach our goal==
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そのために、Dry ApproachとWet Approachを交互に行う方法を行った。
そのために、Dry ApproachとWet Approachを交互に行う方法を行った。
Dry Approachで、ゴールへの地図を描く。Wet Approachから得たデータを適応することにより、地図はより確かなものになり、我々をゴールへと導くであろう。-->
Dry Approachで、ゴールへの地図を描く。Wet Approachから得たデータを適応することにより、地図はより確かなものになり、我々をゴールへと導くであろう。-->
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Our purpose is the construction and development of genetic circuit to establish our "coexistence stability" model. We have alternately employed Dry and Wet approaches. We have drawn a navigational chart on our project by Dry approaches, which has been confirmed and reinforced by the data from Wet approaches.
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To establish our “balanced-differentiation” model, genetic circuit was developed. We have drawn a navigational chart on our project by Dry approaches, which has been confirmed and reinforced by the data from Wet approaches. In short, we have alternately conducted successive combinations of Dry and Wet approaches. <br>
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==0. <span style="color:#ff33cc;">Wet </span>: [[Tokyo/Works/Hybrid promoter|Hybrid promoter]]==
==0. <span style="color:#ff33cc;">Wet </span>: [[Tokyo/Works/Hybrid promoter|Hybrid promoter]]==
=====First, the newly devised promoter sensed the '''Two inputs''' is necessary for the [[Tokyo/Genetic circuit|Genetic_circuit]].=====
=====First, the newly devised promoter sensed the '''Two inputs''' is necessary for the [[Tokyo/Genetic circuit|Genetic_circuit]].=====
<!--We made hybrid promoter
<!--We made hybrid promoter
前段階として、ハイブリッドプロモータの作成、及び機能確認実験を行った。ハイブリッドプロモータは2つの入力を受け取れるプロモータで我々の遺伝子回路を実装するのに必要なパーツである。今回必要な用途を満たしたものが存在しなかったので、配列から設計を行った。-->
前段階として、ハイブリッドプロモータの作成、及び機能確認実験を行った。ハイブリッドプロモータは2つの入力を受け取れるプロモータで我々の遺伝子回路を実装するのに必要なパーツである。今回必要な用途を満たしたものが存在しなかったので、配列から設計を行った。-->
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We created a new hybrid promoter and checked its function. ('''Fig. 1''' and '''2''')
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For initial attempts at regulating differentiation of E.coli by a set of two inputs, new hybrid promoter was designed . There is no desirable part among previous publications as well as BioBrick parts. Thus, we designed the parts that can be activated by LuxR and repressed by LacI . (fig.1).These brand-new parts worked as designed (fig.2).'''([[Tokyo/Works/Hybrid promoter|See more.]])'''
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This newly devised hybrid promoter regulated by two inputs is essential to the genetic circuit in our project.
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Since there are no parts available that meet required conditions - activated by AHL and repressed by LacI - among previous publishments as well as BioBrick parts, we started with the design of its sequence. '''([[Tokyo/Works/Hybrid promoter|See more.]])'''
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<br>[[Image:Hybridgraph.JPG|thumb|200px|'''Fig. 1 New Hybrid Promoter''' The newly deviced hybrid promoter is regulated by two inputs, AHL and LacI.|left]][[Image:Hybrid promoter.JPG|thumb|500px|'''Fig. 2 The sequence of the hybrid promoter''' <br> The sequence contains regulatory sites of AHL-LuxR, LacI.|center|left]]
<br>[[Image:Hybridgraph.JPG|thumb|200px|'''Fig. 1 New Hybrid Promoter''' The newly deviced hybrid promoter is regulated by two inputs, AHL and LacI.|left]][[Image:Hybrid promoter.JPG|thumb|500px|'''Fig. 2 The sequence of the hybrid promoter''' <br> The sequence contains regulatory sites of AHL-LuxR, LacI.|center|left]]
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Revision as of 18:15, 26 October 2007


Abstract  Concept & Model  Requirements  Genetic_circuit  Works  About_our_team

  0. Hybrid promoter  1. Formulation  2. Assay1  3. Simulation  4. Assay2  5. Future works


How to reach our goal

We have alternatly implemented Wet and Dry experiments to achieve our goal

To establish our “balanced-differentiation” model, genetic circuit was developed. We have drawn a navigational chart on our project by Dry approaches, which has been confirmed and reinforced by the data from Wet approaches. In short, we have alternately conducted successive combinations of Dry and Wet approaches.

0. Wet : Hybrid promoter

First, the newly devised promoter sensed the Two inputs is necessary for the Genetic_circuit.

For initial attempts at regulating differentiation of E.coli by a set of two inputs, new hybrid promoter was designed . There is no desirable part among previous publications as well as BioBrick parts. Thus, we designed the parts that can be activated by LuxR and repressed by LacI . (fig.1).These brand-new parts worked as designed (fig.2).(See more.)


Fig. 1 New Hybrid Promoter The newly deviced hybrid promoter is regulated by two inputs, AHL and LacI.
Fig. 2 The sequence of the hybrid promoter
The sequence contains regulatory sites of AHL-LuxR, LacI.














1.Dry :  Formulation

Second, we have tried to mathmatically express our model.
From simple equations, the equations necessary for our model have been deviated step by step. Though a parameter for production rate of AHL changes cell behavior from conventional mutual-inhibition model, Hill coefficients for the promoters are still critical for emergence of bistability.(See more.)
Expression3-1.jpg

2.Wet :  Assay1 using "Externally added" materials

Though Hill coefficients are critical for the differentiation, adjustments of Hill coefficients by DNA sequence modification are much more difficult than those of production rate parameters; changes in RBS -35 box, or -10 box allow production efficiency. In order to confirm feasibility of our model, we focused to measure Hill coefficients of our new promoter part.(See more.)



Fig. 3 Effect of AHL on hybrid promoter Enhanced fluorescence intensity represents up-regulation of LuxR via AHL.
Fig. 4 Effect of LacI on hybrid promoter Enhanced fluorescence intensity represents down-regulation of LacI repression via IPTG.















3.Dry :  Simulation

Using the data from actual experiments, we simulated behaviors of our model.
Based on stochastic simulation using parameters obtained from our wet experiments, we have confirmed that the whole system becomes unstable when there are only idlers left, and then, they become either of workers and idlers. Also we have determined other parameters necessary for the desired behavior of this system. (See more.)



Fig. 5 Simulation result

4.Wet :  Assay2 on "Cell-produced" AHL and Expression comparison

Here the simulation results were tested by actual wet experiments.
Whether the parameters obtained in 3 is feasible in actual Wet experiments was tested by focusing on the amount of cell-produced AHL as well as the strength of the promoters. Indication from the result is applied for the next work.(See more.)

5.Future works

Through the experiments mentioned above, we have found that our model can be completed by changing some of the parts employed so far. Continuing such simulation oriented construction of genetic circuit, it will be increasingly necessary to exchange parts. Here we would like to offer useful means for part exchanges.

Based on the results from wet experiments, the next dry approach - analysis and simulation - should be performed, which will in turn be testified and confirmed by wet experiments. Continueing these processes, if time permits, would further sophisticate and complete our model. (See more.)