Difference between revisions of "Team:XJTLU-CHINA/Applied Design"

Line 29: Line 29:
 
             <h1>Dairy product</h1>
 
             <h1>Dairy product</h1>
 
             <p style="font-size:20px">
 
             <p style="font-size:20px">
                 Yogurt has been an everyday dairy product that has its widespread application to improve humans’s intestine health. Our blueprint
+
                 Yogurt has been an everyday dairy product which can improve human intestinal health. Our blueprint
                 is to combine the benefits of yogurts as a daily commodity and the effectiveness of our antimicrobial peptide
+
                 is to combine the benefits of yogurts as a daily commodity and the effectiveness of antimicrobial peptides
                 to serve as an intestine disease reinforced therapy. The yogurt itself has very obvious advantages of providing
+
                 to serve as an intestine disease targeted therapy. The yogurt itself has a very obvious advantages in providing
                 a large quantity of probiotics that can inhibit the growth of bad bacteria in the guts while keeping the
+
                 a large quantity of probiotics which can inhibit the growth of bad bacteria in the guts while keeping the
 
                 good bacteria on work. In addition,
 
                 good bacteria on work. In addition,
                 <i>Lactococcus lactis </i>will function as the ideal host of our antimicrobial peptides. Firstly, it is rather
+
                 <i>Lactococcus lactis </i>will function as an ideal host of antimicrobial peptides. Firstly, it is rather
                 common in yogurt. In addition, the probiotics host can reproduce in a rapid pace to accumulate and manufacture
+
                 common to be present in yogurt. In addition, the probiotics can reproduce in a rapid pace to accumulate and manufacture
                 as much antimicrobial peptides to be effective. The metabolism pathways for
+
                 enough antimicrobial peptides to be effective. The metabolic pathways of
                 <i> L. latis</i> is also more more controllable and will not produce some toxin outside the probiotics to induce
+
                 <i> L. lactis</i> is also well-known  and will not produce some toxins outside the probiotics to give undesirable
                 some side effect. Most importantly,
+
                 side effects. Most importantly,
                 <i>L. latis </i>will only release the antimicrobial peptide once it gets in touch with pathogens, which minimize
+
                 <i>L. lactis </i>will only release the antimicrobial peptides once it gets in touch with a specific pathogen, which minimizes
 
                 the possibilities of antibiotics resistance.
 
                 the possibilities of antibiotics resistance.
 
             </p>
 
             </p>
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         <div class="para">
 
         <div class="para">
             <h1>Reduction on Antibiotic resistance</h1>
+
             <h1>Reduction on antibiotic resistance</h1>
 
             <p style="font-size:20px">
 
             <p style="font-size:20px">
                 Antibiotics have been very popular for its treatment of many serious diseases, say, in our case, human intestinal disease.
+
                 Antibiotics have been very popular for its treatment of many serious infections, say, in our case, human intestinal diseases.
                 Antibiotics conduct its effect by several mechanisms. We can either kill pathogens by damaging its cell wall
+
                 Antibiotics exert their effects via several mechanisms. They can either kill pathogens by damaging their cell wall
                 or cell membrane structure, inhibiting its normal protein and nucleic acid synthesis or interfering with
+
                 or cell membrane structure, inhibiting normal protein and nucleic acid synthesis or interfering with
                 its metabolic pathways. Unfortunately, some pathogens will conjure some slippery tricks to help themselves
+
                 their metabolic pathways. Unfortunately, some pathogens will conjure some slippery tricks to help themselves to
 
                 survive, proliferate and eventually become highly resistant to the antibiotics, such as producing some new
 
                 survive, proliferate and eventually become highly resistant to the antibiotics, such as producing some new
                 mutations rapidly or getting some genetic-makeups from old bacteria who has been antibiotic-resistant. In
+
                 mutations rapidly or acquiring genetic-makeups from old bacteria which have antibiotic resistance. In
                 order to handle the problem of antibiotics resistance, we got some inspiration from the cocktail therapy
+
                 order to handle the problem of acquiring antibiotics resistance, we got inspiration from the technique used in the cocktail treatment for
                 in HIV treatment, in which different drug classes target different parts of HIV virus to impede the HIV replication
+
                 HIV infection, in which different drugs targeting different parts/proteins of HIV are used in impeding the HIV replication
                 and cell infection. Similarly, our idea is to use a multiple of antimicrobial peptides to attack the pathogens
+
                 and cell infection. Similarly, our idea hopes to use a multiple kinds of antimicrobial peptides to attack the pathogens
 
                 simultaneously in different parts of the bacteria. Therefore, only when the bacteria produce several mutations
 
                 simultaneously in different parts of the bacteria. Therefore, only when the bacteria produce several mutations
                 in the different parts at the same time can it survive the antimicrobial attack. This kind of mutation is
+
                 in the different structures simultaneously can it survive the antimicrobial attack. Simultaneous mutation in 3 different proteins/structures is
                 very difficult for the bacteria to happen because it requires a series of mutation to occur together. If
+
                 very difficult and unlikely to happen. If
                 there is only one kind of mutation that can tackle with a certain kind of antimicrobial peptide, the bacteria
+
                 there is only one mutation that leads to the resistance to an antimicrobial peptide, the bacteria
 
                 will still be killed by other classes of antimicrobial peptides. And that's how our project works. Our
 
                 will still be killed by other classes of antimicrobial peptides. And that's how our project works. Our
 
                 <i>
 
                 <i>
                     L. latis </i>will produce many kinds of different-functioned antimicrobial peptides together to realize
+
                     L. lactis </i>will produce many kinds of different-functioned antimicrobial peptides working together to realize
                 a "cocktail" effect. In other words, there will be a higher genetic barrier to for bacteria to gain resistance.
+
                 a "cocktail" effect. In other words, there will be a higher genetic barrier for the bacteria to gain resistance.
                 Another advantage of our project is that antimicrobial peptides will only be released as soon as the
+
                 Another advantage of our project is that antimicrobial peptides will only be released as soon as  
                 <i>L. latis </i>detect those pathogens, which can wisely control the drug dosage under an appropriate quantity
+
                 <i>L. lactis </i> detects <i>Staphylococcus aureus</i>, which can wisely control the drug dosage under an appropriate quantity
 
                 depending on the patients' own condition, and thus effectively alleviate the problem of antibiotic overuse
 
                 depending on the patients' own condition, and thus effectively alleviate the problem of antibiotic overuse
                 that will cause resistance. Later on. Thus, our project is not only good at treating bacterial intestine
+
                 that will cause resistance.  
                disease, but are also a good application of antibiotic resistance. Finally, our therapy can also serve as
+
                a means of testing the drug resistance. By analyzing phenotype and genotype of bacteria, the optimum combination
+
                of drugs for treatment may be detected.
+
 
             </p>
 
             </p>
 
         </div>
 
         </div>

Revision as of 07:12, 1 November 2017

Application

Application

Dairy product

Yogurt has been an everyday dairy product which can improve human intestinal health. Our blueprint is to combine the benefits of yogurts as a daily commodity and the effectiveness of antimicrobial peptides to serve as an intestine disease targeted therapy. The yogurt itself has a very obvious advantages in providing a large quantity of probiotics which can inhibit the growth of bad bacteria in the guts while keeping the good bacteria on work. In addition, Lactococcus lactis will function as an ideal host of antimicrobial peptides. Firstly, it is rather common to be present in yogurt. In addition, the probiotics can reproduce in a rapid pace to accumulate and manufacture enough antimicrobial peptides to be effective. The metabolic pathways of L. lactis is also well-known and will not produce some toxins outside the probiotics to give undesirable side effects. Most importantly, L. lactis will only release the antimicrobial peptides once it gets in touch with a specific pathogen, which minimizes the possibilities of antibiotics resistance.

Reduction on antibiotic resistance

Antibiotics have been very popular for its treatment of many serious infections, say, in our case, human intestinal diseases. Antibiotics exert their effects via several mechanisms. They can either kill pathogens by damaging their cell wall or cell membrane structure, inhibiting normal protein and nucleic acid synthesis or interfering with their metabolic pathways. Unfortunately, some pathogens will conjure some slippery tricks to help themselves to survive, proliferate and eventually become highly resistant to the antibiotics, such as producing some new mutations rapidly or acquiring genetic-makeups from old bacteria which have antibiotic resistance. In order to handle the problem of acquiring antibiotics resistance, we got inspiration from the technique used in the cocktail treatment for HIV infection, in which different drugs targeting different parts/proteins of HIV are used in impeding the HIV replication and cell infection. Similarly, our idea hopes to use a multiple kinds of antimicrobial peptides to attack the pathogens simultaneously in different parts of the bacteria. Therefore, only when the bacteria produce several mutations in the different structures simultaneously can it survive the antimicrobial attack. Simultaneous mutation in 3 different proteins/structures is very difficult and unlikely to happen. If there is only one mutation that leads to the resistance to an antimicrobial peptide, the bacteria will still be killed by other classes of antimicrobial peptides. And that's how our project works. Our L. lactis will produce many kinds of different-functioned antimicrobial peptides working together to realize a "cocktail" effect. In other words, there will be a higher genetic barrier for the bacteria to gain resistance. Another advantage of our project is that antimicrobial peptides will only be released as soon as L. lactis detects Staphylococcus aureus, which can wisely control the drug dosage under an appropriate quantity depending on the patients' own condition, and thus effectively alleviate the problem of antibiotic overuse that will cause resistance.

Collaborators and Supporters

Location

Rm 363, Science Building
Xi'an Jiaotong-Liverpool University
111 Ren'ai Road, Suzhou, China
215123

Get in touch

emali

igem@xjtlu.edu.cn

XJTLU-CHINA iGEM 2017