Capillary Electrophoresis of DNA
dc.contributor.author | Smith, Alan | |
dc.contributor.author | Nelson, Robert J. | |
dc.date.accessioned | 2020-01-13T15:04:10Z | |
dc.date.available | 2020-01-13T15:04:10Z | |
dc.date.issued | 2003-06 | |
dc.identifier.citation | Smith, Alan; Nelson, Robert J. (2003). "Capillary Electrophoresis of DNA." Current Protocols in Nucleic Acid Chemistry 13(1): 10.9.1-10.9.16. | |
dc.identifier.issn | 1934-9270 | |
dc.identifier.issn | 1934-9289 | |
dc.identifier.uri | https://hdl.handle.net/2027.42/152538 | |
dc.description.abstract | Capillary electrophoresis (CE) is an alternative to conventional slab gel electrophoresis for the separation of DNA fragments. CE offers a number of advantages over slab gel separations in terms of speed, resolution, sensitivity, and data handling. Separation times are generally only a few minutes and the DNA is detected either by UV absorption or by fluorescent labeling. The quantity of DNA required for separation is in the nanogram range. Single‐base resolution can be obtained on fragments up to several hundred base pairs. In the presence of appropriate standards, fragments can be accurately sized based on relative electrophoretic mobility. A protocol for the analysis of synthetic oligonucleotides in a flowable matrix is described in this unit. | |
dc.publisher | John Wiley & Sons | |
dc.title | Capillary Electrophoresis of DNA | |
dc.type | Article | |
dc.rights.robots | IndexNoFollow | |
dc.subject.hlbsecondlevel | Biological Chemistry | |
dc.subject.hlbsecondlevel | Chemical Engineering | |
dc.subject.hlbsecondlevel | Chemistry | |
dc.subject.hlbsecondlevel | Public Health | |
dc.subject.hlbtoplevel | Science | |
dc.subject.hlbtoplevel | Engineering | |
dc.subject.hlbtoplevel | Health Sciences | |
dc.description.peerreviewed | Peer Reviewed | |
dc.description.bitstreamurl | https://deepblue.lib.umich.edu/bitstream/2027.42/152538/1/cpnc1009.pdf | |
dc.identifier.doi | 10.1002/0471142700.nc1009s13 | |
dc.identifier.source | Current Protocols in Nucleic Acid Chemistry | |
dc.identifier.citedreference | Ren, J., Ulvik, A., Ueland, P.U., and Refsum, H. 1997. Analysis of single‐strand conformation polymorphism by capillary electrophoresis with laser‐induced fluorescence detection using short‐chain polyacrylamide as sieving medium. Anal. Biochem. 245: 79 ‐ 84. | |
dc.identifier.citedreference | Rossomando, E., White, L., and Ulfelder, K. 1991. Capillary electrophoresis: Separation and quantitation of reverse transcriptase polymerase chain reaction products from polio virus. J. Chromatogr. B. 656: 159 ‐ 168. | |
dc.identifier.citedreference | Ruiz‐Martinez, M., Salas‐Solano, O., Carilho, E., Kotler, L., and Karger, B. 1998. A sample purification method for ruffed and high‐performance DNA sequencing by capillary electrophoresis using replaceable polymer solutions. A. Development of the cleanup protocol. Anal. Chem. 70: 1516 ‐ 1527. | |
dc.identifier.citedreference | Sozer, A.C., Kelly, C.M., Demers, D.B. 1998. Molecular analysis of paternity. In Current Protocols in Human Genetics ( N.C. Dracopoli, J.L. Haines, B.R. Korf, D.T. Moir, C.C. Morton, C.E. Seidman, J.G. Seidman, and D.R. Smith, eds.)pp. 14.4.1 ‐ 14.4.26. John Wiley & Sons, New York. | |
dc.identifier.citedreference | Ulfelder, K., Schwartz, H., Hall, J., and Sunzeri, F. 1992. Restriction fragment length polymorphism analysis of ERBB2 oncogene by capillary electrophoresis. Anal. Biochem. 200: 260 ‐ 267. | |
dc.identifier.citedreference | Zhu, H., Clark, S., Benson, S., Rye, H., and Glazer, A. 1994. High sensitivity capillary electrophoresis of double stranded DNA fragments using monomeric and dimeric fluorescent intercalating dyes. Anal. Chem. 66: 1941 ‐ 1949. | |
dc.identifier.citedreference | Ulfelder, K.J. and McCord, B. 1997. Chapter 11. Separation of DNA by capillary electrophoresis. In Handbook of Capillary Electrophoresis, 2nd ed. ( J.P., Landers, ed.)pp. 347 ‐ 378. CRC Press, Boca Raton, Fla. | |
dc.identifier.citedreference | Ausubel, F.M., Brent, R., Kingston, R.E., Moore, D.D., Seidman, J.G., Smith, J.A., and Struhl, K. (eds.) 2003. Current Protocols in Molecular Biology. John Wiley & Sons, Hoboken, N.J. | |
dc.identifier.citedreference | Butler, J., McCord, B., Jung, J., and Allen, R. 1994. Rapid analysis of short tandem repeat HUMTH01 by capillary electrophoresis. BioTechniques 10: 1062 ‐ 1068. | |
dc.identifier.citedreference | Cohen, A., Najarian, D., Paulus, A., Guttman, A., Smith, J., and Karger, B. 1988. Rapid separation and purification of oligonucleotides by high‐performance, capillary, gel electrophoresis. Proc. Natl. Acad. Sci. U.S.A. 85: 9660 ‐ 9663. | |
dc.identifier.citedreference | Elbashir, E.M., Harborth, J., Lendeckel, W., Yalkcin, A., Weber, K., and Tuschl, T. 2001. Duplexes of 21‐nucleotide RNAs mediated RNA interference in cultured mammalian cells. Nature 411: 494 ‐ 498. | |
dc.identifier.citedreference | Fasco, M., Treanor, C., Spivack, S., Figge, H., and Kaminsky, L. 1995. Quantitative RNA‐polymerase chain reaction‐DNA analysis by capillary electrophoresis and laser induced fluorescence. Anal. Biochem. 224: 140 ‐ 147. | |
dc.identifier.citedreference | Freeman, W.M., Walker, S.J., and Vrana, K.E. 1999. Quantitative RT‐PCR: Pitfalls and potential. BioTechniques 26: 112 ‐ 125. | |
dc.identifier.citedreference | Grossman, P.D. 1991. Effect of molecular orientation and entangled polymer additives on the electrophoresis of biopolymers in free solution. Ph.D. Thesis, University of California, Berkeley. | |
dc.identifier.citedreference | Guttman, A. and Schwartz, H. 1995. Artifacts related to sample introduction in capillary gel electrophoresis affecting separation performance and quantitation. Anal. Chem. 67: 2279 ‐ 2283. | |
dc.identifier.citedreference | Jarcho, J. 1994. Restriction fragment length polymorphism analysis. In Current Protocols in Human Genetics ( N.C. Dracopoli, J.L. Haines, B.R. Korf, D.T. Moir, C.C. Morton, C.E. Seidman, J.G. Seidman, and D.R. Smith, eds.)pp. 2.7.1 ‐ 2.7.15. John Wiley & Sons, New York. | |
dc.identifier.citedreference | Piatak, M., Luk, K.‐C., Williams, B., and Lifson, J.D. 1993. Quantitative competitive PCR for accurate quantitation of HIV DNA and RNA species. BioTechniques 14: 70 ‐ 81. | |
dc.identifier.citedreference | Pon, R., Buck, G., Hager, K., Naeve, C., Niece, R., Robertson, M., and Smith, A. 1996. Multifacility survey of oligonucleotide synthesis and an examination of the performance of unpurified primers in automated DNA sequencing. BioTechniques 21: 680 ‐ 685. | |
dc.owningcollname | Interdisciplinary and Peer-Reviewed |
Files in this item
Remediation of Harmful Language
The University of Michigan Library aims to describe its collections in a way that respects the people and communities who create, use, and are represented in them. We encourage you to Contact Us anonymously if you encounter harmful or problematic language in catalog records or finding aids. More information about our policies and practices is available at Remediation of Harmful Language.
Accessibility
If you are unable to use this file in its current format, please select the Contact Us link and we can modify it to make it more accessible to you.