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<h2><center><i>Figure 3. Agarose gel (1%) showing LAMP amplification of invA, gbpA and <i>lmo0733</i> miniprep DNA with designed LAMP primers (PrimerExplorer). Amplification is seen for <i>lmo0733</i> and gbpA but not invA when gene transformed E. Coli colonies were used. (Lane 1) 500 bp ladder; (Lane 2) invA miniprep + invA LAMP primers; (Lane 3) Nuclease-free water + invA LAMP primers; (Lane 4) invA transformed E. Coli colony + invA LAMP primers; (Lane 5) gbpA miniprep + gbpA LAMP primers; (Lane 6) Nuclease-free water + gbpA LAMP primers; (Lane 7) gbpA transformed E. Coli colony + gbpA LAMP primers; (Lane 8) <i>lmo0733</i> miniprep + <i>lmo0733</i> LAMP primers; (Lane 9) Nuclease-free water + <i>lmo0733</i> LAMP primers; (Lane 10) <i>lmo0733</i> transformed E. Coli colony + <i>lmo0733</i> LAMP primers. | <h2><center><i>Figure 3. Agarose gel (1%) showing LAMP amplification of invA, gbpA and <i>lmo0733</i> miniprep DNA with designed LAMP primers (PrimerExplorer). Amplification is seen for <i>lmo0733</i> and gbpA but not invA when gene transformed E. Coli colonies were used. (Lane 1) 500 bp ladder; (Lane 2) invA miniprep + invA LAMP primers; (Lane 3) Nuclease-free water + invA LAMP primers; (Lane 4) invA transformed E. Coli colony + invA LAMP primers; (Lane 5) gbpA miniprep + gbpA LAMP primers; (Lane 6) Nuclease-free water + gbpA LAMP primers; (Lane 7) gbpA transformed E. Coli colony + gbpA LAMP primers; (Lane 8) <i>lmo0733</i> miniprep + <i>lmo0733</i> LAMP primers; (Lane 9) Nuclease-free water + <i>lmo0733</i> LAMP primers; (Lane 10) <i>lmo0733</i> transformed E. Coli colony + <i>lmo0733</i> LAMP primers. | ||
</i></center></h2> | </i></center></h2> | ||
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<img src="https://static.igem.org/mediawiki/2018/b/b4/T--NYU_Abu_Dhabi--Results--Biology_4.JPG"class="center"> | <img src="https://static.igem.org/mediawiki/2018/b/b4/T--NYU_Abu_Dhabi--Results--Biology_4.JPG"class="center"> | ||
<h2><center><i>Figure 4. Agarose gel (1%) showing LAMP amplification of gbpA with non colorimetric reaction mastermix (MM) (Optigene) with either hydroxy naphthol blue (HNB) or SYBR green added and with colorimetric reaction mastermix (NEB). (Lane 1) 500 bp ladder; (Lane 2) gbpA + Optigene MM + gbpA LAMP primers + HNB; (Lane 3) nuclease free water + Optigene MM + gbpA primers + HNB; (Lane 4) gbpA + Optigene MM + gbpA LAMP primers + SYBR green; (Lane 5) Nuclease free water + Optigene MM + gbpA LAMP primers + SYBR green; (Lane 6) gbpA + NEB MM + gbpA LAMP primers; (Lane 7) Nuclease free water + NEB MM + gbpA LAMP primers. | <h2><center><i>Figure 4. Agarose gel (1%) showing LAMP amplification of gbpA with non colorimetric reaction mastermix (MM) (Optigene) with either hydroxy naphthol blue (HNB) or SYBR green added and with colorimetric reaction mastermix (NEB). (Lane 1) 500 bp ladder; (Lane 2) gbpA + Optigene MM + gbpA LAMP primers + HNB; (Lane 3) nuclease free water + Optigene MM + gbpA primers + HNB; (Lane 4) gbpA + Optigene MM + gbpA LAMP primers + SYBR green; (Lane 5) Nuclease free water + Optigene MM + gbpA LAMP primers + SYBR green; (Lane 6) gbpA + NEB MM + gbpA LAMP primers; (Lane 7) Nuclease free water + NEB MM + gbpA LAMP primers. | ||
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<img src="https://static.igem.org/mediawiki/2018/4/4d/T--NYU_Abu_Dhabi--Results--Biology_5.JPG"class="center"> | <img src="https://static.igem.org/mediawiki/2018/4/4d/T--NYU_Abu_Dhabi--Results--Biology_5.JPG"class="center"> | ||
<h2><center><i>Figure 5. Visualization of SYBR green at 302 nm and 365 nm for <i>lmo0733</i> LAMP reaction.</i></center></h2> | <h2><center><i>Figure 5. Visualization of SYBR green at 302 nm and 365 nm for <i>lmo0733</i> LAMP reaction.</i></center></h2> | ||
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+ | <h2>No fluorescence was detected in the absence of SYBR green. Background fluorescence was observed in the negative controls. A clear distinction was observed between positive and negative controls. </h2> | ||
+ | <br> | ||
<img src="https://static.igem.org/mediawiki/2018/8/8c/T--NYU_Abu_Dhabi--Results--Biology_6.JPG"class="center"> | <img src="https://static.igem.org/mediawiki/2018/8/8c/T--NYU_Abu_Dhabi--Results--Biology_6.JPG"class="center"> | ||
<h2><center><i>Figure 6. Visualization of SYBR green at 302 nm and 365 nm for <i>invA</i> LAMP reaction</h2> | <h2><center><i>Figure 6. Visualization of SYBR green at 302 nm and 365 nm for <i>invA</i> LAMP reaction</h2> | ||
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<h2><center><i>Figure 15. Agarose gel (3%) showing RPA amplification of <i>lmo0733</i>, <i>invA</i> and <i>gbpA</i> miniprep DNA and transformed <i>E. coli</i> colonies in 50 ul volume reactions. The light bands seen in the negative control lanes are primer dimers and proteins from the RPA reaction. (Lane 1) 100 bp ladder; (Lane 2) <i>lmo0733</i> miniprep + <i>lmo0733</i> RPA primers; (Lane 3) <i>lmo0733</i> transformed <i>E. coli</i> colony + <i>lmo0733</i> RPA primers; (Lane 4) <i>lmo0733</i> negative control; (Lane 5) <i>invA</i> miniprep + <i>invA</i> RPA primers; (Lane 6) <i>invA</i> transformed <i>E. coli</i> colony + <i>invA</i> RPA primers; (Lane 7) <i>invA</i> negative control; (Lane 8) <i>gbpA</i> miniprep + <i>gbpA</i> RPA primers; (Lane 9) <i>gbpA</i> transformed <i>E. coli</i> colony + <i>gbpA</i> RPA primers; (Lane 10) <i>gbpA</i> negative control; (Lane 11) 500 bp ladder | <h2><center><i>Figure 15. Agarose gel (3%) showing RPA amplification of <i>lmo0733</i>, <i>invA</i> and <i>gbpA</i> miniprep DNA and transformed <i>E. coli</i> colonies in 50 ul volume reactions. The light bands seen in the negative control lanes are primer dimers and proteins from the RPA reaction. (Lane 1) 100 bp ladder; (Lane 2) <i>lmo0733</i> miniprep + <i>lmo0733</i> RPA primers; (Lane 3) <i>lmo0733</i> transformed <i>E. coli</i> colony + <i>lmo0733</i> RPA primers; (Lane 4) <i>lmo0733</i> negative control; (Lane 5) <i>invA</i> miniprep + <i>invA</i> RPA primers; (Lane 6) <i>invA</i> transformed <i>E. coli</i> colony + <i>invA</i> RPA primers; (Lane 7) <i>invA</i> negative control; (Lane 8) <i>gbpA</i> miniprep + <i>gbpA</i> RPA primers; (Lane 9) <i>gbpA</i> transformed <i>E. coli</i> colony + <i>gbpA</i> RPA primers; (Lane 10) <i>gbpA</i> negative control; (Lane 11) 500 bp ladder | ||
</i></center></h2> | </i></center></h2> | ||
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<h2>RPA reactions worked successfully for 50 ul reactions. To save lab reagents in experiments and to make the microfluidic chips economical in terms of resources, further experiments were carried out to test RPA reactions at lower volumes, i.e. 25 ul and 10 ul. | <h2>RPA reactions worked successfully for 50 ul reactions. To save lab reagents in experiments and to make the microfluidic chips economical in terms of resources, further experiments were carried out to test RPA reactions at lower volumes, i.e. 25 ul and 10 ul. | ||
</h2> | </h2> | ||
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<h2><center><i>Figure 16. Agarose gel (3%) showing RPA amplification of <i>invA</i> and <i>gbpA</i> miniprep DNA and negative controls in 25 ul volume reactions. The light bands seen in the negative control lanes are primer dimers and proteins from the RPA reaction. (Lane 1) 100 bp ladder; (Lane 2) <i>invA</i> miniprep + <i>invA</i> RPA primers; (Lane 3) <i>invA</i> negative control; (Lane 4) <i>gbpA</i> miniprep + <i>gbpA</i> RPA primers; (Lane 5) <i>gbpA</i> negative control. | <h2><center><i>Figure 16. Agarose gel (3%) showing RPA amplification of <i>invA</i> and <i>gbpA</i> miniprep DNA and negative controls in 25 ul volume reactions. The light bands seen in the negative control lanes are primer dimers and proteins from the RPA reaction. (Lane 1) 100 bp ladder; (Lane 2) <i>invA</i> miniprep + <i>invA</i> RPA primers; (Lane 3) <i>invA</i> negative control; (Lane 4) <i>gbpA</i> miniprep + <i>gbpA</i> RPA primers; (Lane 5) <i>gbpA</i> negative control. | ||
</i></center></h2> | </i></center></h2> | ||
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<h2>The reaction volume for RPA was successfully optimized to a total volume of 25 ul. This allowed for economical use of reagents in lab experiments and for use in microfluidic chips. | <h2>The reaction volume for RPA was successfully optimized to a total volume of 25 ul. This allowed for economical use of reagents in lab experiments and for use in microfluidic chips. | ||
</h2> | </h2> | ||
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<h5><i>Reaction volume: 10 uL reaction</i></h5> | <h5><i>Reaction volume: 10 uL reaction</i></h5> | ||
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<img src="https://static.igem.org/mediawiki/2018/a/a4/T--NYU_Abu_Dhabi--Results--Biology_18.JPG"class="center"> | <img src="https://static.igem.org/mediawiki/2018/a/a4/T--NYU_Abu_Dhabi--Results--Biology_18.JPG"class="center"> | ||
<h2><center><i>Figure 18. Visualization of SYBR green at 302 nm and 365 nm for <i>invA</i> RPA reaction</h2> | <h2><center><i>Figure 18. Visualization of SYBR green at 302 nm and 365 nm for <i>invA</i> RPA reaction</h2> | ||
+ | <br><br> | ||
<h2>No fluorescence was detected in the absence of SYBR green. Minimal background fluorescence was observed in the negative controls. A clear distinction was observed between positive and negative controls. 1000X SYBR Green was determined to be the optimal concentration and 365 nm seemed to produce the best images for visualization of LAMP amplification. | <h2>No fluorescence was detected in the absence of SYBR green. Minimal background fluorescence was observed in the negative controls. A clear distinction was observed between positive and negative controls. 1000X SYBR Green was determined to be the optimal concentration and 365 nm seemed to produce the best images for visualization of LAMP amplification. | ||
</i></center></h2> | </i></center></h2> |
Revision as of 18:54, 17 October 2018