System and method for the analysis of DNA sequences
09547029 ยท 2017-01-17
Inventors
Cpc classification
Y10T436/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T436/25375
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01N27/3275
PHYSICS
G01N27/025
PHYSICS
Y10T436/25125
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T436/143333
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T436/25625
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C12Q1/6806
CHEMISTRY; METALLURGY
International classification
G01N27/327
PHYSICS
Abstract
Detecting electromagnetic waves derived from bacterial DNA, by extracting and purifying nucleic acids from a sample; diluting the extracted purified nucleic acids in an aqueous solvent; measuring a low frequency electromagnetic emission over time from the diluted extracted purified nucleic acids in an aqueous solvent; performing a signal analysis of the low frequency electromagnetic emission over time; and producing an output, based on the signal analysis, in dependence on the DNA in the sample. The DNA may be extracted from at least one of blood, feces, urine, saliva, tears, seminal fluid, sweat, seminal and vaginal fluids of a patient, or water to determine, e.g., potability. The samples may be frozen. The extracting and purifying may include diluting the sample with an aqueous buffer and mixing; degrading proteins in the diluted sample; precipitating DNA from the buffer solution; and resuspending the precipitated DNA in an aqueous solution.
Claims
1. A method of analyzing electromagnetic emissions associated with deoxyribonucleic acid in an aqueous sample, comprising: extracting a deoxyribonucleic acid from the aqueous sample; filtering the extracted deoxyribonucleic acid through a filter having a pore size of less than 0.45 micron to produce a filtrate; diluting the filtrate comprising the filtered extracted deoxyribonucleic acid in water by at least 10 fold; receiving electromagnetic signals emitted by the diluted filtrate comprising a frequency band comprising about 1400 Hz to about 2000 Hz through an antenna; and analyzing the received electromagnetic signals received through the antenna with at least one automated processor to determine at least one characteristic of the deoxyribonucleic acid, based on at least spectral characteristics of the electromagnetic signals responsive to characteristics of the filtered extracted deoxyribonucleic acid, wherein a temperature of the diluted filtered extracted deoxyribonucleic acid remains above 0 C. and below 100 C. between said filtering and said receiving.
2. The method according to claim 1, further comprising purifying the extracted deoxyribonucleic acid in the aqueous sample prior to filtering by separating proteins.
3. The method according to claim 1, further comprising: preparing a control sample by heating the filtrate to at least 100 C. and treating the heated filtrate with DNAse; and analyzing the electromagnetic signals from the control sample.
4. The method according to claim 1, further comprising: preparing a control sample by freezing the filtrate, further comprising analyzing the electromagnetic signals from the control sample.
5. The method according to claim 1, wherein the characteristic of the deoxyribonucleic acid comprises an organism of origin of the deoxyribonucleic acid.
6. The method according to claim 1, wherein the characteristic of the deoxyribonucleic acid comprises a pathogenicity of an organism of origin of the deoxyribonucleic acid.
7. The method according to claim 1, further comprising obtaining the deoxyribonucleic acid from an animal suffering from an infection, wherein the determined at least one characteristic is selectively dependent on an infectious organism associated with the infection.
8. The method according to claim 1, further comprising extracting the deoxyribonucleic acid from at least one of blood, feces, urine, saliva, tears, seminal fluid, sweat, seminal and vaginal fluids of a human patient.
9. The method according to claim 1, wherein the filtrate is diluted by a plurality of different dilution factors prior to receiving of the electromagnetic signals, and the analyzing comprises analyzing a plurality of electromagnetic spectra associated with respective ones of the plurality of different dilution factors.
10. The method according to claim 1, wherein said analyzing comprises comparing spectral characteristics of the electromagnetic signals with a corresponding electromagnetic signals derived from a deoxyribonucleic acid from a different source.
11. The method according to claim 1, wherein said analyzing comprises determining a change in characteristics over time of the electromagnetic signals.
12. The method according to claim 1, wherein said analyzing comprises: determining a background noise of the received electromagnetic signals over a range of frequencies from a sample which has a substantial absence of deoxyribonucleic acid-associated electromagnetic signals, and applying an adaptive threshold to detect significant electromagnetic signals above the background noise from the sample containing the deoxyribonucleic acid.
13. The method according to claim 12, wherein said analyzing comprises determining a change over time of signal energy as a function of frequency over a frequency range of about 500 Hz to 3,000 Hz.
14. The method according to claim 1, wherein the filtrate comprises deoxyribonucleic acid diluted in water to a concentration of about 10.sup.7.
15. The method according to claim 1, wherein the filtering comprises filtering the deoxyribonucleic acid through a filter having a pore size of about 0.1 m.
16. A method of analyzing electromagnetic emissions associated with deoxyribonucleic acid, comprising: extracting deoxyribonucleic acid from a biological specimen; filtering the deoxyribonucleic acid in an aqueous solution through a filter having a pore size of less than about 0.45 micron to produce a filtrate; diluting the filtrate comprising the filtered extracted deoxyribonucleic acid in water by at least 100 fold; permitting environmental electromagnetic background to excite resonances in the diluted filtered extracted deoxyribonucleic acid; receiving electromagnetic signals emitted by the diluted filtrate comprising a frequency in a band comprising about 1400 Hz to about 2000 Hz from an antenna; and analyzing the received electromagnetic signals with at least one automated processor to determine at least one characteristic of the deoxyribonucleic acid, based on at least spectral characteristics of the received electromagnetic signals, at least one negative control known to produce no electromagnetic emissions associated with deoxyribonucleic acid and at least one positive control known to produce electromagnetic emissions associated with deoxyribonucleic acid.
17. The method according to claim 16, wherein the at least one negative control comprises at least one of: a first control sample prepared by heating the filtrate to at least 100 C. and treating the heated filtrate with DNAse; and a second control sample prepared by freezing the filtrate; and wherein the at least one positive control comprises diluted filtered extracted deoxyribonucleic acid from a known source, which has been maintained under conditions which preserve electromagnetic signal emission.
18. A system for analyzing electromagnetic emissions associated with deoxyribonucleic acid, comprising: a proteinase, configured to degrade proteins associated with the deoxyribonucleic acid; a precipitation solution, configured to precipitate the deoxyribonucleic acid after degradation of the proteins associated with the deoxyribonucleic acid; an aqueous solution for resuspending the precipitated deoxyribonucleic acid; a filter having a pore size of less than about 0.45 micron configured to filter the deoxyribonucleic acid resuspended in the aqueous solution, to produce a filtrate; a supply of water, configured to dilute the filtrate comprising the filtered ressupended deoxyribonucleic acid in water by at least 10 fold; an antenna configured to receive electromagnetic signals emitted by the diluted filtrate comprising a frequency in a band comprising at least about 1400 Hz to about 2000 Hz; and at least one automated processor configured to determine at least one characteristic of the deoxyribonucleic acid sensitive to at least one of a temperature above 100 C. and a temperature below 0 C., based on at least spectral characteristics of the received electromagnetic signals.
19. The system according to claim 18, wherein the antenna is configured to receive electromagnetic signals emitted by the diluted filtrate comprising the frequency band comprising about 20 Hz to about 20,000 Hz.
20. The system according to claim 18, further comprising: an amplifier, configured to amplify the received electromagnetic signals emitted by the diluted filtrate; and an output port configured to communicate data dependent on the determined characteristic; wherein the at least one automated processor is further configured to determine a background noise over a range of frequencies in the amplified signals from a sample which has a substantial absence of emitted deoxyribonucleic acid-associated electromagnetic signals, and to apply an adaptive threshold to detect significant electromagnetic field components over a range of frequencies above the adaptive threshold from the diluted filtrate containing the deoxyribonucleic acid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
(5) A typical experiment is described as follows: First, extreme precautions have to be taken at all steps of the process in order to avoid adventitious contamination from external sources: all manipulations have to be done in a class 100 or better laminar flow hood, and centrifugations are operated in stoppered sterile tubes. The water used for dilutions of reagents and samples has been obtained by distillation at 500 C. (pyrolysis) to destroy any macromolecular organic compound.
(6) 1) DNA Extraction:
(7) The sample is first equilibrated at room temperature (15-20 C.), then it is diluted 1:100 in a volume of 400 l final in sterile PBS 1 in a 2 ml microcentrifuge tube, and mixed by pulse-vortexing for 10 sec.
(8) 40 l of a 10 mg/ml solution of Proteinase K are added (1 mg/ml final concentration) and then 20 l of an aqueous solution of SDS 10% (Sodium Dodecyl Sulfate) are added (0.5% final concentration). The mixture is mixed by pulse-vortexing for 10 sec, and incubated 15 min at 56 C.
(9) 500 l of Phenol:Chloroform:IsoAmyl Alcohol (25:24:1), are then added and mixed by pulse-vortexing for 20 sec. The mixture is centrifuged for 10 min at room temperature at 60009 (8000 rpm). The upper aqueous phase is collected (approximately 500 l) and placed in a new 2 ml microcentrifuge tube. Cold ethanol, 2.5 volumes (1,125 l) and 2.5M Sodium Acetate (pH 5.2), 1:10 of final volume (160 l) are added to precipitate the DNA, mixed by inverting the tube carefully (5-10 times) and left for 15 min at 20 C. The sample is centrifuged for 30 min at 14,000 rpm at 4 C. and the supernatant is discarded. The pellet is washed twice by 500 l of cold ethanol 70% and the suspension is centrifuged for 10 min at 14,000 rpm at 4 C. The supernatant is discarded and the pellet is dried at room temperature for 15 min. The pellet is then re-suspended in 60 l Tris 10 mM (pH 7.6), mixed by pipetting and stored at 4 C. for immediate use in the SEM protocol or frozen at 20 C. or preferentially at 70 C. for further analysis.
(10) 2) EMS Measurement:
(11) An aliquot of the DNA solution is diluted 1:100 vol/vol in water and the dilution is filtered first through a Millipore filter of pore size 0.45 m (Millex). The filtrate is filtered again through a 0.1 m Millipore filter. This filtration step is important, and it has been observed that no signals are detected in its absence at any dilution. In contrast to the microorganism suspensions where the filtration was supposed to retain the bacteria or viruses, this filtration let the DNA pass through, and the latter is therefore still present in the filtrate.
(12) By definition, the filtrate is the liquid which has passed through the pores of the filter and is not retained by the filter.
(13) The role of filtration for the DNA solution is probably to dissociate the network of nanostructures which are trapped in a gel at high concentration, thus allowing them to vibrate in resonance with the excitation produced by the electromagnetic background.
(14) The filtration step must be immediately followed by the dilution steps 10 by 10 in water as previously described, for the filtrates of plasma or of microorganism suspensions.
(15) For each dilution, 0.1 ml of the previous dilution is added to 0.9 ml of water in an Eppendorf conical tube, and strongly agitated for 15 seconds in a vortex mixer. Again, 0.1 ml of this solution is diluted in 0.9 ml of water, etc.
(16) Usually, the range of dilutions is made between 10.sup.2 and 10.sup.15, eventually 10.sup.20. Capture and analysis of the EMS is proceeded as previously described in U.S. patent application Ser. No. 12/097,204, and as shown in
(17) The detection of signals is performed with equipment shown in a schematic view in
(18) An amplitude raw global representation is presented. Some background noise is generally present, which can then be filtered. A positive signal is detected when the amplitude exceeds at least 1.5 times the background noise. In general, the detected amplitude is twice and sometimes three times, the background noise. This detected signal is called an SEM electromagnetic signal.
(19) A 3D histogram analysis may be performed, respectively of the background noise and the signal in presence of the sample. The recorded signal may be broken down into individual frequencies through a Fourier transform of the background noise and the signal respectively in the presence of the sample. Of course, other types of signal analysis may be employed, for example wavelet analysis, principal component analysis, or other linear, non-linear, statistical, discrete, etc. analysis techniques which analyze a signal amplitude with respect to time signals, particularly those which extract or emphasize information represented therein.
(20) Each dilution tube is placed on the top of a solenoid transforming changes in the magnetic field into an electric current. The current is amplified 500 times by a SoundBlaster card and analyzed on a computer employing three software applications: one for direct recording of the waves, and two for performing Fourier analysis of the harmonics, as shown in
(21) A positive signal is generally defined by an increase of higher frequencies (500-3,000 Hz) over the respective background sample, though the criteria may be different for different types of analysis; that is, using a Fourier analysis, the positive experimental show a significant difference from control with respect to an increase in signal energy in the 500-3,000 Hz band. Using other analysis techniques, the definition of a positive result will correspondingly be different.
(22) Usually positive signals are found in the range of the 10.sup.7 to 10.sup.13 dilutions. At high dilutions (from 10.sup.12), calculations indicate that there is no DNA left and that the EMS should come for self-maintained nanostructures induced in water by the DNA from which they originated.
(23) 3) Effect of DNAse:
(24) Destruction of DNA sequences by DNAse abolishes their capacity to induce EMS in water. Since the nanostructures formed in water are fully resistant to DNAse, but are sensitive to heat, the DNAse effect is shown according to the following protocol, designed to suppress this secondary source of EMS. The DNA preparation is heated at 100 C. for 30 min to destroy the nanostructures. After cooling at 37 C., DNAse I at a final concentration of 10 U/g of DNA is added to the DNA solution and incubated in the presence of 5 mM MgCl.sub.2 for 16 Hours at 37 C. An aliquot of untreated DNA solution is kept as a positive control. The DNAse treated preparation is completely devoid of EMS emission at any dilutions. Therefore the main source of EMS is DNA.
(25) 4) Nature of the DNA sequences at the origin of EMS:
(26) A survey of the main bacteria species involved in human infections indicated that the following species are producing signals, either as pure culture suspension, or as DNA:
(27) Escherichia coli (strain K1)
(28) Streptococcus B
(29) Staphylococcus aureus
(30) Proteus mirabilis
(31) Pseudomonas aeruginosa
(32) Bacillus aeruginosa
(33) Mycoplasma pirum
(34) Positive dilutions were all in the range of 10.sup.7 to 10.sup.13 and the signal frequency profiles were similar, although small differences may exist between species and may be revealed by a more refined signal analysis. By contrast, no signals were detected from certain strains of E. Coli used as plasmid vector for molecular cloning such as E. coli XL1 B (Stratagene) and E. coli TOP10 (Invitrogen) and also in bacteria known to be apathogenic, such as Lactobacillus and Bacillus Calmette-Guerin. This indicated that only some specific sequences of bacterial DNA were at the origin of EMS. As shown in
(35) This data suggests that a simplified analysis of spectral energy at about 1,500 Hz or more generally in the 1,400-2,000 Hz band may be sufficient to determine the presence of the effect, and therefore than a relatively simple instrument, without requiring complex analytical software, may be used for screening samples.
(36) In an attempt to analyze the nature of the sequences involved, Mycoplasma pirum species was used, in which a gene indispensable for its eventual pathogenic role was cloned, the gene coding for the adhesin protein, a protein necessary for the attachment of the bacterium to eukaryotic cells.
(37) This gene was cloned in a plasmid carried by an E. Coli strain in two fragments corresponding respectively to the N-terminus and the C-terminus of the protein.
(38) The vector E. Coli strain (XL1 B) lacking the plasmid did not produce EMS as well as its extracted DNA.
(39) By contrast, when the bacterial strain was transformed by the plasmids carrying the adhesin gene fragments, its extracted DNA produced EMS as well as the purified plasmid DNA.
(40) The two gene fragments were excised by appropriate restriction enzymes from the plasmid and purified by electrophoresis in agarose gel. The electrophoretic bands corresponding to their molecular weight (respectively 1.5 Kb for the N-terminus and 3.5 Kb for C-terminus) were cut from the gel and the DNA fragments were eluted.
(41) Again, upon the procedure previously described (filtration with 0.45 m and 0.1 m filters) the two pure DNA fragments corresponding to the adhesin gene each yielded typical EMS.
(42) This result indicates that the present method is able to distinguish in a given bacterium between the specific DNA sequences which are responsible for emitting the electromagnetic signals.
(43) The adhesin gene of M. pirum is, in its native state, part of the chromosomal DNA, indicating that whatever be its location, plasmidic or integrated, its sequences by themselves are able to induce EMS.
(44) This procedure opens the way to a more refined intragenic analysis of the minimal sequences of a gene which are responsible for the EMS.
(45) It is noted that, while the signals themselves may be similar for various DNA samples which are associated with the EMS, the DNA sequences themselves are different. Therefore, the DNA sequence giving rise to a signal may be inferred based on similarities of the EMS to the corresponding EMS of authentic samples (either gathered contemporaneously or retrieved from a database), and/or by studies which target particular DNA sequences, and thereby modify signals associated with those sequences. For example, the EMS associated with DNA may be modified by small molecule agents, binding proteins and factors, DNA (e.g., primer-type sequences) or RNA (e.g., siRNA) or other nucleic acid targeting molecules, restriction endonucleases, antibodies and immunoglobulin-type agents, etc. Therefore, even if an EMS is not itself diagnostic for a pathological condition, the selective extinction or enhancement of the EMS based on selective modification of the sample may indeed play a role in the diagnosis.
(46) However it is already applicable for the detection of infections by pathogenic bacteria in human and animal diseases, especially when there are no available molecular or serological methods of detection.
(47) Patients suffering from chronic diseases such as rheumatoid arthritis, multiple sclerosis, Alzheimer's and Parkinson's diseases are generally positive for EMS in their plasma. However, freezing of the plasma will abolish the emission of EMS.
(48) Therefore, the plasma has to be analyzed soon after separation from the drawn blood.
(49) The present method described here is a significant improvement in that it allows detection of EMS from DNA extracted from plasma stored frozen.