Scientia Agricultura Sinica ›› 2015, Vol. 48 ›› Issue (9): 1854-1863.doi: 10.3864/j.issn.0578-1752.2015.09.19

• RESEARCH NOTES • Previous Articles     Next Articles

Chromosome Analysis of Peanut (Arachis hypogaea L.) Based on Sequential GISH-FISH

DU Pei1, LIU Hua1, LI Li-na1, QIN Li1, ZHANG Zhong-xin1, HUANG Bing-yan1, DONG Wen-zhao1TANG Feng-shou1, QI Zeng-jun2, ZHANG Xin-you1   

  1. 1Industrial Crops Research Institute, Henan Academy of Agricultural Sciences/Key Laboratory of Oil Crops in Huanghuaihai Plains, Ministry of Agriculture/Henan Provincial Key Laboratory for Oil Crops Improvement, Zhengzhou 450002
    2National Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural University, Nanjing 210095
  • Received:2014-09-28 Online:2015-05-01 Published:2015-05-01

Abstract: 【Objective】The cytogenetic study of peanut has been hindered mainly by the small chromosomes and limited cytological markers of peanut. In order to reveal the correspondence between cultivated peanut (Arachis hypogaea L., 2n=4x=40, AABB) and wild donor parents chromosomes and to characterize the chromosome structure variants, the objective of this study is to establish a highly distinguishable karyotype of A and B genome chromosomes for improving accuracy of chromosome identification. 【Method】Using the total genomic DNA of the two possible donors (A.duranensis, 2n=2x=20, BBand A.ipaënsis, 2n=2x=20, AA) of cultivated peanut and 5S and 45S rDNA as probes, sequential GISH-FISH combined with DAPI staining were employed to develop the karyotypes of Z5163 and the two donors based on distinguishing A and B genome of A. hypogaea clearly. The new karyotype was then used to analyze more peanut cultivars in order to reveal the characteristics of peanut chromosome constitution.【Result】 GISH indicated that all 20 B genome chromosomes of A. hypogaea produced clear and stable signals after hybridized with the total genomic DNA of A.ipaënsis, while only 18 chromosomes except “A chromosomes” of A genome produced signals using A. duranensis as a probe. Sequential mc-FISH using 5S rDNA and 45S rDNA as probes and combined with DAPI staining revealed that all the signals distributed on A and B genome of A. hypogaea were almost identical to its respective possible donor genome chromosomes of A. duranensis and A.ipaënsis, which suggested that A. duranensis and A.ipaënsis were the donors of A. hypogaea. Furthermore, the present study also found that 14 B genome chromosomes showed centromeric bands after DAPI staining, which were quite more than the previous reports, indicating that it was difficult to distinguish the A and B genome chromosomes of A. hypogaea only by DAPI staining as previous reports. Therefore, based on the above findings, a new GISH-FISH karyotype of the cultivated peanut was developed which could clearly distinguish all the chromosomes of A genome from those of B genome in A. hypogaea. And then the karyotype was used to characterize three peanut varieties, and a spontaneous monosomic substitution line of A. hypogaea, MSB1(A1), was found, indicating the homoeologous relationship between chromosomes B1 and A1.【Conclusion】The two genomes of cultivated peanut were very separately correspondent to its possible donor parents A. duranensis and A. ipaënsis; The new karyotype of the cultivated peanut could not only distinguish most of A and B genome chromosomes but also identify spontaneous chromosome variations produced in the progress of human-selection and polyploidization of peanut, indicating homoeologous relationships between chromosomes of A and B genomes of peanut.

Key words: peanut, sequential GISH-FISH, chromosome structure, karyotype, chromosome substitution

[1]    Krapovickas A, Gregory W C. Taxonomia del genero Arachis (Leguminosae). Bonplandia, 1994, 8: 1-186.
[2]    Valls J F M, Simpson C E. New species of Arachis from Brazil, Paraguay, and Bolivia. Bonplandia, 2005, 14: 35-64.
[3]    Singh A K, Moss J P. Utilization of wild relatives in genetic improvement of Arachis hypogaea L.: 5. Genome analysis in section Arachis and its implications in gene transfer. Theoretical and Applied Genetics, 1984, 68: 355-364.
[4]    Kochert G, Halward T, Branch W D, Simpson C E. RFLP variability in peanut (Arachis hypogaea L.) cultivars and wild species. Theoretical and Applied Genetics, 1991, 81: 565-570.
[5]    Fernández A, Krapovickas A. Cromosomas y evolución en Arachis (Leguminosae). Bonplandia, 1994, 8: 187-220.
[6]    Singh A K, Smartt J. The genome donors of the groundnut/peanut (Arachis hypogaea L.) revisited. Genetic Resources and Crop Evolution, 1998, 45: 113-118.
[7]    Raina S N, Mukai Y. Detection of a variable number of 18S-5.8S-26S and 5S ribosomal DNA loci by fluorescent in situ hybridization in diploid and tetraploid Arachis species. Genome, 1999, 42: 52-59.
[8]    Raina S N, Mukai Y. Genomic in situ hybridization in Arachis (Fabaceae) identifies the diploid wild progenitors of cultivated (A. hypogaea) and related wild (A. monticola) peanut species. Plant Systematics and Evolution, 1999, 214: 251-262.
[9]    Husted L. Cytological studies on the peanut, Arachis I. Chromosome number and morphology. Cytologia, 1933, 5: 109-117.
[10]   Seijo J G, Lavia G I, Fernández A, Krapovickas A, Ducasse D, Moscone E A. Physical mapping of 5S and 18S-25S rRNA genes by FISH as evidences that A. duranensis and A. ipaensis are the wild diploid species involved in the origin of A. hypogaea (Leguminosae). American Journal of Botany, 2004, 91: 1294-1303.
[11]   Seijo J G, Lavia G I, Fernández A, Krapovickas A, Ducasse D A, Bertioli D J, Moscone E A. Genomic relationships between the cultivated peanut (Arachis hypogaea-Leguminosae) and its close relatives revealed by double GISH. American Journal of Botany, 2007, 94: 1963-1971.
[12]   Robledo G, Lavia G I, Seijo J G. Species relations among wild Arachis species with the A genome as revealed by FISH mapping of rDNA loci and heterochromatin detection. Theoretical and Applied Genetics, 2009, 118: 1295-1307.
[13]   Robledo G, Seijo G. Species relationships among the wild B genome of Arachis species (section Arachis) based on FISH mapping of rDNA loci and heterochromatin detection: A new proposal for genome arrangement.Theoretical and Applied Genetics, 2010, 121(6): 1033-1046.
[14]   Nielen S, Fonseca F C, Bertioli S L, Guimarães P, Seijo G, Town C, Arrial R, Bertioli D. FIDEL-a retrovirus-like retrotransposon and its distinct evolutionary histories in the A and B genome components of cultivated peanut. Chromosome Research, 2010, 18: 227-246.
[15]   Stalker H T, Tallury S, Ozias-Akins P, Knapp S. Arachis duranensis, the A genome donor of the cultivated peanut//Abstract of Sixth International Conference of the Peanut Research Community, 2013.
[16]   唐荣华, 周汉群, 蔡骥业. 花生属野生种的核型及其进化. 中国油料, 1990, 1: 4-9.
Tang R H, Zhou H Q, Cai J Y. Analysis of karyotypes and evolution of wild species in genus Arachis.China Oil Crops, 1990, 1: 4-9. (in Chinese)
[17]   詹英贤, 吴爱忠, 程明, 周向臣. 花生属栽培种与野生种间亲缘关系的研究: I 染色体Giemsa C-显带带型分析. 北京农业大学学报, 1992, 18(1): 15-19.
Zhan Y X, Wu A Z, Cheng M, Zhou X C. Studies in the relationship between cultispecies and wild species in genus Arachis L.: I. The analysis of chromosome giemsa C-banding patterns. Acta Agricultural Universitatis Pekinensis, 1992, 18(1): 15-19. (in Chinese)
[18]   佘朝文, 张礼华, 蒋向辉. 花生的荧光显带和rDNA 荧光原位杂交核型分析. 作物学报, 2012, 38(4): 754-759.
She C W, Zhang L H, Jiang X H. Karyotype analysis of Arachis hypogaea L. using fluorescence banding and fluorescence in situ hybridization with rDNA probes. Acta Agronomica Sinica, 2012, 38(4): 754-759. (in Chinese)
[19]   杜培, 张新友, 李丽娜, 黄冰艳, 易明林, 董文召, 汤丰收. 高质量花生根尖细胞染色体制片方法研究. 河南农业科学, 2013, 42(3): 31-35.
Du P, Zhang X Y, Li L N, Huang B Y, Yi M L, Dong W Z, Tang F S. Study on slide preparation methods for high quality chromosomes for root tip cell of Arachis. Journal of Henan Agricultural Sciences, 2013, 42(3): 31-35. (in Chinese)
[20]   Chen P D, Qi L L, Zhou B, Zhang S Z, Liu D J. Development and molecular cytogenetic analysis of wheat-Haynaldia villosa 6VS/6AL translocation lines specifying resistance to powdery mildew. Theoretical and Applied Genetics, 1995, 91: 1125-1128.
[21]   Moscone E A, Matzke M A, Matzke A J. The use of combined FISH/GISH in conjunction with DAPI counterstaining to identify chromosomes containing transgene inserts in amphidiploid tobacco. Chromosoma, 1996,105: 231-236.
[22]   Sánchez-morán E, Benavente E, Orellana J. Simultaneous identification of A, B, D and R genomes by genomic in situ hybridization in wheat-rye derivatives. Heredity, 1999, 83: 249-252.
[23]   Smartt J. Cross compatibility relationships between the cultivated peanut Arachis hypogaea L. and other species of the genus Arachis. Raleigh: North Carolina State University, 1964.
[24]   Company M, Stalker H T, Wynne J C. Cytology and leafspot resistance in Arachis hypogaea L. × wild species hybrids. Euphytica, 1982, 31: 885-893.
[25]   Singh A K, Moss J P.  Utilisation of wild relatives in the genetic improvement of Arachis hypogaea L.. Theoretical and Applied Genetics, 1984, 68: 355-364.
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