A quick, direct method that can differentiate expressed mitochondrial genes from their nuclear pseudogenes

被引:41
作者
Collura, RV [1 ]
Auerbach, MR [1 ]
Stewart, CB [1 ]
机构
[1] SUNY ALBANY,DEPT BIOL SCI,ALBANY,NY 12222
关键词
D O I
10.1016/S0960-9822(02)70720-3
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Direct sequencing of mitochondrial DNA (mtDNA) following amplification using the polymerase chain reaction (PCR) [1] has found widespread use in population genetic and phylogenetic research over the past few years. Recently, nuclear copies of mitochondrial genes have been reported in diverse eukaryotic species, often confounding such research (reviewed in [2,3]). Under certain circumstances, nuclear pseudogenes can be amplified more efficiently than the intended mtDNA target, even when using as template mtDNA that has been purified by gradient centrifugation [4]. If the transfer of the gene copy to the nucleus happened recently, it can be difficult - if not impossible - to identify the legitimate mitochondrial sequence. Here, we present a simple method that can identify expressed mitochondrial genes, using the cytochrome b gene of the particularly problematical proboscis monkey as an example. Because mtDNA is transcribed and processed into polyadenylated mRNAs [5,6], reverse transcription coupled to PCR can be used to amplify the expressed mitochondrial version. This method produced an unambiguous sequence for the proboscis monkey mitochondrial cytochrome b gene; in contrast, traditional DNA-based PCR methods produced ambiguous sequence, because many nuclear pseudogenes were present. Phylogenetic analysis of the cytochrome b gene suggests that the proboscis monkey groups with the Asian langurs, rather than forming a sister taxon to all Asian and African colobines as was previously suggested [7]. Reverse transcriptase-coupled PCR should be applicable to many other cases of nuclear transfer of mtDNA, including those involving ribosomal genes. (C) Current Biology Ltd ISSN 0960-9822
引用
收藏
页码:1337 / 1339
页数:3
相关论文
共 16 条
[1]   SEQUENCE AND ORGANIZATION OF THE HUMAN MITOCHONDRIAL GENOME [J].
ANDERSON, S ;
BANKIER, AT ;
BARRELL, BG ;
DEBRUIJN, MHL ;
COULSON, AR ;
DROUIN, J ;
EPERON, IC ;
NIERLICH, DP ;
ROE, BA ;
SANGER, F ;
SCHREIER, PH ;
SMITH, AJH ;
STADEN, R ;
YOUNG, IG .
NATURE, 1981, 290 (5806) :457-465
[2]  
Ausubel FA, 1995, CURRENT PROTOCOLS MO
[3]   Mitochondrial DNA migration events in yeast and humans: Integration by a common end-joining mechanism and alternative perspectives on nucleotide substitution patterns [J].
Blanchard, JL ;
Schmidt, GW .
MOLECULAR BIOLOGY AND EVOLUTION, 1996, 13 (03) :537-548
[4]   PERVASIVE MIGRATION OF ORGANELLAR DNA TO THE NUCLEUS IN PLANTS [J].
BLANCHARD, JL ;
SCHMIDT, GW .
JOURNAL OF MOLECULAR EVOLUTION, 1995, 41 (04) :397-406
[5]   INSERTIONS AND DUPLICATIONS OF MTDNA IN THE NUCLEAR GENOMES OF OLD-WORLD MONKEYS AND HOMINOIDS [J].
COLLURA, RV ;
STEWART, CB .
NATURE, 1995, 378 (6556) :485-489
[6]  
Groves C.P., 1989, THEORY HUMAN PRIMATE
[7]  
GUSTINCICH S, 1991, BIOTECHNIQUES, V11, P298
[8]   DYNAMICS OF MITOCHONDRIAL-DNA EVOLUTION IN ANIMALS - AMPLIFICATION AND SEQUENCING WITH CONSERVED PRIMERS [J].
KOCHER, TD ;
THOMAS, WK ;
MEYER, A ;
EDWARDS, SV ;
PAABO, S ;
VILLABLANCA, FX ;
WILSON, AC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1989, 86 (16) :6196-6200
[9]   TRANSFER-RNA PUNCTUATION MODEL OF RNA PROCESSING IN HUMAN MITOCHONDRIA [J].
OJALA, D ;
MONTOYA, J ;
ATTARDI, G .
NATURE, 1981, 290 (5806) :470-474
[10]   Mitochondrial DNA - Molecular fossils in the nucleus [J].
Perna, NT ;
Kocher, TD .
CURRENT BIOLOGY, 1996, 6 (02) :128-129