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科学通报  2015 

用核DNA和叶绿体DNA序列鉴别铁线蕨属AdiantumL.(凤尾蕨科)新的隐性杂交种

DOI: 10.1360/N972014-00891, PP. 922-932

Keywords: 蕨类植物,铁线蕨,核DNA序列,叶绿体DNA序列,自然杂交,适合度,隐性种

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Abstract:

物种自然杂交现象在自然界中普遍存在,并被认为在适宜条件下可以多地独立发生.2013年,在云南元江采集的7种铁线蕨属植物中,其中一种在形态上疑似台湾产梅山铁线蕨,而该种被认为是以假鞭叶铁线蕨为母本、半月形铁线蕨为父本的自然杂交物种.形态学比较显示,该存疑种与铁线蕨属其他种类均有明显差别,用单拷贝核DNA序列CRY2exon3和叶绿体DNA序列rbcL,atpB,atpA,trnL-F,rps4-trnS对云南元江产梅山铁线蕨存疑种进行研究,结果显示云南元江产梅山铁线蕨存疑种为以苍山铁线蕨为母本和以孟连铁线蕨为父本的自然杂交种,由于形态上与台湾产梅山铁线蕨相似、父母本亲缘关系上与梅山铁线蕨的双亲近缘,因而可称为梅山铁线蕨的隐性杂交种.据此认为,中国可能存在大量的自然杂交种尚未发现,并可以通过核DNA序列和叶绿体DNA序列进行准确鉴定;同时,诸如铁线蕨属这样的蕨类植物,由于存在无性繁殖习性,可以弥补有性生殖隔离带来的适合度降低的缺陷,增加杂交种在自然界中的存活机会,是蕨类植物中自然杂交种普遍存在的重要原因.

References

[1]  1 Arnold M L. Natural Hybridization and Evolution. Oxford: Oxford University Press Inc, 1997
[2]  2 Arnold M L. Natural hybridization as an evolutionary process. Annu Rev Ecol Evol Syst, 1992, 37: 237-261
[3]  3 Gou C Y, Zhang S Z, Geng S L. Phylogenetic position and genetic relationship of Osmunda mildei (Osmundaceae): Evidence from rbcL Gene and trnL-trnF region (in Chinese). Acta Bot Boreali-Occidental Sin, 2009, 28: 2178-2183 [勾彩云, 张寿洲, 耿世磊. 基于rbcL和trnL-trnF序列探讨粤紫萁的系统位置及遗传关系. 西北植物学报, 2009, 28: 2178-
[4]  4 Tsutsumi C, Hirayama Y, Kato M, et al. Molecular evidence on the origin of Osmunda mildei (Osmundaceae). Am Fern J, 2012, 102: 55-68
[5]  5 Lee W, Chau L, Wu S. Flora of Hong Kong-Pteridophyta. In: Hong Kong: Kadoorie Farm & Botanic Garden, 2003
[6]  6 Zhang S Z, He Z C, Fan C R, et al. A cytogenetic study of five species in the genus Osmunda. J Syst Evol 2008, 46: 490-498
[7]  19 Koch M A, Dobe? C, Mitchell Olds T. Multiple hybrid formation in natural populations: Concerted evolution of the internal transcribed spacer of nuclear ribosomal DNA (ITS) in North American Arabis divaricarpa (Brassicaceae). Mol Biol Evol, 2003, 20: 338-350
[8]  20 Wendel J F, Schnabel A, Seelanan T. Bidirectional interlocus concerted evolution following allopolyploid speciation in cotton (Gossypium). Proc Natl Acad Sci, 1995, 92: 280-284
[9]  21 Zhang R, Liu T, Wu W, et al. Molecular evidence for natural hybridization in the mangrove fern genus Acrostichum. BMC Plant Biol, 2013, 13: 74
[10]  22 Chang H M, Chiou W L, Wang J C. Molecular evidence for genetic heterogeneity and the hybrid origin of Acrorumohra subreflexipinna from Taiwan. Am Fern J, 2009, 99: 61-77
[11]  23 Tian X, Li D Z. Application of DNA sequences in plant phylogenetic study (in Chinese). Acta Bot Yunnan, 2002, 24: 170-184 [田欣, 李德铢. DNA序列在植物系统学研究中的应用. 云南植物研究, 2002, 24: 170-
[12]  24 Liu H M, Zhang X C, Zeng H. Application of DNA sequences in pteridophyte phylogenetic study (in Chinese). Chin Bull Bot, 2009, 44: 143-158 [刘红梅, 张宪春, 曾辉. DNA序列在蕨类分子系统学研究中的应用. 植物学报, 2009, 44: 143-
[13]  25 Lu J M, Wen J, Lutz S, et al. Phylogenetic relationships of Chinese Adiantum based on five plastid markers. J Plant Res, 2012, 125: 237-249
[14]  26 Gastony G J, Yatskievych G. Maternal inheritance of the chloroplast and mitochondrial genomes in cheilanthoid ferns. Am J Bot, 1992, 79: 716-722
[15]  27 Vogel J C, Russell S, Rumsey F, et al. Evidence for maternal transmission of chloroplast DNA in the genus Asplenium (Aspleniaceae, Pteridophyta). Bot Acta, 1998, 111: 247-249
[16]  28 Soltis P S, Doyle J J, Soltis D E. Molecular data and polyploid evolution in plants. In: Soltis P S, Soltis D E, Doyle J J. Molecular Systematics of Plants. Berlin, Heidelberg: Springer, 1992. 177-201
[17]  29 Schuettpelz E, Korall P, Pryer K M. Plastid atpA data provide improved support for deep relationships among ferns. Taxon, 2006, 55: 897-906
[18]  30 Schuettpelz E, Pryer K M. Fern phylogeny inferred from 400 leptosporangiate species and three plastid genes. Taxon, 2007, 56: 1037
[19]  31 Little D P, Barrington D S. Major evolutionary events in the origin and diversification of the fern genus Polystichum (Dryopteridaceae). Am J Bot, 2003, 90: 508-514
[20]  32 Lu J M, Li D Z, Gao L M, et al. Paraphyly of Cyrtomium (Dryopteridaceae): Evidence from rbcL and trnL-F sequence data. J Plant Res, 2005, 118: 129-135
[21]  33 Taberlet P, Gielly L, Pautou G, et al. Universal primers for amplification of three non-coding regions of chloroplast DNA. Plant Mol Biol, 1991, 17: 1105-1109
[22]  43 Grant V. Plant speciation: Maps, Chromosome numbers. New York: Columbia University Press, 1981
[23]  44 Paris C A, Wagner F S, Wagner W H. Cryptic species, species delimitation, and taxonomic practice in the homosporous ferns. Am Fern J, 1989, 79: 46-54
[24]  45 Wu W, Zhou R, Huang Y, et al. Molecular evidence for natural intergeneric hybridization between Liquidambar and Altingia. J Plant Res, 2010, 123: 231-239
[25]  46 Wu Z Y, Raven P H, Hong D Y. Flora of China. Beijing: Science Press; St.Louis: Missouri Botanical Garden Press, 2013, 2-3: 242
[26]  55 Zhang X C. Hybrids of fern in China (in Chinese). Bull Biol, 1993, 3: 004 [张宪春. 我国的蕨类植物杂交种. 生物学通报, 1993, 3:
[27]  7 Zhou X L, Qi X P, Shao W, et al. New records for ferns from Hunan Province, China (in Chinese). J Plant Resour Environ, 2013, 22: 117-118 [周喜乐, 齐新萍, 邵文等. 湖南省蕨类植物新记录. 植物资源与环境学报, 2013, 22: 117-
[28]  8 Yan Y H, Yuan H, He Z X, et al. New records of ferns from Jiangxi, China (in Chinese). Guihaia, 2011, 31: 5-8 [严岳鸿, 苑虎, 何祖霞等. 江西蕨类植物新记录. 广西植物, 2011, 31: 5-
[29]  9 Mitui K. Chromosomes and speciation in ferns. Science Reports of the Tokyo Kyoiku Daigaku B, 1968, 13: 185-333
[30]  10 Mitsuta S. An artificial hybrid between Diplazium pin-faense and D. wichurae var. wichurae. Acta Phytotax Geobot, 1982, 33: 275
[31]  11 Gu Y F, Wei H J, Wei R, et al. Diplazium × kidoi Sa. Kurata, a newly recorded species of Diplazium (Athyriaceae) from China (in Chinese). Plant Sci J, 2014, 32: 336-339 [顾钰峰, 韦宏金, 卫然等. 中国双盖蕨属一新记录种—Diplazium × kidoi Sa. Kurata. 植物科学学报, 2014, 32: 336-
[32]  12 Zhang W Y, Kuo L Y, Li F W, et al. The hybrid origin of Adiantum meishanianum (Pteridaceae): A rare and endemic species in Taiwan. Syst Bot, 2014;39: 1034-1041
[33]  13 Wang F H, Lu J M, Li D S. New geographical distribution of three species in Adiantum L. (in Chinese). Acta Bot Boreali-Occidental Sin, 2014, 34: 1055-1060 [王凡红, 卢金梅, 李德铢. 铁线蕨属3个种的分布新记录. 西北植物学报, 2014, 34: 1055-
[34]  14 Xiang L, Werth C R, Emery S N, et al. Population-specific gender-biased hybridization between Dryopteris intermedia and D. carthusiana: Evidence from chloroplast DNA. Am J Bot, 2000, 87: 1175-1180
[35]  15 Small R L, Cronn R C, Wendel J F. Use of nuclear genes for phylogeny reconstruction in plants. Aust Syst Bot, 2004, 17: 145-170
[36]  16 Masuyama S, Watano Y. Hybrid sterility between two isozymic types of the fern Ceratopteris thalictroides in Japan. J Plant Res, 1994, 107: 269-274
[37]  17 Lin S J, Kato M, Iwatsuki K. Electrophoretic variation of the apogamous Dryopteris varia group (Dryopteridaceae). J Plant Res, 1995, 108: 451-456
[38]  18 Rothfels C J, Larsson A, Li F W, et al. Transcriptome-mining for single-copy nuclear markers in ferns. PloS One, 2013, 8: e76957
[39]  34 Shaw J, Lickey E B, Beck J T, et al. The tortoise and the hare II: relative utility of 21 noncoding chloroplast DNA sequences for phylogenetic analysis. Am J Bot, 2005, 92: 142-166
[40]  35 Souza Chies T T, Bittar G, Nadot S, et al. Phylogenetic analysis of Iridaceae with parsimony and distance methods using the plastid gene rps4. Plant Syst Evol, 1997, 204: 109-123
[41]  36 Librado P, Rozas J. DnaSP v5: A software for comprehensive analysis of DNA polymorphism data. Bioinformatics, 2009, 25: 1451-1452
[42]  37 Hall T A. BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symp Ser, 1999, 42: 95-98
[43]  38 Swofford D L. PAUP*. Phylogenetic analysis using parsimony (* and other methods). Version 4., 2003
[44]  39 Huelsenbeck J P, Ronquist F. MRBAYES: Bayesian inference of phylogenetic trees. Bioinformatics, 2001, 17: 754-755
[45]  40 Ronquist F, Huelsenbeck J P. MrBayes 3: Bayesian phylogenetic inference under mixed models. Bioinformatics, 2003, 19: 1572-1574
[46]  41 Posada D, Buckley T R. Model selection and model averaging in phylogenetics: Advantages of Akaike information criterion and Bayesian approaches over likelihood ratio tests. Syst Biol, 2004, 53: 793-808
[47]  42 Posada D, Crandall K A. Modeltest: Testing the model of DNA substitution. Bioinformatics, 1998, 14: 817-818
[48]  47 Nakaike, Toshiyuki. Index to scientific names of Japanese Pteridophytes. J Nippon Fernist Club, 2004
[49]  48 Palmer D D. Hawaii’ Ferns and Fern Allies. Honolulu: University of Hawaii Press, 2003
[50]  49 Kranz H D, Huss V A. Molecular evolution of pteridophytes and their relationship to seed plants: evidence from complete 18S rRNA gene sequences. Plant Syst Evol, 1996, 202: 1-11
[51]  50 Sanchez B P. Phylogenetics and biogeography of the neotropical fern genera Jamesonia and Eriosorus (Pteridaceae). Am J Bot, 2004, 91: 274-284
[52]  51 Schuettpelz E, Grusz A L, Windham M D, et al. The utility of nuclear gapCp in resolving polyploid fern origins. Syst Bot, 2008, 33: 621-629
[53]  52 Shepherd L D, Perrie L R, Brownsey P J. Low-copy nuclear DNA sequences reveal a predominance of allopolyploids in a New Zealand Asplenium fern complex. Mol Phylogenet Evol, 2008, 49: 240-248
[54]  53 Barton N H, Hewitt G. Analysis of hybrid zones. Annu Rev Ecol Syst, 1985, 16: 113-148
[55]  54 Mayr E. Animal species and evolution. Animal species and their evolution 1963

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