Difference between revisions of "Team:KU Leuven/Practices/Education"

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In this game the players take the role of an E. coli bacteriaum in a petri dish. The bacteria need to make patterns, based on Plasmid cards. There are three sorts of plasmid cards: 3bars, 4bars and 5 bars which are worth 1,2 and 3 points. The more complex (longer) the pattern, the more points it is worth. </p>
 
In this game the players take the role of an E. coli bacteriaum in a petri dish. The bacteria need to make patterns, based on Plasmid cards. There are three sorts of plasmid cards: 3bars, 4bars and 5 bars which are worth 1,2 and 3 points. The more complex (longer) the pattern, the more points it is worth. </p>
 
Show 3 plasmids (5,11 and 24)
 
Show 3 plasmids (5,11 and 24)
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<div class="center">
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<div id="plasmidcards">
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            <a  href="https://static.igem.org/mediawiki/2015/4/4a/KUL_card_plasmid5.png" data-lightbox="example-set" data-title="Plasmid 5"><img class="example-image" src="https://static.igem.org/mediawiki/2015/4/4a/KUL_card_plasmid5.png" alt="Plasmid 5" width="49%" height="49%"></a>
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            <a href="https://static.igem.org/mediawiki/2015/d/d4/KUL_card_plasmid11.png
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" data-lightbox="example-set" data-title="Plasmid 11"><img class="example-image" src="https://static.igem.org/mediawiki/2015/d/d4/KUL_card_plasmid11.png" alt="Plasmid 11" width="45%" height="45%"></a>
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<a  href="https://static.igem.org/mediawiki/2015/e/ee/KUL_card_plasmid24.png" data-lightbox="example-set" data-title="Plasmid 24"><img class="example-image" src="https://static.igem.org/mediawiki/2015/e/ee/KUL_card_plasmid24.png" alt="Plasmid 24" width="49%" height="49%"></a>
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          </div>
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</div>
 
https://static.igem.org/mediawiki/2015/4/4a/KUL_card_plasmid5.png
 
https://static.igem.org/mediawiki/2015/4/4a/KUL_card_plasmid5.png
 
https://static.igem.org/mediawiki/2015/d/d4/KUL_card_plasmid11.png
 
https://static.igem.org/mediawiki/2015/d/d4/KUL_card_plasmid11.png

Revision as of 14:01, 17 September 2015

Education

School visits

We introduced children in three primary schools (10 to 11 years old) to synthetic biology. We started the lessons by giving a brief introduction into biology and synthetic biology. We continued with asking the children to play a game built around the DNA codon table. The goal was to introduce the children to DNA translation and introducing mutations in a playful manner.


Codon table

Figure 1
The codon table used during school visits. Click to enlarge


Codon table

Figure 2
The Sticker code table for the game used during school visits. Click to enlarge

The game consists of two parts.
During the first part, the children were given the so called "Professor Robben" sequence. Using the DNA codon table shown in figure 1, the children translated the DNA. Colored wooden blocks symbolizing the amino acids had to be arranged into the correct protein sequence. The blocks where made in the KU Leuven's fab-lab and painted by hand ourselves.
During the second stage of the game, the children continued by mutating the DNA sequence. The players could obtain a new sticker if the DNA mutations matched the protein sequence on the sticker table shown in figure 2.




Card game

We devised an educational card game, which is fun to play for young and old.

This year we conducted a survey to study the knowledge of the general public about synthetic biology. This led to the conclusion that the general public knows very little of synthetic biology, or about bacteria in general.


We decided to do something about this and make people more acquainted with terms of synthetic biology. All the while we also wanted to introduce them to principles of our own project. A problem that often arises with this kind of goal, is that traditional methods are often too complicated or too boring. It is important to hold the people’s attention and to repeat the information so people will remember it. This is why we came up with the idea of introducing some general terms of synthetic biology in the form of a game.


The major advantage of using a game is that the content becomes less boring and people will be more excited to play it. Another advantage is the spacing effect. This is a term from the field of psychology. It means that humans are more eager to remember or learn items when they are repeated over a long time span, rather than studied in a short span of time (for example like students do the night for an exam). Researchers have found that spaced learning schedules promote both simple and complex generalization. Playing a card game will have this effect and will thus, be more effective than traditional methods.


Thus, we designed a card game where every card is based on a biological principle and contains a line with information about it. Every card also contains the information about its role in the game. This decreases the complexity of the game, since players don’t need to memorise every rule.


The end result was the game “Strains”. In this game the players take the role of an E. coli bacteriaum in a petri dish. The bacteria need to make patterns, based on Plasmid cards. There are three sorts of plasmid cards: 3bars, 4bars and 5 bars which are worth 1,2 and 3 points. The more complex (longer) the pattern, the more points it is worth.

Show 3 plasmids (5,11 and 24)
Plasmid 5 Plasmid 11 Plasmid 24
https://static.igem.org/mediawiki/2015/4/4a/KUL_card_plasmid5.png https://static.igem.org/mediawiki/2015/d/d4/KUL_card_plasmid11.png https://static.igem.org/mediawiki/2015/e/ee/KUL_card_plasmid24.png

The players have to use fluorescent proteins to make the patterns. There are three fluorescent proteins: YFP, GFP and RFP.

Show YFP, GFP and RFP https://static.igem.org/mediawiki/2015/d/d5/KUL_card_YFP.png https://static.igem.org/mediawiki/2015/9/9e/KUL_card_GFP.png https://static.igem.org/mediawiki/2015/8/80/KUL_card_RFP.png

The first player to get 10 points wins!


BUT WAIT THERE IS MORE! There are also action cards which the bacterium can use in its own advantage or to sabotage the other bacteria.

Show Virus, Tumble, Minimal Medium https://static.igem.org/mediawiki/2015/e/e0/KUL_card_virus.png https://static.igem.org/mediawiki/2015/f/fe/KUL_card_tumble.png https://static.igem.org/mediawiki/2015/2/2b/KUL_card_min.png

But the bacteria can also protect themselves against action cards with the counter action cards:

Show CRISPR-CAS, Autotrophy https://static.igem.org/mediawiki/2015/4/4b/KUL_card_crispr.png https://static.igem.org/mediawiki/2015/2/2a/KUL_card_auto.png

BUT WAIT THERE IS EVEN MORE! The bacteria also have to evade the ANTIBIOTIC CARDS

Show the 4 antibiotic cards https://static.igem.org/mediawiki/2015/5/53/KUL_card_amp.png https://static.igem.org/mediawiki/2015/2/20/KUL_card_cam.png https://static.igem.org/mediawiki/2015/e/e5/KUL_card_tet.png https://static.igem.org/mediawiki/2015/4/4c/KUL_card_kan.png

The only way to survive the antibiotic cards is with Resistance cards.

Show resistance card https://static.igem.org/mediawiki/2015/6/63/KUL_card_res.png

If you have no Resistance card, you die and you lose one of your dearly earned plasmid cards and all the cards in your hand.


There are also other cards like LVA, Metabolic Stop, YAY and so on.

We plan to turn this game into a Kickstarter project to distribute and print the game.

Contact

Address: Celestijnenlaan 200G room 00.08 - 3001 Heverlee
Telephone: +32(0)16 32 73 19
Email: igem@chem.kuleuven.be