Acta Laser Biology Sinica, Volume. 29, Issue 6, 538(2020)
Genome-wide Fine Insertion/Deletion of Gene Markers in Arabidopsis thaliana
[1] [1] lecular marker techniques and their applications in plant sciences[J]. Plant Cell Reports, 2008, 27(4): 617-631.
[2] [2] WILLIAMS J G K, KUBELIK A R, LIVAK K J, et al. DNA poly-morphisms amplified by arbitrary primers are useful as genetic markers[J]. Nucleic Acids Research, 1990, 18(22): 6531-6535.
[3] [3] BELL C J, ECKER J R. Assignment of 30 microsatellite loci to the linkage map of Arabidopsis[J]. Genomics, 1994, 19(1): 137-144.
[4] [4] CHANG C, BOWMAN J L, DEJOHN A W, et al. Restriction frag-ment length polymorphism linkage map for Arabidopsis thaliana[J]. Proceedings of the National Academy of Sciences, 1988,85(18): 6856-6860.
[5] [5] DRENKARD E, RICHTER B G, ROZEN S, et al. A simple proce-dure for the analysis of single nucleotide polymorphisms facilitates map-based cloning in Arabidopsis[J]. Plant Physiology, 2000,124(4): 1483-1492.
[6] [6] HRUBA M. dCAPS method: advantages, troubles and solution[J]. Plant Soil and Environment, 2007, 53(9): 417.
[7] [7] HOU X, LI L, PENG Z, et al. A platform of high-density INDEL/ CAPS markers for map-based cloning in Arabidopsis[J]. The Plant Journal, 2010, 63(5): 880-888.
[8] [8] AUSTIN R S, VIDAURRE D, STAMATIOU G, et al. Next-gener-ation mapping of Arabidopsis genes[J]. The Plant Journal, 2011,67(4): 715-725.
[12] [12] ZENG L, YANG X, ZHOU J. The xanthophyll cycle as an early pathogenic target to deregulate guard cells during Sclerotinia sclerotiorum infection[J]. Plant Signaling & Behavior, 2020,15(1): 1691704.
[13] [13] ZENG L, WANG Y, ZHOU J. Spectral analysis on origination of the bands at 437 nm and 475.5 nm of chlorophyll.uorescence ex-citation spectrum in Arabidopsis chloroplasts[J]. Luminescence, 2016, 31(3): 769-774.
[14] [14] MEINKE D W, MEINKE L K, SHOWALTER T C, et al. A se-quence-based map of Arabidopsis genes with mutant phenotypes[J]. Plant Physiology, 2003, 131(2): 409-418.
[15] [15] PAN C, LIA, DAI Z, et al. InDel and SNP markers and their ap-plications in map-based cloning of rice genes[J]. Rice Science, 2008, 15(4): 251-258.
[16] [16] COLLARD B C Y, MACKILL D J. Marker-assisted selection: an approach for precision plant breeding in the twenty-first century[J]. Philosophical Transactions of the Royal Society B: Biological Sciences, 2008, 363(1491): 557-572.
[17] [17] MCNALLY K L, CHILDS K L, BOHNERT R, et al. Genomewide SNP variation reveals relationships among landraces and modern varieties of rice[J]. Proceedings of the National Academy of Sci-ences, 2009, 106(30): 12273-12278.
[18] [18] CHEN H, XIE W, HE H, et al. A high-density SNP genotyping ar-ray for rice biology and molecular breeding[J]. Molecular Plant, 2014, 7(3): 541-553.
[19] [19] LYUY, CUI X, LI R, et al. Development of genome-wide inser-tion/deletion markers in rice based on graphic pipeline platform[J]. Journal of Integrative Plant Biology, 2015, 57(11): 980-991.
[20] [20] Zhoujun. At_InDel_Marker[EB/OL]. https://github.com/ zhoujun1988/AtMarker/blob/master/At_InDel_Marker, 2020-08-01/2020-08-04.
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SHI Yalei, YU Jingfang, WU Ke, ZHOU Jun. Genome-wide Fine Insertion/Deletion of Gene Markers in Arabidopsis thaliana[J]. Acta Laser Biology Sinica, 2020, 29(6): 538
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Received: Jul. 18, 2020
Accepted: --
Published Online: Feb. 5, 2021
The Author Email: Jun ZHOU (zhoujun@scnu.edu.cn)