| Literature DB >> 25470814 |
Natasha M Sanabria1, Melissa Vetten2, Charlene Andraos2, Kailen Boodhia1, Mary Gulumian2.
Abstract
Investigations have been conducted regarding the interference of nanoparticles (NPs) with different toxicological assay systems, but there is a lack of validation when conducting routine tests for nucleic acid isolation, quantification, integrity, and purity analyses. The interference ofEntities:
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Year: 2014 PMID: 25470814 PMCID: PMC4254911 DOI: 10.1371/journal.pone.0114123
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1UV-Vis spectroscopy of RNA from post-isolation spiked samples.
(A) Full spectrum absorbance analyses of artificial AuNP-spikes, measured at wavelengths from 190–840 nm. (B) Peak shifts of absorption spectra of artificial AuNP-spikes, measured at wavelengths from 190–235 nm. (C) Traditional absorbance spectrum analyses of artificial AuNP-spikes, measured at wavelengths from 220–340 nm. (D) Absorption spectra of artificial AuNP-spikes, measured at wavelengths from 450–600 nm. (E) Spiked samples containing a constant amount of RNA with variable percentage of AuNPs, indicating the absorption spectra measured at wavelengths from 190–235 nm.
Purity analysis of untreated control vs. post-isolation AuNP-spiked RNA samples.
| Sample | Without | With | Comments | ||||||||||
| Average A260/A280 | Std Dev A260/A280 | Average A260/A230 | Std Dev A260/A230 | Average yield compared to control |
| Average A260/A280 | Std Dev A260/A280 | Average A260/A230 | Std Dev A260/A230 | Average yield compared to control |
| ||
|
| 2.053 | 0.037 | 1.483 | 0.210 | 100% | N/A | 2.036 | 0.045 | 1.916 | 0.055 | 100% | N/A | Good quantity and purity. |
|
| 2.053 | 0.045 | 1.366 | 0.118 | 83.31% | 0.029* | 2.05 | 0.045 | 1.743 | 0.180 | 73.70% | 0.016* | Reduced yield; no protein contamination; no contaminants from isolation procedure when Protect solution used. |
|
| 2.033 | 0.075 | 1.333 | 0.058 | 57.62% | 0.001*** | 2.05 | 0.043 | 1.870 | 0.105 | 58.92% | 0.001*** | Reduced yield; no protein contamination; no contaminants from isolation procedure when Protect solution used. |
|
| 2.006 | 0.050 | 1.356 | 0.208 | 45.72% | 0.006** | 2.02 | 0.062 | 1.763 | 0.125 | 36.91% | 1.743E-05 *** | Reduced yield; no protein contamination; no contaminants from isolation procedure when Protect solution used. |
Note: *** p≤0.005; ** 0.005≤p≤0.01; * 0.01≤p≤0.05. (Std Dev) Standard Deviation.
UV absorption bands for chromophores, adapted from [29].
| Chromophore | Formula | Wavelength nm (ε at maximum) | Relation to RNA samples |
| Amine | –NH2 | 195 (3000) | Present in purines/pyrimidines, e.g. the nitrogenous bases. |
| Ester | O = C–O–C | 205 (50) | Substitution of Carbon with Phosphor creates the phosphodiester bond (O = P–O–C), which forms the linkage between nucleotides. |
| Carboxyl | O = C–O–H | 205 (60) | Present in amino acids, which may contaminate RNA isolations. |
*The extinction coefficient ε = Mr.(A/cl), and is related to the relative molecular mass, Mr.
Figure 2UV-Vis spectroscopy of RNA from co-isolation spiked samples.
(A) Full spectrum absorbance of artificial AuNP-spikes, measured at wavelengths from 190–840 nm. (B) Peak shifts of absorption spectrums of artificial AuNP-spikes, measured at wavelengths from 190–235 nm. (C) Traditional absorbance spectrum of artificial AuNP-spikes, measured at wavelengths from 220–340 nm. (D) Absorption spectrums of artificial AuNP-spikes, measured at wavelengths from 450–600 nm.
Purity analysis of untreated control vs. co-isolation AuNP-spiked RNA samples.
| Sample | Without | With | Comments | ||||||||||
| Average A260/A280 | Std Dev A260/A280 | Average A260/A230 | Std Dev A260/A230 | Average yield compared to control |
| Average A260/A280 | Std Dev A260/A280 | Average A260/A230 | Std Dev A260/A230 | Average yield compared to control |
| ||
|
| 2.063 | 0.032 | 1.203 | 0.349 | 100% | N/A | 2.106 | 0.015 | 1.73 | 0.020 | 100% | N/A | No contaminants from isolation procedure when Protect solution is used. |
|
| 2.066 | 0.020 | 1.876 | 0.250 | 239.6% | 0.180 | 2.066 | 0.015 | 1.63 | 0.503 | 87.16% | 0.024* | Highly variable results obtained. |
|
| 2.076 | 0.015 | 1.326 | 0.774 | 200.4% | 0.250 | 2.086 | 0.046 | 2.026 | 0.015 | 80.03% | 0.031* | Highly variable results obtained. |
|
| 2.016 | 0.092 | 1.403 | 1.117 | 147.4% | 0.338 | 2.076 | 0.037 | 1.576 | 0.143 | 93.3% | 0.056* | Highly variable results obtained. |
Note: *** p≤0.005; ** 0.005≤p≤0.01; * 0.01≤p≤0.
Figure 3UV-Vis spectroscopy of RNA from 24 h AuNP-treated samples.
(A) Full spectrum absorbance analyses of RNA obtained from 24 h AuNP-treated cells, measured at wavelengths from 190–840 nm. (B) Peak shifts of absorption spectra of RNA obtained from 24 h AuNP-treated cells, measured at wavelengths from 190–235 nm. (C) Traditional absorbance spectrum analyses of RNA obtained from 24 h AuNP-treated cells, measured at wavelengths from 220–340 nm. (D) Absorption spectra of RNA obtained from 24 h AuNP-treated cells, measured at wavelengths from 450–600 nm.
Figure 4Dark field image at 60× magnification of BEAS-2B cells incubated with 1 nM AuNPs for 24 h.
Figure 5RNA integrity analysis.
(A) Post-isolation spiked samples. (B) Co-isolation spiked samples. Lanes: (1) RNA untreated control. (2) RNA untreated control with RNAProtect solution +25% AuNP-spike. (3) RNA untreated control with RNAProtect solution +50% AuNP-spike. (4) RNA untreated control with RNAProtect solution +75% AuNP-spike. (5) AuNP (3 nM) with 6xOrange Loading dye (Fermentas). (6) The 24 h AuNP-treated RNA with RNAProtect solution. (7) RNA untreated control. (8) RNA untreated control +25 µL AuNP-spike. (9) RNA untreated control +50 µL AuNP-spike. (10) RNA untreated control +100 µL AuNP-spike. (11) Unloaded lane. (12) RNA untreated control with RNAProtect solution (13) RNA untreated control with RNAProtect solution +25 µL AuNP-spike. (14) RNA untreated control with RNAProtect solution +50 µL AuNP-spike. (15) RNA untreated control with RNAProtect solution +100 µL AuNP-spike. (16) Unloaded lane. (17) AuNP (3 nM) with 6xOrange Loading dye (Fermentas).
Figure 6The spectral profile of 14 nm citrate-capped gold nanoparticles.
(A) The profile was collected from ten randomly selected nanoparticles (singularly dispersed and aggregated AuNPs). (B) The insert indicates the image obtained using DAGE software.
Figure 7The fate of the AuNPs during cell harvesting and RNA isolation.
The absorbance of the control sample was subtracted from the AuNP-treated sample and the difference was plotted.