Team:BIT/Team

From 2013.igem.org

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<a href="https://2013.igem.org/Team:BIT">Home
<a href="https://2013.igem.org/Team:BIT">Home
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<li>
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    <a href="">Brief introduction
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<a href="https://2013.igem.org/Team:BIT/Team">Team
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<a href="https://2013.igem.org/Team:BIT/Project">Project
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<a href="#bio">Biosensors</a>
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<a href="#amp">Amplifier
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<a href="https://2013.igem.org/Team:BIT/Parts">Parts
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<a href="#chip">Biological Chip
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<a href="https://2013.igem.org/Team:BIT/HP">Human practice
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<a href="#dev">Electronic device
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<a href="https://2013.igem.org/Team:BIT/Safety">Safety
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<a href="https://2013.igem.org/Team:BIT/Notebook">Notebook
<a href="https://2013.igem.org/Team:BIT/Notebook">Notebook
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<p><span class="Tit"> <span class="White"><span class="White"><br /><br />
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<p>&nbsp;</p>
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<table width="730" border="0" cellspacing="0" cellpadding="0">
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     <td colspan="2" class="Int"><p>Team Members</p>
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     <td width="730"><p class="Cap1">A Detailed Introduction of Integrated Sensor</p>
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       <p class="Cap1"> <a name="top"></a>for Detection of Milk Product</p></td>
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     <td><p class="Cap">Biosensors</p>
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    <td width="471">Xin Ma is the president of this team in 2013,  who has been majoring in Biomedical Engineering in Beijing Institute of  Technology since 2011. Debate, speech, board games, writing and composing are  his five favorites. He would like to take advantage of the new discovery  related to human health to create a better and more beautiful life for all the  mankind. For him, iGEM provides an excellent platform to take a step forward to  achieve his ideal<br />
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      <p><a name="bio"></a></p>
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      <p><span class="Cap">Beta-lactam detection device</span><br>
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       <p>Background<br>
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        In order to prevent cow mastitis, all the producers of diary products feed the cows with antibiotics. However, excessive residual antibiotics will increase the drug resistance on human body. According to international standards for antibiotics, most dairy farmers use beta-lactams, such as penicillin deviants and cephalosporin which exceed quality standards on their cows. The beta-lactam biosensor is designed for the detection of beta-lactam in dairy products.</p>
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      <p>Beta-lactam biosensor is aimed to create a biosensor that can be applied in  practical life. It is useful for citizens to know what they drink and what they buy for their little babies are qualified and hygienic. While there are traditional methods to detect beta-lactam antibiotics, such as enzyme-linked immunosorbent assay (ELISA) and ECLIPSE50, all these methods have to rely on laboratories which are equipped with precise instruments. In order to solve the problem, our Beta-lactam biosensor is designed to be used on on-site detection in a few hours by users without special training.</p>
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      <p>Device<br>
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    <td width="471">Yiming Dong is an  undergraduate student who has been majoring in Biotechnology since 2011. She is  a girl who is very outgoing and passionate .In her spare time, she loves  reading books, listening to music and dancing.  She takes part in the competition to creatively study and apply the  relevant knowledge. She is in charge of the biological experiment and deal with  some affairs of the group. She believes science and technology can benefit  mankind and wants to contribute to the development of mankind.<br />
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        Beta-Lactam antibiotics have become less effective for the treatment of staphylococcal infections as a result of the bacteria's resistance to Beta-Lactam increases sharply during the past few years. Researches have shown that the resistance is mediated by beta-lactamase (encoded by blaZ) that hydrolyzes penicillin whose transcription is regulated by related regulators (encoded by blaI). The purified repressor(BlaI) of beta-lactamase production has been shown to bind specifically to two regions of dyad symmetry, known as operators, which are located between the divergently transcribed beta-lactamase structural gene(blaZ) and the gene(blaR1) encoding the putative transmembrane sensor protein. </p>
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      <p>The bla operon has been found that is induced by beta-lactam.<br>
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        Hypothesis identified bla as a beta-lactam-sensing operon of beta-lactamase expression, so we designed two devices working in E.coli (DH5α) to build the beta-lactam biosensor.</p>
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    <td width="104"><img src=https://static.igem.org/mediawiki/2013/archive/9/96/20130901113131%21%E9%82%A2%E5%B7%A7%E7%91%9E.jpg></td>
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        Device 1</p>
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    <td width="471"><p>Qiaorui Xing is an undergraduate student  who has been majoring in Bioengineering since 2010. She played a role of team  member in the IGEM contest, and is mainly responsible for conducting  experiment. Her motivation is to receive more challenge, to learn more  professional knowledge and to solve practical problem by using biological  method. Her motto is that where there is a will, there is a way. So may her  succeed. <br />
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      <p>This device will work to detect the concentration of Beta-Lactam in dairy products. At the same time, we designed another two devices to decrease the detection limit.</p>
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        Device 2</p>
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E-mail: 1511130310@qq.com;</td>
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      <p>Result</p>
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    <td width="471"><p>A&rsquo;min Tian is a 20-year-old girl who comes  from Xianyang City, Shaanxi province, China. Her major is Biomedical  Engineering and she will be a junior when she participates in the iGEM  Jamboree. She designs the detection of dichromate in dairy products and potable  water. She loves to do the biology experiments.<br /><br />
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              TEL: +8613260233328</p>
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E-mail: 237416567@qq.com  </p>
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    <td width="471">Meng Zijian is an undergraduate of BIT whose major is Bioengineering. His interest is molecular biology and bioinformatics which is the reason he works on the gene experiment. In addition to the appetite for major, he plays well on the others, such as Chinese chess, drawing, especially the ten levels of saxophone. He hopes he can learn more and transform the knowledge into real life through iGEM composition. What he insists on is the potential of biology. 21s century is the generation of biology explosion. The development in the area of subject’s overlapping must change the world. So he gets ready for farther study. What he wants to do is to make progress on biology so that he can contribute to people.<br />
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E-mail:zijianmeng1@gmail.com</p> <br />
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    <td width="471">Keren He is an  undergraduate student who has been majoring in Biotechnology. As a student to pursue the most interesting knowledge, he decided to take part in IGEM as an  available way to achieve his ideal. Although he is a junior student, he plays an  important role in this team, because he takes charge of the innovation of the team. And his knowledge is not enough to his work though, he is keeping  studying all the time and he is confident. By the way, his best hobby is  reading. Apart from this, he likes playing basketball very much and his  favorite basketball star is Kobe Blyant. And he plans to study in the U.S.  after his graduation. As we all know, biology is developing all the time. He  hopes he can know biology more deep by this time iGEM.<br />
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    <td width="471">Zhou Rui is a student who has been majoring in Biotechnology since 2011. When she was a freshman, she joined the lab, mastered the basic experimental technology and laid a solid foundation for the future research. From experiments, she harvests a lot of knowledge which is hard to learn from books and improves the basic experimental skills and creative thinking, fully realizes the rigorous, serious and pragmatic spirit of scientific research. Participating in this project, she will continue this kind of realistic attitude and perform each experiment more seriously.<br />
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    <td width="471">Xingjian Zhang,  Biomedical Engineering junior undergraduates, head of microfluidic chip group,  is also the contact person of BIT-iGEM team, whose motto is &quot;Life  is a continuous improvement journey&quot;. He loves music and  sports. He is a band drummer and also a football team striker. He takes part in  this competition in order to improve his personal ability by learning from other&rsquo;s advantage and to gain more experience after enjoying the time of this  competition. He expects for this communication and looks forward to meet with  every kind of friends in different culture background.<br />
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    <td width="471">Yunjie Qiu is a junior  majoring in Biotechnology at BIT. She is interested in stem cells research and  microorganism circuit. Besides iGEM, she is doing a related research at college  lab about induced pluripotent stem cells. She would like to learn more about  synthetic biology and do a project from the ground with her team in the process  of competition. In her space, Qiu enjoys playing badminton and watching movies.<br />
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    <td width="471">Mengran Tao is an  undergraduate student majoring in Biotechnology. He participates in the group  of the Chromium ion biosensor and biological chip. People drink milk every day,  so he wishes their biological monitor could help people build the safety of the  milk. He has made lots of friends during the competition. The feeling of  working together to achieve one goal is wonderful. He enjoys it and he is also  interested in the synthetic biology. iGEM gives him a chance to cultivate the  team spirit and enhance his professional knowledge. His hobby is playing  basketball and playing the guitar, so the NBA and music accompany him in the  free time. Anyone who likes NBA or music can make friends with him.<br />
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    <td width="471"><p>Zhenyu Li is an undergraduate student who  has been majoring in Electronic Packaging since 2011. Although he is not a  professional biology student, he still has deep love for the mystery of it. He  is good at electronics and mathematics. He is responsible for the hardware part  of this project with another one. He has great passion and confidence.<br />
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E-mail:641437260@qq.com;</td>
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    <td width="471"> <p>Deyu Zhang, who is the member responsible  for the biological hardware ,Video , and the core of our web construction, is an  undergraduate in grade two coming from BIT.<br /><br />
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      TEL: 18810577546    86-0439-3333953</p>
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E-mail: 824074989@qq.com/wwwbhxq502@sina.com;</td>
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    <td width="471">Chenghao Liu is an undergraduate  who has been majoring in Bioengineering since 2010. He is responsible for the  human resource of our team. As a guy who enjoys video games, he also likes to read science fictions. In order to improve his abilities of English and management, he joined us.<br />
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    <td width="471"><p>Siyu Feng is a senior student  majoring in Biotechnology, who joined in this team as the webmaster. Besides  academic achievements, she also excels in art, both hand drawing and computer  graphics. She believes these training and skills could benefit her in her  future career. After graduation, she hopes to continue graduate studies in  Molecular Biology and finally receive PhD degree as &ldquo;People who have Dreams.<br />
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    <td width="471"><p>Jing Gao is an undergraduate who has been majoring in Bioengineering since 2010. She is responsible for the publicity of  our team. She is interested in movies and travel. In order to improve her  abilities of design and English as well as broaden her vision, she joined us. </p>
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E-mail:15110298055@163.com<br />
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    <td width="471"> <p>Xiaoyu Zhou is an undergraduate student  studying Bioengineering. She is responsible for managing financial affairs in  BIT IGEM team. She has many kinds of hobbies such as shopping, sleeping and so on. She joined this team because she can learn a lot from this competition.</p>
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    <td width="471"><p>Wei Qin is an undergraduate student  studying Bioengineering. He is the non-experimental manager of BIT IGEM team. He manages this  team in every aspect. He has many kinds of hobbies such as mountaineering, bicycling and so on. He joined this team because he can learn a lot from this  competition.</p>
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E-mail: biterqw@126.com<br />
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  <td colspan="2" class="Int"><p>Advisors</p>
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    <td width="471"><p>Kefu Liu, one of the  four advisers in our team, is in his second year as a Master candidate in the  discipline of neurobiology and molecular biology, he offers guide for our works  in the cultivation of Bacterial and molecule biology&rsquo;s experiments.<br />
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    <td width="471"><p>Runhong Lei, one of  the four advisers in our team, is in his third year as PhD candidate in the  discipline of cytology, he offers guide for our experiments on cells.<br />
 
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      <p><span class="Cap">Amplifier</span></p>
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        If we give the biosensor an input signal, we will get an output signal, which, however, may not be strong enough for us to detect. Therefore, we have designed an amplifier, which is based on the high activity of T7 promoter, to increase the intensity of the output signal to a specific magnification. We replaced the sequence of the green fluorescent protein of the sensor with the DNA of T7 RNA polymerase to promote the expression of the downstream DNA. Thus we can get stronger fluorescent intensity as expected. </p>
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        As we all know, if the sample of material which the concentration is high enough to be detected is inserted as the input signal, the sensor will be able to &quot;feel&quot; it and produce an output signal.</p>
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    <td width="471"><p>Yan Man, one of the four advisers in our team, is in his third year as a PhD candidate in the discipline of biochip, she offers guide for our chip manufacturing works.<br />
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        However, sometimes, the output is not strong enough for us to detect. To magnify the output signal, we took advantage of the high activity of the T7 promoter. Because the T7 promoter can only be activated by the T7 RNA polymerase, a gene of T7 RNA polymerase and a T7 promoter were inserted at the downstream site of the sensor to get a stronger output. This part is what we call an &quot;amplifier&quot;.<br>
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       <p>&nbsp;</p>
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      <p> Controller<br>
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        Sometimes we need to enhance the output signal to different degrees. In other words, we want to control the magnification. A &quot;controller&quot; is designed to solve this problem. We inserted a lacO operator between the DNA of T7 RNA polymerase and green fluorescent protein, and added a lacI biobrick in the system. When there is low concentration of IPTG, the lacI will close the lacO to inhibit the expression of gfp DNA. When we add IPTG to the sample, the lacI will be combined with IPTG, and the inhibition of the expression of the downstream DNA will be inhibited. Thus we can control the magnification by controlling the concentration of IPTG.</p>
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        Here we introduced a new part which contains lacI and lacO in the system. The gene of lacI is always expressing, which inhibits the expression of lacO. In this case, even if there is an input signal, no egfp will be expressed.</p>
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        If we put IPTG in the environment as an inducer, the lacI protein will combine to the IPTG molecules and thus the inhibition will be ceased. As a result, the lacO will be activated, which will lead to the expression of downstream egfp.</p>
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        With a stable concentration of IPTG, the system will work as expected. When a weak input is given, a weak green fluorescence will be detected, while if the input gets stronger, the intensity of the green fluorescence will increase simultaneously.</p>
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        Sometimes we would like to control the magnification. This could be realized by regulating the concentration of IPTG. The higher the concentration of IPTG is, the more lacI will be combined. As a result, the expression of downstream egfp will be enhanced.<br>
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        Similarly, we can decrease the magnification by lowering the concentration of IPTG. <br>
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        This is the part what we call a &quot;controller&quot;.</p>
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      <p><a name="chip"></a></p>
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      <p class="Cap">Biochip</p>
 +
      <p class="Cap"><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span><span class="Con">Biochip</span></p>
       <p>&nbsp;</p>
       <p>&nbsp;</p>
-
       <p>&nbsp; </p></td>
+
       <p><a name="dev"></a></p>
-
  </tr>
+
      <p><span class="Cap">Hardware</span><br>
-
<tr>
+
        <img src="https://static.igem.org/mediawiki/2012/b/b6/%E5%9B%BE%E7%89%871.png" width="731" height="508"><br>
-
    <td width="104"><img src=https://static.igem.org/mediawiki/2013/4/44/Kuiwei_Qin.jpg></td>
+
        </p>
-
    <td width="471"><p>Qin Kuiwei, one of  the four advisers in our team, is in his third year as a PhD candidate in the  discipline of biochip. He offer guide for our chip manufacturing works.<br />
+
-
  <br />
+
-
    </p>
+
       <p>&nbsp;</p>
       <p>&nbsp;</p>
 +
      <p>&nbsp;&nbsp; As the joint of biological and non-biological research, this device aims to detect the fluorescent intensity of eGFP and calculate the concentration of the chemicals based on it. We can then assess the quality of the sample detected.</p>
 +
      <p>The mechanism of this device is simple (figure). </p>
 +
      <p><img src="https://static.igem.org/mediawiki/2012/4/4a/BIThd1.jpg" width="562" height="218" hspace="20" vspace="20" border="0" align="right"> &nbsp;&nbsp;</p>
       <p>&nbsp;</p>
       <p>&nbsp;</p>
-
       <p>&nbsp;</p></td>
+
       <p>The exciting light coming from blue LED through 490nm narrowband filter, which only allow 490nm light  to pass through. The filtered light then penetrates our test chip. If GFP exists on our test chip, it would transform the frequency of the excitation light into about 520nm, which is the only frequency of light that can pass through the 517nm narrowband filter. Then our sensor will be able to detect the intensity of the light and calculate the content of GFP, indicating the composition of the tested sample with our mathematical model.</p>
-
  </tr>
+
       <p>&nbsp;&nbsp;The characteristic of our device is that it is really CHEAP. Although it costs less than 300RMB in total and can easily cooperate with our biological products, it is sensitive indeed. Here are the data we got.<br>
-
<tr>
+
       </p>
-
  <td colspan="2" class="Int"><p>Instructors</p>
+
       <p></p>
-
    <p>&nbsp;</p></td>
+
       <p><br>
-
  </tr>
+
       </p>
-
<tr>
+
<p></p></td>
-
    <td width="104"><img src=https://static.igem.org/mediawiki/2013/7/75/%E9%82%93%E7%8E%89%E6%9E%97.jpg></td>
+
-
    <td width="471"><p>Yulin Deng, one of the three instructors of our team, is the dean of the School of Life Sciences  at Bit.<br />
+
-
  <br />
+
-
    </p>
+
-
      <p>&nbsp;</p>
+
-
      <p>&nbsp;</p>
+
-
      <p>&nbsp;</p></td>
+
-
  </tr>
+
-
<tr>
+
-
    <td width="104"><img src=https://static.igem.org/mediawiki/2013/e/ef/%E5%BA%86%E5%AE%8F.jpg></td>
+
-
    <td width="471"><p>Hong Qing, one of the three instructors of our team, is a professor at BIT.<br />
+
-
  <br />
+
-
    </p>
+
-
       <p>&nbsp;</p>
+
-
      <p>&nbsp;</p>
+
-
      <p>&nbsp; </p></td>
+
-
  </tr>
+
-
<tr>
+
-
    <td width="104"><img src=https://static.igem.org/mediawiki/2013/b/b3/%E9%A9%AC%E5%AE%8F.jpg></td>
+
-
    <td width="471"><p>Hong Ma, one of the three instructors of our team, is a professor at BIT.<br />
+
-
  <br />
+
-
    </p>
+
-
       <p>&nbsp;</p>
+
-
       <p>&nbsp;</p>
+
-
       <p>&nbsp; </p></td>
+
-
  </tr>
+
-
<tr>
+
-
    <td width="104"><img src=https://static.igem.org/mediawiki/2013/9/9b/%E7%8E%8B%E4%B8%80%E9%A3%9E.jpg></td>
+
-
    <td width="471"><p>Yifei Wang, the secretary of Youth League committee of the school of life science in Bit, takes charge of the over-all consideration and proper arrangement for our team.<br />
+
-
  <br />
+
-
    </p>
+
-
       <p>&nbsp;</p>
+
-
      <p>&nbsp;</p></td>
+
-
  </tr>
+
-
 
+
-
 
+
-
  <tr>
+
-
    <td>&nbsp;</td>
+
-
    <td>&nbsp;</td>
+
   </tr>
   </tr>
</table>
</table>

Revision as of 14:24, 9 September 2013

iGEM BIT

 

A Detailed Introduction of Integrated Sensor

for Detection of Milk Product

Biosensors

Beta-lactam detection device

Background
In order to prevent cow mastitis, all the producers of diary products feed the cows with antibiotics. However, excessive residual antibiotics will increase the drug resistance on human body. According to international standards for antibiotics, most dairy farmers use beta-lactams, such as penicillin deviants and cephalosporin which exceed quality standards on their cows. The beta-lactam biosensor is designed for the detection of beta-lactam in dairy products.

Beta-lactam biosensor is aimed to create a biosensor that can be applied in practical life. It is useful for citizens to know what they drink and what they buy for their little babies are qualified and hygienic. While there are traditional methods to detect beta-lactam antibiotics, such as enzyme-linked immunosorbent assay (ELISA) and ECLIPSE50, all these methods have to rely on laboratories which are equipped with precise instruments. In order to solve the problem, our Beta-lactam biosensor is designed to be used on on-site detection in a few hours by users without special training.

Device
Beta-Lactam antibiotics have become less effective for the treatment of staphylococcal infections as a result of the bacteria's resistance to Beta-Lactam increases sharply during the past few years. Researches have shown that the resistance is mediated by beta-lactamase (encoded by blaZ) that hydrolyzes penicillin whose transcription is regulated by related regulators (encoded by blaI). The purified repressor(BlaI) of beta-lactamase production has been shown to bind specifically to two regions of dyad symmetry, known as operators, which are located between the divergently transcribed beta-lactamase structural gene(blaZ) and the gene(blaR1) encoding the putative transmembrane sensor protein.

The bla operon has been found that is induced by beta-lactam.
Hypothesis identified bla as a beta-lactam-sensing operon of beta-lactamase expression, so we designed two devices working in E.coli (DH5α) to build the beta-lactam biosensor.


Device 1

This device will work to detect the concentration of Beta-Lactam in dairy products. At the same time, we designed another two devices to decrease the detection limit.


Device 2

Result

 

 

Amplifier

 


If we give the biosensor an input signal, we will get an output signal, which, however, may not be strong enough for us to detect. Therefore, we have designed an amplifier, which is based on the high activity of T7 promoter, to increase the intensity of the output signal to a specific magnification. We replaced the sequence of the green fluorescent protein of the sensor with the DNA of T7 RNA polymerase to promote the expression of the downstream DNA. Thus we can get stronger fluorescent intensity as expected.


As we all know, if the sample of material which the concentration is high enough to be detected is inserted as the input signal, the sensor will be able to "feel" it and produce an output signal.


However, sometimes, the output is not strong enough for us to detect. To magnify the output signal, we took advantage of the high activity of the T7 promoter. Because the T7 promoter can only be activated by the T7 RNA polymerase, a gene of T7 RNA polymerase and a T7 promoter were inserted at the downstream site of the sensor to get a stronger output. This part is what we call an "amplifier".

 

Controller
Sometimes we need to enhance the output signal to different degrees. In other words, we want to control the magnification. A "controller" is designed to solve this problem. We inserted a lacO operator between the DNA of T7 RNA polymerase and green fluorescent protein, and added a lacI biobrick in the system. When there is low concentration of IPTG, the lacI will close the lacO to inhibit the expression of gfp DNA. When we add IPTG to the sample, the lacI will be combined with IPTG, and the inhibition of the expression of the downstream DNA will be inhibited. Thus we can control the magnification by controlling the concentration of IPTG.


Here we introduced a new part which contains lacI and lacO in the system. The gene of lacI is always expressing, which inhibits the expression of lacO. In this case, even if there is an input signal, no egfp will be expressed.


If we put IPTG in the environment as an inducer, the lacI protein will combine to the IPTG molecules and thus the inhibition will be ceased. As a result, the lacO will be activated, which will lead to the expression of downstream egfp.



With a stable concentration of IPTG, the system will work as expected. When a weak input is given, a weak green fluorescence will be detected, while if the input gets stronger, the intensity of the green fluorescence will increase simultaneously.


Sometimes we would like to control the magnification. This could be realized by regulating the concentration of IPTG. The higher the concentration of IPTG is, the more lacI will be combined. As a result, the expression of downstream egfp will be enhanced.

Similarly, we can decrease the magnification by lowering the concentration of IPTG.
This is the part what we call a "controller".

Biochip

BiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochipBiochip

 

Hardware

 

   As the joint of biological and non-biological research, this device aims to detect the fluorescent intensity of eGFP and calculate the concentration of the chemicals based on it. We can then assess the quality of the sample detected.

The mechanism of this device is simple (figure).

  

 

The exciting light coming from blue LED through 490nm narrowband filter, which only allow 490nm light to pass through. The filtered light then penetrates our test chip. If GFP exists on our test chip, it would transform the frequency of the excitation light into about 520nm, which is the only frequency of light that can pass through the 517nm narrowband filter. Then our sensor will be able to detect the intensity of the light and calculate the content of GFP, indicating the composition of the tested sample with our mathematical model.

  The characteristic of our device is that it is really CHEAP. Although it costs less than 300RMB in total and can easily cooperate with our biological products, it is sensitive indeed. Here are the data we got.



























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