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The high thermostability of ferritin allows for the employment of <a href="https://static.igem.org/mediawiki/2018/7/7e/T--Bielefeld-CeBiTec--Ferritin_Purification_LK.pdf">simple heat based purification protocols</a> making extraction quick, cheap and simple. | The high thermostability of ferritin allows for the employment of <a href="https://static.igem.org/mediawiki/2018/7/7e/T--Bielefeld-CeBiTec--Ferritin_Purification_LK.pdf">simple heat based purification protocols</a> making extraction quick, cheap and simple. | ||
− | Changing the pH is a frequently used method to achieve assembly and disassembly of the ferritin nanocage | + | Changing the pH is a frequently used method to achieve assembly and disassembly of the ferritin nanocage. |
− | However, using strong acids to disassemble the ferritin limits the range of possible proteins and molecules that can be enclosed. | + | However, using strong acids to disassemble the ferritin limits the range of possible proteins and molecules that can be enclosed (Chen H. 2016). |
By using advanced modelling software and established protein engineering principles ferritin can be redesigned and modified to customize the pH range at which diss- and reassembly occur opening up new applications in the field of medicine, nano- and biotechnology. | By using advanced modelling software and established protein engineering principles ferritin can be redesigned and modified to customize the pH range at which diss- and reassembly occur opening up new applications in the field of medicine, nano- and biotechnology. | ||
− | We set out to improve ferritin as a versatile container for the enclosure of proteins and molecules by predicting and modeling multiple mutations affecting the stability of the ferritin cage. | + | We set out to improve ferritin as a versatile container for the enclosure of proteins and molecules by predicting and modeling multiple mutations affecting the stability of the ferritin cage. Subsequently we implemented the modeled mutations and investigated their effect on ferritin stability. |
− | + | To enhance the stability we incorporated copper ion binding sites in the binding region between ferritin subunits which also increases ferritins performance in filtering valuable resources out of mining water, while simultaneously reducing the toxic copper ion load of the water and inside the cell. | |
</article> | </article> | ||
− | <h2>The results for the nanoparticle experiments can be found <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/Ferritin_Results"> | + | <h2>The results for the nanoparticle experiments described above can be found on our ferritin results page <a href="https://2018.igem.org/Team:Bielefeld-CeBiTec/Ferritin_Results">results page</a></h2> |
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Revision as of 06:35, 6 December 2018
Nanoparticles
Short Summary
Escherichia coli Ferritins
Human Ferritin
Ferritin Assembly and Stability Modification
The results for the nanoparticle experiments described above can be found on our ferritin results page results page
Molecular graphics and analyses performed with UCSF Chimera, developed by the Resource for Biocomputing, Visualization, and Informatics at the University of California, San Francisco, with support from NIH P41-GM103311.
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