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Clinical Chemistry 43: 1108-1109, 1997;
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(Clinical Chemistry. 1997;43:1108-1109.)
© 1997 American Association for Clinical Chemistry, Inc.


Editorials

Mass-Spectrometric Approaches for DNA-Based Genetic Screening

Gregg B. Fields

University of Minnesota Medical School, Department of Laboratory Medicine & Pathology, Box 107, 420 Delaware St., SE, Minneapolis, Minnesota 55455, Fax 612-625-1121, E-mail field002{at}maroon.tc.umn.edu

In the current issue of Clinical Chemistry, Braun et al. (1) describe a mutational analysis method that combines primer oligo base extension (PROBE) and matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF-MS). This application further extends the use of MS for genetic analysis and suggests a possible role in the clinic. However, what is the long-term potential for MALDI, based on the relative strengths and weaknesses of MS analysis of DNA (2)?

The development of soft-ionization techniques for MS has, without question, revolutionized protein chemistry. MS is now one of the definitive methods for characterization of synthetic and isolated peptides and proteins. In addition to accurately determining an intact mass, one can obtain primary structure information by several different MS sequencing strategies, and secondary and tertiary structure can be evaluated by hydrogen-exchange experiments. The use of MS for DNA analysis, although first demonstrated for nucleosides in 1962 (3), is far less advanced. Potential applications of MS are (a) detection of DNA modifications, (b) DNA fragment mass determination, and (c) DNA sequencing. Both fast atom bombardment (FAB) and electrospray ionization (ESI) collision-induced dissociation/tandem MS have been applied for identification of DNA modification sites. For example, the carcinogen N-nitrosopiperidine reacts with DNA to produce ethenodeoxyguanosine adducts. These adducts have been characterized by use of liquid chromatography (LC)-ESI-MS/MS of enzymatically hydrolyzed DNA (4). In similar fashion, oxidative modification of DNA resulting in the production of 8-hydroxydeoxyguanosine has been detected by LC-ESI-MS/MS after enzymatic hydrolysis (5). FAB-MS/MS has been used to detect polycyclic aromatic hydrocarbon-DNA adducts (6). One of the disadvantages of ESI is that cation (Na+, K+) adduction to the polynucleotide backbone limits the size of DNA analysis and analysis of oligonucleotide mixtures—although on-line microdialysis can minimize sodium adducts (7).

MALDI offers a potential advantage over ESI and FAB, in that biomolecules of large mass can be ionized and analyzed readily. In theory, restriction-enzyme-digested fragments of DNA could be amplified by polymerase chain reaction (PCR) and detected directly by MALDI-MS. A 500-nucleotide DNA has been characterized by MALDI-MS with a mixed matrix of picolinic acid and 3-hydroxypicolinic acid (8). This size is critical, because MALDI-MS should be able to analyze DNA fragments as large as 500 bases to compete with other DNA-sequencing methods.

In general, MALDI analysis of DNA is not so straightforward (2). Potential problems with MALDI-MS analysis that need to be considered are (a) lack of resolution of high-Mr DNA fragments, (b) DNA instability, and (c) interference from Sanger sequencing reagents. Longer oligonucleotides can give broader, less-intense signals, because MALDI imparts large kinetic energies to ions of high m/z. Novel matrices, such as trihydroxyacetophenone, combined with ammonium acetate can improve DNA resolution (9). Resolution can also be improved by using ion-"trapping" methods or a time-lag focusing TOF-MS (10).

DNA fragmentation during MS includes elimination of a nucleic base and cleavage of a phosphate ester bond, as well as phosphate rearrangements (11). Fragmentation was found to be a problem during DNA sequencing of M13 bacteriophage DNA (12). The use of 7-deazapurines during Sanger DNA sequencing reactions can offer better oligonucleotide stability and sensitivity (13).

MALDI-MS sequence analysis can be performed by using Sanger sequencing chemistry and overlaying the results from the four individual sequencing reactions (14). The combination of MALDI-MS and the Sanger sequencing method has been used for M13 bacteriophage DNA, with sequence being determined for DNA as much as 35 bases long (12). Impurities from Sanger sequencing solutions that can interfere with MALDI analysis include deoxynucleotide triphosphates (dNTP), dideoxynucleotide triphosphates (ddNTP), polymerase, and buffers. Impurities can be removed by affinity purification methods, with a probe strand attached to either agarose or magnetic beads (15). Separating the DNA-containing supernatant from the beads can limit sample recovery. Alternatively, one can use a solid-phase sequencing approach to immobilize sequencing ladders on a synthetic template. The template is labeled with biotin and bound to streptavidin-coated magnetic beads (16). Solid-phase sequencing, in combination with MALDI-MS, has been used for fragments as large as 63 bp (16). Ultimately, the solid-phase approach could be microfabricated to create "DNA chips" for sequencing.

Given the above caveats, MALDI-MS has been used in impressive fashion for the detection of genetic polymorphisms. A primary example is the cystic fibrosis transmembrane conductance regulator (CFTR) gene, in which a 3-bp deletion in exon 10 can occur, resulting in loss of Phe at codon 508 ({Delta}F508). To test for this mutation, Cháng et al. used the DNA template from a patient to PCR-amplify fragments of 98 and 95 bp from exon 10 (17). After enzymatic digestion of the fragments, differences could be somewhat resolved. A more definitive result was achieved by using primers for nested amplification to span the deletion, which generated 59- or 56-bp fragments that were easily assigned by MALDI-MS (17). In similar fashion, PCR-generated 72- and 75-bp synthetic oligonucleotides corresponding to CFTR {Delta}F508 were resolved by MALDI-MS (18). CFTR mutants were also analyzed by MALDI-MS after DNA extraction from buccal cells, PCR amplification, and generation of restriction enzyme fragments (19). PCR products from Legionella genomic DNA were characterized by MALDI-MS, such that a 168-bp PCR product unique to L. pneumophila was detected (20).

The work of Braun et al. (1) describes an improvement to these prior methods for analysis of genetic polymorphisms. One can use a single mutation deletion primer and perform PROBE with three dNTPs and one ddNTP. The mass of the extension products is then determined. Several CFTR mutants, including {Delta}F508, were detected by MALDI-MS analysis, although there were some resolution problems related to the close molecular masses of several fragments.

An alternative approach has been used to analyze the Gly551->Asp codon mutation of the CFTR gene. Two primers of different sizes that overlap by 1 bp at the site of the mutation can generate discrete fragments detectable by MALDI-MS (21). Also, restriction enzymes sensitive to the changes at the mutation site can be used to generate distinct fragments detectable by MALDI-MS (21).

MALDI-TOF-MS certainly offers a promising, rapid alternative to conventional methods for DNA analysis. Although some intrinsic properties of DNA interfere with MS analysis, advances in MS and DNA-sequencing techniques have rapidly improved the quality of DNA characterization. Solid-phase sequencing (16) and PROBE (1) greatly enhance the applicability of MALDI-MS for genetic screening.


References

  1. Braun A, Little DP, Köster H. Detecting CFTR gene mutations by using primer oligo base extension and mass spectrometry. Clin Chem 1997;43:1151-1158. [Abstract/Free Full Text]
  2. Henry C. Can MS really compete in the DNA world?. Anal Chem 1997;69:243A-246A.
  3. Biemann K, McCloskey JA. Application of mass spectrometry to structure problems VI. Nucleosides. J Am Chem Soc 1962;84:2005-2007.
  4. Liu Z, Young-Sciame R, Hecht SS. Liquid chromatography–electrospray ionization mass spectrometric detection of an ethenodeoxyguanosine adduct and its hemiaminal precursors in DNA reacted with {alpha}-acetoxy-N-nitrosopiperidine and cis-4-oxo-2-pentenal. Chem Res Toxicol 1996;9:774-780. [ISI][Medline] [Order article via Infotrieve]
  5. Serrano J, Palmeira CM, Wallace KB, Kuehl DW. Determination of 8-hydroxydeoxyguanosine in biological tissue by liquid chromatography/electrospray ionization-mass spectrometry/mass spectrometry. Rapid Commun Mass Spectrom 1996;10:1789-1791. [ISI][Medline] [Order article via Infotrieve]
  6. Wellemans J, Cerny R, Gross ML. Tandem mass spectrometry for the determination of deoxyribonucleic acid damage by polycyclic aromatic hydrocarbons. Analyst 1994;119:497-503. [Medline] [Order article via Infotrieve]
  7. Liu C, Wu Q, Harms AC, Smith RD. On-line microdialysis sample cleanup for electrospray ionization mass spectrometry of nucleic acid samples. Anal Chem 1996;68:3295-3299. [Medline] [Order article via Infotrieve]
  8. Tang K, Taranenko NI, Allman SL, Cháng LY, Chen CH. Detection of 500-nucleotide DNA by laser desorption mass spectrometry. Rapid Commun Mass Spectrom 1994;8:727-730. [ISI][Medline] [Order article via Infotrieve]
  9. Zhu YF, Chung CN, Taranenko NI, Allman SL, Martin SA, Haff L, Chen CH. The study of 2,3,4-trihydroxyacetophenone and 2,4,6-trihydroxyacetophenone as matrices for DNA detection in matrix-assisted laser desorption/ionization time-of-flight mass spectrometry. Rapid Commun Mass Spectrom 1996;10:383-388. [ISI][Medline] [Order article via Infotrieve]
  10. Dai Y, Whittal M, Li L, Weinberger SR. Accurate mass measurement of oligonucleotides using a time-lag focusing matrix-assisted laser desorption/ionization time-of-flight mass spectrometer. Rapid Commun Mass Spectrom 1996;10:1792-1796. [ISI][Medline] [Order article via Infotrieve]
  11. Hettich RL, Stemmler EA. Investigation of oligonucleotide fragmentation with matrix-assisted laser desorption/ionization Fourier-transform mass spectrometry and sustained off-resonance irradiation. Rapid Commun Mass Spectrom 1996;10:321-327. [Medline] [Order article via Infotrieve]
  12. Mouradian S, Rank DR, Smith LM. Analyzing sequencing reactions from bacteriophage M13 by matrix-assisted laser desorption/ionization mass spectrometry. Rapid Commun Mass Spectrom 1996;10:1475-1478. [Medline] [Order article via Infotrieve]
  13. Kirpekar F, Nordhoff E, Kristiansen K, Roepstorff P, Hahner S, Hillenkamp F. 7-Deaza purine bases offer a higher ion stability in the analysis of DNA by matrix-assisted laser desorption/ionization mass spectrometry. Rapid Commun Mass Spectrom 1995;9:525-531. [ISI][Medline] [Order article via Infotrieve]
  14. Fitzgerald MC, Smith LM. Mass spectrometry of nucleic acids: the promise of matrix-assisted laser desorption-ionization (MALDI) mass spectrometry. Annu Rev Biophys Biomol Struct 1995;24:117-140. [ISI][Medline] [Order article via Infotrieve]
  15. Chou C-W, Bingham SE, Williams P. Affinity methods for purification of DNA sequencing reaction products for mass spectrometric analysis. Rapid Commun Mass Spectrom 1996;10:1410-1414. [Medline] [Order article via Infotrieve]
  16. Köster H, Tang K, Fu D-J, Braun A, van den Boom D, Smith CL, et al. A strategy for rapid and efficient DNA sequencing by mass spectrometry. Nature Biotech 1996;14:1123-1128. [ISI][Medline] [Order article via Infotrieve]
  17. Cháng L-Y, Tang K, Schell M, Ringelberg C, Matteson KJ, Allman SL, Chen CH. Detection of {Delta}F508 mutation of the cystic fibrosis gene by matrix-assisted laser desorption/ionization mass spectrometry. Rapid Commun Mass Spectrom 1995;9:772-774. [ISI][Medline] [Order article via Infotrieve]
  18. Doktycz MJ, Hurst GB, Habibi-Goudarzi S, McLuckey SA, Tang K, Chen CH, et al. Analysis of polymerase chain reaction-amplified DNA products by mass spectrometry using matrix-assisted laser desorption and electrospray: current status. Anal Biochem 1995;230:205-214. [ISI][Medline] [Order article via Infotrieve]
  19. Liu Y-H, Bai J, Zhu Y, Liang X, Siemieniak D, Venta PJ, Lubman DM. Rapid screening of genetic polymorphisms using buccal cell DNA with detection by matrix-assisted laser desorption/ionization mass spectrometry. Rapid Commun Mass Spectrom 1995;9:735-743. [ISI][Medline] [Order article via Infotrieve]
  20. Hurst GB, Doktycz MJ, Vass AA, Buchanan MV. Detection of bacterial DNA polymerase chain reaction products by matrix-assisted laser desorption/ionization mass spectrometry. Rapid Commun Mass Spectrom 1996;10:377-382. [ISI][Medline] [Order article via Infotrieve]
  21. Taranenko NI, Matteson KJ, Chung CN, Zhu YF, Chang LY, Allman SL, et al. Laser desorption mass spectrometry for point mutation detection. Genet Anal Biomol Eng 1996;13:87-94.




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