WO2006053443A1 - Detection of intact recombinant viruses - Google Patents
Detection of intact recombinant virusesInfo
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- WO2006053443A1 WO2006053443A1 PCT/CA2005/001763 CA2005001763W WO2006053443A1 WO 2006053443 A1 WO2006053443 A1 WO 2006053443A1 CA 2005001763 W CA2005001763 W CA 2005001763W WO 2006053443 A1 WO2006053443 A1 WO 2006053443A1
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/68—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving nucleic acids
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N30/00—Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
- G01N30/02—Column chromatography
- G01N30/88—Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86
- G01N2030/8809—Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N30/00—Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
- G01N30/02—Column chromatography
- G01N30/88—Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86
- G01N2030/8809—Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample
- G01N2030/8813—Integrated analysis systems specially adapted therefor, not covered by a single one of the groups G01N30/04 - G01N30/86 analysis specially adapted for the sample biological materials
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N30/00—Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography or field flow fractionation
- G01N30/02—Column chromatography
Definitions
- the present invention relates to a new method for detecting and quantifying viruses or viral particles in a sample.
- Viral vectors are the most popular gene delivery vehicles in gene therapy studies to treat various kinds of cancer, monogenic, vascular and infectious diseases such as cystic fibrosis, coronary heart disease and acquired immune deficiency syndrome (AIDS). Over the last fifteen years, the use of viral vectors in human gene therapy clinical trials have increased tremendously comprising 70 % of the total clinical trials conducted worldwide.
- Murine-derived retroviral vectors (RV) are the most commonly used vectors (27 %) followed by adenovirus (AdV) (26 %), pox virus (7.2 %), vaccinia virus (4.7 %), herpes simplex virus (3 %) and adeno-associated virus (AAV) (2.5 %).
- helper dependent adeno-associated virus AAV
- HDAdV helper dependent adenovirus
- helper virus for replication has also been commonly used mainly because of safety as it is less immunogenic than the first generation adenovirus.
- BV insect cell derived baculovirus
- BacMam mammalian cell promoters commonly termed as "BacMam”.
- BV has advantages over the other vectors since they are able to accommodate large foreign genes, are produced at high titers and non-pathogenic.
- the use of viral vectors in gene therapy continues to hold promise for the future despite major setbacks that only motivated for the development of safer vector constructs and new production systems to obtain higher virus titers.
- a great deal of effort has also been dedicated to the advancement of manufacturing processes whereby physical methods to quantify viral particles played a major role.
- PCR assays which are commonly used for the quantification of packaged vector' genomes (vg's) are laborious and tend to suffer from non-specificity resulting in high variability of results requiring standardization on the method of operation for the comparison of inter-laboratory results [Veldwijk MR, et al., MoI Ther. 2002; 6: 272-278].
- the validity of results obtained by this method also raised concerns due to the likeliness of unpackaged genome present in the preparation [Bartlett JS, et al., J Virol. 2000; 74: 2777-2785; and Ferrari FK, et al., J Virol. 1996; 70: 3227-3234].
- AAV, RV and HDAdV are currently produced in low titers requiring the need for a more sensitive assay to be able to monitor a production.
- Crude virus preparations must be analysed with an assay that is able to discriminate the virus from the rest of the sample components or even better from the infectious to the non-infectious particles without compromising sensitivity and specificity.
- One aim of the present invention is to provide a method for detecting intact viral particles using a combination of a dye which when coupled to a nucleic acid emits fluorescence and HPLC coupled with a fluorescence detector.
- a method for detecting in a sample the presence of intact viral particles containing nucleic acids comprising the step of labeling said nucleic acids from said particles with a dye, said dye when complexed with said nucleic acids emitting fluorescence, and subsequently detecting by chromatography (such as without limitation ion exchange chromatography) a fluorescent eluted sample containing the labeled nucleic acids.
- a method for quantifying viral particles in a sample comprising the step of: i) contacting a viral lysate with Benzonase, under suitable conditions for digestion of the lysate by benzonase;
- nucleic acids from said lysate with a dye, said dye once complexed with the nucleic acid emits fluorescence;
- chromatography such as for example ion exchange chromatography
- the methods described above further comprise before the step of labeling, a step of purifying or semi-purifying said particles containing the nucleic acids.
- Such semi-purification or purification can be carried on for example with CsCI gradient, iodixanol gradient, size exclusion chromatography or sucrose gradient.
- the nucleic acids can be for example DNA, RNA, ssDNA or dsDNA.
- the viral particles are preferably selected from the group consisting of adenovirus type 5, helper dependent adenovirus type 5, adeno-associated virus type 2, baculovirus and retroviral vectors.
- the dye is one from the class of asymmetrical and unsymmetrical dimeric and monomeric cyanine dyes, such as, without limitations, SYBR Gold, SYBR Green I, thiazole orange dimer (TOTO), oxazole yellow dimer (YOYO), PicoGreen, RiboGreen, or SYBR Green II.
- asymmetrical and unsymmetrical dimeric and monomeric cyanine dyes such as, without limitations, SYBR Gold, SYBR Green I, thiazole orange dimer (TOTO), oxazole yellow dimer (YOYO), PicoGreen, RiboGreen, or SYBR Green II.
- TOTO thiazole orange dimer
- YOYO oxazole yellow dimer
- PicoGreen RiboGreen
- SYBR Green II PicoGreen
- Fig. 1 illustrates SDS-PAGE (Silver stained) on 4-15 % Tris-CI reducing gels of highly purified viral vectors
- FIG. 2 illustrates HPLC elution profiles of adenovirus type 5 (AdV5) with an infectious virus particles concentration of 4.7 10 11 per ml non-labeled (Fig. 2A), detected by absorbance at 260 and 280 nm, and SYBR Gold labeled (Fig. 2B), detected by fluorescence, the virus peak before and after labeling being indicated by an arrow;
- AdV5 adenovirus type 5
- Fig. 2A infectious virus particles concentration of 4.7 10 11 per ml non-labeled
- Fig. 2B SYBR Gold labeled
- FIG. 3 illustrates HPLC elution profiles of helper dependent adenovirus type 5 (HDAdV ⁇ )with an infectious virus particles concentration of 2 x 10 10 per ml non-labeled (Fig. 3A), detected by absorbance at 260 and 280 nm, and SYBR Gold labeled (Fig. 3B), detected by fluorescence, the virus peak before and after labeling being indicated by an arrow;
- Fig. 4 illustrates HPLC elution profiles of an iodixanol purified adeno- associated virus type 2 (AAV2) with an infectious viral particles concentration of 2.60 x 10 9 per ml non-labeled (Fig. 4A), detected by absorbance at 260 nm, and SYBR Gold labeled (Fig. 4B) detected by fluorescence, the virus peak after labeling being indicated by an arrow;
- AAV2 iodixanol purified adeno- associated virus type 2
- FIG. 5 illustrates HPLC elution profiles of sucrose gradient purified BacMam with an infectious viral particles concentration of 1 x 10 10 per ml non- labeled (Fig. 5A), detected by absorbance at 260 nm, and SYBR Green I labeled (Fig. 5B) detected by fluorescence, the virus peak after labeling being indicated by an arrow;
- FIG. 6 illustrates HPLC elution profiles of a size exclusion chromatography purified retroviral vector with an infectious viral particles concentration of 1.33 x 10 7 per ml non-labeled (Fig. 6A), detected by absorbance at 260 nm and SYBR Green I labeled (Fig. 6B), detected by fluorescence, the virus peak before and after labeling being indicated by an arrow;
- Fig. 7 illustrates efficiency of dye-genome complex formation as a function of time and temperature of a purified AdV5 (Fig. 7A) as a model for the non-enveloped viruses and purified BV (Fig. 7C) for the enveloped viruses, with the mean ⁇ sd of peak area responses of AdV5 from 2 to 7.5 h for the different temperatures (Fig. 7B) and the mean ⁇ sd of peak area responses of BV at different time range (Fig. 7D) when the response showed stability with the different temperatures investigated;
- FIG. 8 illustrates HPLC elution profiles of non-permeabilized sucrose gradient purified labeled BV (Fig. 8A), and sucrose gradient purified labeled BV permeabilized with .0.001 % Triton X-100TM (Fig. 8B), 0.01 % (Fig. 8C), 0.1 % (Fig. 8D) and non-permeabilized RV samples (Fig. 8E) concentrated by ultracentrifugation in 20 % sucrose cushion and semi-purified or permeabilized with 0.05 % Triton X-100 (Fig. 8F); [0025] Fig. 9 illustrates HPLC elution profiles of 1x CsCI purified AdV5 (Fig. 9A) of 1x AdV5 lysate without genome labeling detected by Abs260nm (Fig. 9B) and of 1x AdV5 lysate labelled With 1 ( T 4 SYBR Gold (Fig. 9C);
- FIG. 10 illustrates HPLC elution profiles of a 1x non-benzonase digested (Fig. 10A) or benzonase digested (Fig. 10B) HDAdV ⁇ lysate, the supposed elution time of the virus in the non-digested sample and the virus peak in the digested sample being indicated by an arrow; and
- Fig. 11 illustrates the working range linearity of AdV5 (Fig. 11A) and HDAdV ⁇ (Fig. 11 B) curves.
- AdV5 Ad type 5
- helper dependent adenovirus type 5 particles The method was further developed to quantify Ad type 5 (AdV5) and the helper dependent adenovirus type 5 particles to demonstrate its feasibility as a quantification assay ⁇
- the inventors exploited the idea of labeling the genome of the intact virus since it has been shown that nucleic acids when complexed with a fluorescent dye exhibit maximum and excitation wavelengths resulting in the enhancement of sensitivity greater that 1000 fold [Tuma RS, et al., Anal Biochem. 1999; 268: 278-288].
- the binding modes, sequence specificity and stability of these dyes with free double stranded (ds) and single stranded (ss) DNA in a solution have been investigated [Zipper H, et al., Nucleic Acids Res.
- the inventors have used five viral vectors, two of which belong to the class of non-enveloped (capsid) virus, the AdV, HDAdV and AAV, and two belonging to the class of enveloped viruses, the RV and BV, respectively.
- AdV5 first generation (E1 deleted) encoding the green fluorescent protein (GFP) was produced in 293 cells [Cote J, et al., Biotechnol Bioeng. 1998; 59: 567-575] and purified by CsCI gradient [Graham FL, Prevec L. MoI Biotechnol. 1995; 3: 207-220].
- AdV are icosahedral in shape with diameter between 65 -80 nm and linear ds DNA genome size between 30- 40 kb.
- HdAdV ⁇ encoding the B-galactosidase gene was produced in 293 cells using AdV as the helper virus and purified by CsCI gradient (Umana et al., Nat. Biotechnol. 19: 582-585, 2001).
- VSV-G Vesicular stomatitis virus-G glycoprotein
- Mo-MuLV pseudotyped Moloney murine leukemia virus
- RV is spherical in shape with diameter between 80-100 nm and has ss RNA genome of ⁇ 8 kb.
- AAV type 2 (AAV2) that encodes GFP was produced in sf9 cells by co-infection of three baculovirus vectors and purified by a combination of cation, size exclusion and hydrophobic interaction chromatography and final step of iodixanol gradient purification according to a method described by Zolotukhin [Zolotukhin S, et al., Gene Ther. 1999; 6: 973- 985].
- AAV are isometric in shape with diameters between 18-26 nm and have ss DNA genome of ⁇ 4.7 kb.
- BV carrying the cytomegalovirus (CMV) mammalian promoter encoding GFP was produced in sf9 cells and purified by sucrose gradient density ultracentrifugation [O'Reilly, D. R., et al., 1992. Baculovirus expression vectors: a laboratory manual. Oxford University Press, Oxford, United Kingdom], (v) BV is rod in shape, 200-450 nm long and has ds DNA genome of ⁇ 130 kb.
- CMV cytomegalovirus
- the virus purity of each virus studied was determined by SDS-PAGE under reducing conditions and silver staining using 4-15 % Tris-CI ready gels (BioRad Lab, Hercules, CA) according to manufacturer's instruction.
- the infectious viral 1 particles per ml (IVP/ml) of the purified vectors was determined as follows: for AdV5 and AAV2, FACS analysis for the expression of the GFP reporter gene using 293E cells, for HDAdV5, the colorimetric assay for the detection of blue forming units using 293 cells was used, for RV, the FACS assay for the determination of GFP expression using 143B tumor cells was used and the plaque assay using 293E cells was used for BacMam, respectively.
- the brief description of the methods used can be found in the prior art, [Cote J, et al., Biotechnol Bioeng. 1998; 59: 567-575; and Transfiguracion J, et al., Hum Gene Ther. 2003; 14: 1139-1153], incorporated herein in their entirety by reference.
- the total viral particles per ml (TVP/ml) for AdV5 and HDAdV5 were performed using the PicoGreen Assay (Murakami and McCaman, Analytical Biochem. 274: 283-288, 1999) with slight modification. Briefly, the purified virus samples were diluted in TE, pH 7.5, digested with 100 U/ml of Benzonase for 30 min at RT, the viral capsid broken with the addition of 0.1 % SDS incubated for 5 min at RT and the viral genome labeled with SYBR Green I for 5 min prior to reading the fluorescence. Using a double stranded lambda DNA as standard, the DNA concentration of the unknown sample was calculated by the linear regression equation.
- the VP/ml based on the DNA concentration which is the genome of the vector is converted in VP/ml according to stoichiometric relationships.
- AdV5 which has a dsDNA genome size of 35, 506 bp
- 1 ng of genome is equivalent to 1.29 x 10 12 VP/ml.
- HDAdV ⁇ which as a dsDNA genome size of 32, 600 bp
- 1 ng of genome is equivalent to 2.80 x 10 7 VP/ml.
- the nucleic acid stains used are the proprietary unsymmetrical cyanine dyes; SYBR Gold and SYBR Green I (Molecular Probes, Eugene, OR).
- SYBR Gold has specific binding to double stranded deoxyribonucleic acids (ds DNA) single stranded (ss) DNA and ribonucleic acids (RNA) with an enhanced detection compared to UV (RNA) (Tuma RS, Anal. Biochem. 268: 278-288, 1999).
- SYBR Gold/nucleic acid complex have maximum excitation and emission wavelengths at 495 and 537 nm, respectively.
- SYBR Green I also has a specific binding to ds DNA with enhanced sensitivity as well as binding to ssDNA and RNA with a lesser degree of sensitivity (Zipper et al., Nucleic Acids Res., 32: e103, 2004).
- the maximum excitation and emission wavelengths of SYBR Green I/nucleic acid complex are at 479 and 520 nm, respectively.
- any nucleic acid stain that emits fluorescence once coupled to nucleic acids would be suitable to be used in the method of the present invention.
- the dye or stain by itself should not be fluorescent, or at least exhibit minimal fluorescence.
- DNA standard was a lambda ( ⁇ ) ds DNA while RNA standard was a 16S and 23S ribosomal RNA from E, coli also from the same supplier as mentioned.
- virus samples (when required) was performed with TE, pH 8 prior to labeling.
- AdV5, HDAdV5 and AAV2 were labeled with SYBR Gold while RV and BacMam were labeled with SYBR Green I 1 respectively.
- the intrinsic fluorescence characteristic of each of the viral vector studied was determined by analysis of non-labeled sample and detected by fluorescence at the maximum excitation and emission wavelengths of the dye (SYBR Gold, SYBR Green l)-nucleic acid complex described below.
- non-fluorescent dyes but containing fluorophores
- dyes from the class of asymmetrical and unsymmetrical dimeric and monomeric cyanine dyes such as thiazole orange dimer (TOTO), oxazole yellow dimer (YOYO), PicoGreen, RiboGreen, and SYBR Green II, etc.
- a HPLC Alliance system was used (Waters, Milford, MA) equipped with a 2690 separation module, in-line degasser, 996 photodiode array (PDA) and 2475 multi-wavelength fluorescence detectors and a Millennium32 software was used for data acquisition and peak integration.
- the columns used for analysis were UNOQ (anion) and UNOS (cation) polishing columns, 4.6 x 10 mm (Bio-Rad, Hercules, CA) for AdV5, HDAdV ⁇ , RV, BV and AAV2, respectively.
- the mobile phases used were: A) 0.25 M HEPES, pH 7.5, for AdV5, HDAdV ⁇ and AAV2 and 0.1 M Tris-CI, pH 7.5 for RV and BacMam, respectively, B) 2 M and 1 M NaCI in MiIIi Q Water for AdV5, HDAdV5 RV, BV and AAV2, respectively and C) MiIIi Q Water for all the vectors described. All solutions were filtered through a 0.45 ⁇ m membrane before use.
- the column Prior to sample injection, the column was always equilibrated with 5 column volumes (CV) of 20 % A, 80 % C and a buffer blank (50 mM HEPES, pH 7.5 for AdV5, HDAdV ⁇ and AAV2 and 20 mM Tris-CI, pH 7.5 for RV and BV, respectively) injected to ensure a flat baseline.
- CV column volumes
- the virus elution was performed as follows: Following sample injection and column wash, the virus eluted in a linear gradients from 300 to 600 mM NaCI in 20 % for AdV5 and HDAdV5; from 500 to 1.1 M NaCI in 20 % A for RV, from 0 to 1 M NaCI in 20 % A for BV and from 0 to 0.5 M in 20 % A for AAV2.
- a flow rate of 1 ml/min was used for all analysis except during the elution of AdV5 at 0.5 ml/min.
- the virus was detected simultaneously by Abs 260 nm and 280 nm (Abs ⁇ sonm) and by fluorescence at maximum excitation and emission wavelengths of 495 and 537 nm for SYBR Gold and 479 and 520 nm for SYBR Green I, respectively.
- AdV ⁇ and HDAdV ⁇ Total Virus Particles Quantification by Labeling the Viral Genome and Ion-Exchange HPLC i) Preparation ofAdV ⁇ and HDAdV ⁇ Standard Curves for Quantification
- CsCI purified standards were quantified for their total viral particles concentration by the PicoGreen Assay. The value obtained by this method was used as the reference concentration for the generation of the standard curve. To generate the curves, the standards were diluted in TE buffer pH 8 to cover the range from 1 x 10 8 to 1 x 10 9 VP/ml for AdV5 and 1x 10 9 to 1 x 10 10 VP/ml for HDAdV ⁇ , respectively in a total volume of 300 ⁇ l. SYBR Gold were then added at a final concentration of 10 "4 .
- AdV5 virus lysates were diluted 1/10 (as in the case of a 10X concentrated lysate) and labeled with SYBR Gold at a final concentration of 10 "4 for a maximum of 30 min in the dark prior to injection unto the column.
- the virus lysate was digested with Benzona ⁇ e for 30 min at RT prior to labeling with SYBR Gold at a final concentration of 10 '4 .
- Sample injection volumes are described previously.
- the VP/ml concentration of the virus in the lysate was performed using the standard curve as described previously using the linear regression equation.
- Fig. 1 illustrates a SDS-PAGE (Silver stained) on 4-15 % Tris-CI reducing gels of highly purified viral vectors.
- Lane 1 is low molecular weight protein markers
- lane 2 is cesium chloride purified adenovirus type 5
- lane 3 is cesium chloride purified helper dependent adenovirus type 5
- lane 4 is iodixanol purified adeno-associated virus
- lane 5 is size exclusion chromatography purified VSVG-G pseudotyped retroviral vector
- lane six is sucrose gradient purified baculovirus vector carrying the mammalian promoter (BacMam).
- the major protein components and the virus envelope as in the case of retrovirus and BacMam are indicated by arrows.
- the IVP/ml for the purified vectors were as follows: 4.70 x 10 11 for AdV5, 3.58 x 10 10 for HDAdV5, 2.60 x 10 9 for AAV2, 1 x 10 10 for BacMam and 1.60 x 10 7 for RV.
- TVP quantification of AdV5 and HDAdV ⁇ was performed using the PicoGreen Assay.
- the results are 7.08 x 10 11 TVP/ml for AdV5 and 3.58 x 10 10 TVP/ml for HDAdV ⁇ . It was noticeable that the values obtained here were not significantly different from the values obtained with IVP/ml.
- the value obtained with this assay would be more suitable to use as a reference concentration since the encapsidated viral genome is specifically quantified rather than using the absorbance at 260 nm where the presence of residual DNA could contribute to the overestimation of viral particles in addition to the viral proteins which also absorb at 260 nm.
- FIG. 2 illustrates the HPLC elution profile of AdV5 (4,7 x 10 11 VP/ml) before and after labeling.
- the retention times of the virus before and after labeling were not significantly different at 13.785 min and 13.791 min, respectively.
- Fig. 3 shows the HPLC elution profile of HDAdV5 (2 x 10 10 VP/ml) before and after labeling.
- Fig. 3A is the non-labeled virus detected by abs at 260 nm while Fig. 3B is the SYBR Gold labeled virus.
- the enhancement in sensitivity was ⁇ 79 % upon labeling from peak area of 46753 to 225600.
- Fig. 4 shows the HPLC elution profiles of AAV2 (2,6 x 10 9 VP/ml) before and after labeling.
- the virus detected by abs at 260 nm could not be identified because the presence of iodixanol which highly absorbs at 260 nm interfered with the detection.
- Fig. 5 shows HPLC elution profiles of sucrose purified BacMam (10 10 VP/ml) before and after labeling. The virus was not detected by abs at 260 nm (Fig. 5A) but was significantly detected upon labeling (Fig. 5B). The virus eluted in 9.190 min in 250 mM NaCI. The two peaks detected between 15 and 18 min were identified to be dsDNA peaks (by injection of a dsDNA std) Fig. 6 shows the HPLC elution profile of RV (1 ,33 x 10 7 VP/ml) before and after labeling.
- the virus peak upon labeling with SYBR Green I was significantly enhanced by ⁇ 84 % (Fig. 6B) compared to the non- labeled detected by abs at 260 nm (Fig. 6A).
- the retention times of both viruses did not vary at 8.004 and 8.000 min, respectively.
- the intrinsic fluorescence signal of the vectors were determined by analysis of non-labeled samples and detected by fluorescence according to the specific excitation and emission wavelengths of the two fluorescent dyes used when coupled with nucleic acids. Peak areas obtained by HPLC indicated that the vectors have intrinsic fluorescent properties at the specified wavelengths but shown to be insignificant at ⁇ 15 % of the peak area obtained when the vectors were labeled. Dye-Viral Genome Complex Formation Efficiency is Dependent on Time and Temperature
- AdV5 was used as a model for the non-enveloped viruses and BV for the enveloped viruses.
- the purified viruses, AdV5 and BV were diluted 1 :100 in 50 mM HEPES, pH 7.5 and 1 :10 in 20 mM Tris-CI, pH 7.5, respectively.
- Fig. 7 shows the profiles of both viruses studied.
- Fig. 7A is the AdV5 labeled at 4°C, 18°C and 37°C, respectively from 0.5 h until 8 h when the response started to decline.
- the responses obtained for all temperatures showed an identical trend, starting high at 0.5 h and linearly decreased until 7.5 h. A significant drop in the response was particularly observed with 37°C at 8 h and a steady decline with 18°C.
- the 37°C labeling temperature had the highest response followed by 4°C and the lowest 18 0 C.
- the mean area responses were tabulated between 2 and 7.5 h of labeling (Fig. 7B). It was shown that the 37 0 C mean response had less than 5% relative standard deviation (RSD) while the other two mean responses (18°C, 4 0 C) had between 10 and 20% RSD. This means that with the assay's total analysis time of 23 min, 10 samples can be labeled at a time and injected consecutively expecting a 5 % variation in the results obtained.
- Triton X-IOO Permeabilization Does Not Increase the Virus Signal But Rather Destroys The Enveloped Viruses
- Figs. 8A to 8D illustrate HPLC elution profiles of the non-permeabilized and permeabilized BV with 0.001 %, 0.01 % and 0.1 % of Triton X-100, respectively.
- BV samples were purified on sucrose gradient. As shown by the peak area response, the non-permeabilized (Fig. 8A) and the 0.001 % permeabilized BV (Fig. 8B) did not show any difference in the responses obtained.
- the DNA signal obtained with this sample was largely contributed by the viral genome and the peaks eluted in the flowthrough and at around 3 min might be intrinsic fluorescence from the viral capsid or viral envelope with aromatic amino acids such as tryptophan and tyrosine. At least for the temperature used (18°C) in the labeling, the membrane permeabilization did not increase the signal of the complex formation confirming a maximum saturation with the non-permeabilized virus.
- the permeabilization of RV with 0.05 % Triton X-100 permeabilization was performed not so much to determine if there was an enhancement in the signal but to reconfirm the virus identity.
- the RV sample was concentrated by ultracentrifugation in 20% sucrose gradient cushion and semi-purified.
- AdV5 and HDAdV ⁇ were used as models.
- the end goal of this was to use the method of the present invention as a quantification assay applicable in the analysis of low concentration of virus without the need of a pre- sample preparation.
- the AdV5 HPLC total particles quantification assay by UV detection [Klyushnichenko V, et al. J Chromatogr B Biomed Sci Appl. 2001 ; 755: 27-36; and Transfiguracion J, et al., J Chromatogr S Biomed Sci Appl. 2001 ; 761 : 187-194] already in place in the inventor's laboratory is of limited sensitivity.
- Fig. 9B shows the profile of a non-labeled 1x lysate detected by Abs 26 o nm
- Fig. 9C shows the profile of a 1x SYBR Gold labeled (10 "4 , 1 h @ 37°C) lysate.
- the sample injection volume for both samples were 25 ⁇ l.
- Fig. 9A is a CsCI purified AdV5 to confirm the virus identity. In Figs.
- the lysate was labeled for 1 h at 37°C and analysed in a UNOQ Pol column, 0.16 ml.
- the virus in the lysate (indicated by an arrow) which has an IVP/ml of around 10 8 eluted at 13.69 min in 20 mM HEPES, pH 7.5 + 500 mM NaCI (Fig. 9B) efficiently resolved from the rest of the sample components.
- the stability of the dye-genome complex formation with this crude preparation was tested at 37°C, 10 "4 SYBR Gold and it was found that the response was not the same as the AdV5 purified material.
- Fig. 11A shows the curve for AdV5 with a correlation coefficient (R 2 ) of 0.9987 for a working range between 1 x 10 8 and 1 x 10 9 VP/ml.
- the slope of the curve was 2.33 x10 "5 with a standard error of 5.80 x 10 '7 and the intercept was 247 with a standard error of 352.29. While for HDAdV ⁇ (Fig.
- the R 2 obtained was 0.9939 for a working range between 1 x 10 9 to 1 x 10 10 VP/ml.
- the slope of the curve was 1.15 x10 "5 with a standard error of 5.16 x10 "7 and the intercept was 6753 with a standard error of 3129.06.
- the DL and QL of the AdV5 and HDAdV5 assay were determined based on the standard deviation of the response of the three lowest concentration of the working range and the slope of the curve.
- the assay noise is determined and the DL is calculated as 3x assay noise and QL as 10x assay noise.
- Table 1 presents the results.
- the DL and QL for AdV5 are 2.5 ⁇ x 10 6 and 8.50 x 10 6 , respectively. While for HDAdV ⁇ are 2.05 x 10 7 and 6.22 x 10 7 , respectively.
- the rate of decay shown in the profile was demonstrated to be a typical characteristic of most cyanine dyes when complexed with dsDNA [Cosa G, et al., Photochemistry and Photobiology. 2001; 73: 585-599]. It can be assumed that dye penetration is a diffusion and breathing controlled process dependent on time but not temperature for BV. Clearly, the 37 0 C response obtained was significantly lower than the response obtained with 18°C and 4°C. Time dependency was in fact demonstrated with 4°C because the response started low but overtime, it reached a plateau which could indicate saturation. The rate of decay of the dye-BV genome complex had also a slower rate of decay than the AdV5. A plateau was seen for the 18°C response before it dropped significantly (Fig.
- the linearity curve for AdV5 between 1 x10 8 and 1 x 10 9 VP/ml showed a good correlation coefficient (R 2 ) of 0.9987 as well as the HDAdV ⁇ with a R 2 of 0.9939 between 1 x 10 9 to 1 x 10 10 VP/ml.
- the DL and QL of the AdV5 assay were 2.55 x 10 6 and 8.50 x 10 6 , respectively, while for HDAdV ⁇ the DL and QL were 2.05 x 10 7 and 6.22 x 10 7 , respectively.
- the DL and QL of the AdV ⁇ assay was shown to be superior to the existing method of detection. While for the HDAdV ⁇ assay, the DL and QL permit the quantification of samples at low concentration production expected with this vector. In addition, this assay to our current knowledge is the first physical assay to be published for the quantification of viral particles for this vector.
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Abstract
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2579478A CA2579478C (en) | 2004-11-19 | 2005-11-18 | Detection of intact recombinant viruses |
| US11/661,932 US7754421B2 (en) | 2005-11-18 | 2005-11-18 | Detection of intact recombinant viruses |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US62890804P | 2004-11-19 | 2004-11-19 | |
| US60/628,908 | 2004-11-19 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2006053443A1 true WO2006053443A1 (en) | 2006-05-26 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CA2005/001763 Ceased WO2006053443A1 (en) | 2004-11-19 | 2005-11-18 | Detection of intact recombinant viruses |
Country Status (2)
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| CA (1) | CA2579478C (en) |
| WO (1) | WO2006053443A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| RU2464565C2 (en) * | 2007-08-30 | 2012-10-20 | Кимберли-Кларк Ворлдвайд, Инк. | Rapid assessment of upper airway state |
Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20040110266A1 (en) * | 2002-05-17 | 2004-06-10 | Chiorini John A. | Scalable purification of AAV2, AAV4 or AAV5 using ion-exchange chromatography |
-
2005
- 2005-11-18 CA CA2579478A patent/CA2579478C/en not_active Expired - Fee Related
- 2005-11-18 WO PCT/CA2005/001763 patent/WO2006053443A1/en not_active Ceased
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20040110266A1 (en) * | 2002-05-17 | 2004-06-10 | Chiorini John A. | Scalable purification of AAV2, AAV4 or AAV5 using ion-exchange chromatography |
Non-Patent Citations (5)
| Title |
|---|
| BRUSSAARD C.P.D. ET AL: "Flow cytometric detection of viruses", JOURNAL OF VIROLOGICAL METHODS, vol. 85, no. 1-2, March 2000 (2000-03-01), pages 175 - 182 * |
| KREMSER L. ET AL: "Binding of fluorescent dye to genomic RNA inside intact human rhinovirus after viral capsid penetration investigated by capillary electrophoresis", ANALYTICAL CHEMISTRY, vol. 76, no. 4, 15 February 2004 (2004-02-15), pages 882 - 887 * |
| KREMSER L. ET AL: "Labeling of capsid proteins and genomic RNA of human rhinovirus with two different fluorescent dyes for selective detection by capillary electrophoresis", ANALYTICAL CHEMISTRY, vol. 76, no. 24, 15 December 2004 (2004-12-15), pages 7360 - 7365 * |
| TRANSFIGURACION J. ET AL: "Size-exclusion chromatography purification of high-titer vesicular stomatitis virus G glycoprotein-pseudotyped retrovectors for cell and gene therapy applications", HUMAN GENE THERAPY, vol. 14, no. 12, August 2003 (2003-08-01), pages 1139 - 1153 * |
| TRANSFIGURACION J. ET AL: "Validation of a high-performance liquid chromatographic assay for the quantification of adenovirus type 5 particles", JOURNAL OF CHROMATOGRAPHY B, vol. 761, no. 2, 25 September 2001 (2001-09-25), pages 187 - 194 * |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| RU2464565C2 (en) * | 2007-08-30 | 2012-10-20 | Кимберли-Кларк Ворлдвайд, Инк. | Rapid assessment of upper airway state |
Also Published As
| Publication number | Publication date |
|---|---|
| CA2579478A1 (en) | 2006-05-26 |
| CA2579478C (en) | 2018-07-10 |
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