Detection of Ricin Intoxication in Mice Using Serum Peptide Profiling by MALDI-TOF/MS
<p>The distribution chart of ricin infection sample III and control samples (red: control; green: ricin infection). The coordinates represent the related protein intensities, and the large ellipses represent the standard deviations of the peak area class average. The small ellipses show that the protein peaks selected could distinguish ricin infection from controls. (<b>A</b>) Serum pretreated with MB-HIC-8 (34,3885 Da on the <span class="html-italic">x</span> axis, and 1,1017 Da on the <span class="html-italic">y</span> axis); (<b>B</b>), serum treated with MB-HIC-18; (<b>C</b>), serum treated with IMAC-Cu; (<b>D</b>), serum treated with MB-WCX. There was a minor overlapping area in serum samples treated with MB-WCX. Therefore, we used it to enrich serum peptides in this study.</p> ">
<p>Serum peptide mass spectrum of subgroup C and III treated by MB-WCX. Every group has five replicates. Subgroup C, the ① to ⑤ samples, Subgroup III, the ⑧ to ⑩ samples.</p> ">
Abstract
:1. Introduction
2. Results and Discussion
2.1. Screening of Magnetic Beads
2.2. Detection Model Generation and Verification
3. Experimental Section
3.1. Ricin Infection in Mice
3.2. Treatment of Blood Sample
3.3. Serum Treatment with Magnetic Beads
3.4. Data Acquisition with FlexControl Software
3.5. Detection Model Generation
3.6. Model Verification and Evaluation
4. Conclusion
Acknowledgements
- Conflict of InterestThe authors declare no conflict of interests.
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Group | NO. of differential peaks * (p value ≤ 0.05 ) | Cross Validation | Recognition capability |
---|---|---|---|
I | 67 | 93.81% | 100% |
II | 69 | 94.44% | 100% |
III | 77 | 97.73% | 100% |
IV | 79 | 97.22% | 100% |
V | 82 | 94.95% | 100% |
Index | Name | Classified | Class |
---|---|---|---|
1 | MB-WCX\1h\R1 | true | 1 |
2 | MB-WCX\1h\R2 | true | 1 |
3 | MB-WCX\1h\R3 | true | 1 |
4 | MB-WCX\1h\R4 | true | 1 |
5 | MB-WCX\1h\R5 | true | 1 |
6 | MB-WCX\1h\R6 | true | 1 |
7 | MB-WCX\1h\R7 | true | 1 |
8 | MB-WCX\1h\R8 | true | 1 |
9 | MB-WCX\1h\R9 | true | 1 |
10 | MB-WCX\1h\R10 | true | 1 |
11 | MB-WCX\1h\R11 | true | 1 |
12 | MB-WCX\1h\R12 | true | 1 |
13 | MB-WCX\1h\R13 | true | 1 |
14 | MB-WCX\1h\R14 | true | 1 |
15 | MB-WCX\1h\R15 | true | 1 |
16 | MB-WCX\1h\R16 | true | 1 |
17 | MB-WCX\1h\R17 | true | 1 |
18 | MB-WCX\1h\R18 | true | 1 |
19 | MB-WCX\1h\R19 | true | 1 |
20 | MB-WCX\1h\R20 | true | 1 |
21 | MB-WCX\aerosol\R1 | true | 1 |
22 | MB-WCX\aerosol\R2 | true | 1 |
23 | MB-WCX\aerosol\R3 | true | 1 |
24 | MB-WCX\aerosol\R4 | true | 1 |
25 | MB-WCX\aerosol\R5 | true | 1 |
26 | MB-WCX\aerosol\R6 | true | 1 |
27 | MB-WCX\aerosol\R7 | true | 1 |
28 | MB-WCX\aerosol\R8 | true | 1 |
29 | MB-WCX\aerosol\R9 | true | 1 |
30 | MB-WCX\aerosol\R10 | true | 1 |
31 | MB-WCX\aerosol\R11 | true | 1 |
32 | MB-WCX\aerosol\R12 | true | 1 |
33 | MB-WCX\aerosol\R13 | true | 1 |
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Zhao, S.; Liu, W.-S.; Wang, M.; Li, J.; Sun, Y.; Li, N.; Hou, F.; Wan, J.-Y.; Li, Z.; Qian, J.; et al. Detection of Ricin Intoxication in Mice Using Serum Peptide Profiling by MALDI-TOF/MS. Int. J. Mol. Sci. 2012, 13, 13704-13712. https://doi.org/10.3390/ijms131013704
Zhao S, Liu W-S, Wang M, Li J, Sun Y, Li N, Hou F, Wan J-Y, Li Z, Qian J, et al. Detection of Ricin Intoxication in Mice Using Serum Peptide Profiling by MALDI-TOF/MS. International Journal of Molecular Sciences. 2012; 13(10):13704-13712. https://doi.org/10.3390/ijms131013704
Chicago/Turabian StyleZhao, Siyan, Wen-Sen Liu, Meng Wang, Jiping Li, Yucheng Sun, Nan Li, Feng Hou, Jia-Yu Wan, Zhongyi Li, Jun Qian, and et al. 2012. "Detection of Ricin Intoxication in Mice Using Serum Peptide Profiling by MALDI-TOF/MS" International Journal of Molecular Sciences 13, no. 10: 13704-13712. https://doi.org/10.3390/ijms131013704
APA StyleZhao, S., Liu, W.-S., Wang, M., Li, J., Sun, Y., Li, N., Hou, F., Wan, J.-Y., Li, Z., Qian, J., & Liu, L. (2012). Detection of Ricin Intoxication in Mice Using Serum Peptide Profiling by MALDI-TOF/MS. International Journal of Molecular Sciences, 13(10), 13704-13712. https://doi.org/10.3390/ijms131013704