Comparative mapping in the Poaceae family reveals translocations in the complex polyploid genome of sugarcane

被引:29
作者
Aitken, Karen S. [1 ]
McNeil, Meredith D. [1 ]
Berkman, Paul J. [1 ]
Hermann, Scott [2 ]
Kilian, Andrzej [3 ]
Bundock, Peter C. [4 ]
Li, Jingchuan [1 ]
机构
[1] CSIRO Plant Ind, Brisbane, Qld 4067, Australia
[2] BSES Ltd, Brisbane, Qld 4068, Australia
[3] Divers Arrays PL, Canberra, ACT 2600, Australia
[4] Southern Cross Univ, Lismore, NSW 2480, Australia
关键词
Saccharum; Poaceae; Synteny; Orthology; Translocations; SNP markers; GENETIC-LINKAGE MAP; ARRAYS TECHNOLOGY DART; SACCHARUM-SPONTANEUM; DIVERSITY ARRAYS; SORGHUM; AFLP; MARKERS; SPP; IDENTIFICATION; ORGANIZATION;
D O I
10.1186/s12870-014-0190-x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: The understanding of sugarcane genetics has lagged behind that of other members of the Poaceae family such as wheat, rice, barley and sorghum mainly due to the complexity, size and polyploidization of the genome. We have used the genetic map of a sugarcane cultivar to generate a consensus genetic map to increase genome coverage for comparison to the sorghum genome. We have utilized the recently developed sugarcane DArT array to increase the marker density within the genetic map. The sequence of these DArT markers plus SNP and EST-SSR markers was then used to form a bridge to the sorghum genomic sequence by BLAST alignment to start to unravel the complex genomic architecture of sugarcane. Results: Comparative mapping revealed that certain sugarcane chromosomes show greater levels of synteny to sorghum than others. On a macrosyntenic level a good collinearity was observed between sugarcane and sorghum for 4 of the 8 homology groups (HGs). These 4 HGs were syntenic to four sorghum chromosomes with from 98% to 100% of these chromosomes covered by these linked markers. Four major chromosome rearrangements were identified between the other four sugarcane HGs and sorghum, two of which were condensations of chromosomes reducing the basic chromosome number of sugarcane from x = 10 to x = 8. This macro level of synteny was transferred to other members within the Poaceae family such as maize to uncover the important evolutionary relationships that exist between sugarcane and these species. Conclusions: Comparative mapping of sugarcane to the sorghum genome has revealed new information on the genome structure of sugarcane which will help guide identification of important genes for use in sugarcane breeding. Furthermore of the four major chromosome rearrangements identified in this study, three were common to maize providing some evidence that chromosome reduction from a common paleo-ancestor of both maize and sugarcane was driven by the same translocation events seen in both species.
引用
收藏
页数:15
相关论文
共 50 条
[1]   A combination of AFLP and SSR markers provides extensive map coverage and identification of homo(eo)logous linkage groups in a sugarcane cultivar [J].
Aitken, K ;
Jackson, P ;
McIntyre, C .
THEORETICAL AND APPLIED GENETICS, 2005, 110 (05) :789-801
[2]   AFLP analysis of genetic diversity within Saccharum officinarum and comparison with sugarcane cultivars [J].
Aitken, K. S. ;
Li, J. -C. ;
Jackson, P. ;
Piperidis, G. ;
McIntyre, C. L. .
AUSTRALIAN JOURNAL OF AGRICULTURAL RESEARCH, 2006, 57 (11) :1167-1184
[3]   A comprehensive genetic map of sugarcane that provides enhanced map coverage and integrates high-throughput Diversity Array Technology (DArT) markers [J].
Aitken, Karen S. ;
McNeil, Meredith D. ;
Hermann, Scott ;
Bundock, Peter C. ;
Kilian, Andrzej ;
Heller-Uszynska, Katarzyna ;
Henry, Robert J. ;
Li, Jingchuan .
BMC GENOMICS, 2014, 15
[4]   Diversity arrays technology (DArT) for high-throughput profiling of the hexaploid wheat genome [J].
Akbari, Mona ;
Wenzl, Peter ;
Caig, Vanessa ;
Carling, Jason ;
Xia, Ling ;
Yang, Shiying ;
Uszynski, Grzegorz ;
Mohler, Volker ;
Lehmensiek, Anke ;
Kuchel, Haydn ;
Hayden, Mathew J. ;
Howes, Neil ;
Sharp, Peter ;
Vaughan, Peter ;
Rathmell, Bill ;
Huttner, Eric ;
Kilian, Andrzej .
THEORETICAL AND APPLIED GENETICS, 2006, 113 (08) :1409-1420
[5]  
ALJANABI SM, 1993, GENETICS, V134, P1249
[6]   BASIC LOCAL ALIGNMENT SEARCH TOOL [J].
ALTSCHUL, SF ;
GISH, W ;
MILLER, W ;
MYERS, EW ;
LIPMAN, DJ .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 215 (03) :403-410
[7]   Genetic analysis of the sugarcane (Saccharum spp.) cultivar 'LCP 85-384'. I. Linkage mapping using AFLP, SSR, and TRAP markers [J].
Andru, Suman ;
Pan, Yong-Bao ;
Thongthawee, Songkran ;
Burner, David M. ;
Kimbeng, Collins A. .
THEORETICAL AND APPLIED GENETICS, 2011, 123 (01) :77-93
[8]   The 'inner circle' of the cereal genomes [J].
Bolot, Stephanie ;
Abrouk, Michael ;
Masood-Quraishi, Umar ;
Stein, Nils ;
Messing, Joachim ;
Feuillet, Catherine ;
Salse, Jerome .
CURRENT OPINION IN PLANT BIOLOGY, 2009, 12 (02) :119-125
[9]   Targeted single nucleotide polymorphism (SNP) discovery in a highly polyploid plant species using 454 sequencing [J].
Bundock, Peter C. ;
Eliott, Frances G. ;
Ablett, Gary ;
Benson, Adam D. ;
Casu, Rosanne E. ;
Aitken, Karen S. ;
Henry, Robert J. .
PLANT BIOTECHNOLOGY JOURNAL, 2009, 7 (04) :347-354
[10]   CHROMOSOME TRANSMISSION AND MEIOTIC STABILITY OF SUGARCANE (SACCHARUM SPP) HYBRID DERIVATIVES [J].
BURNER, DM ;
LEGENDRE, BL .
CROP SCIENCE, 1993, 33 (03) :600-606