[1]陈春明.中国营养状况十年跟踪(1990–2000).北京:北京人民卫生出版社,2004
Chen C M. Ten Year Tracking Nutritional Status in China (1990–2000). Beijing: Beijing People's Medical Publishing House, 2004 (in Chinese)
[2]Welch R M, Graham R D. A new paradigm for world agriculture: meeting human needs. Productive, sustainable, nutritious. Field Crops Res, 1999, 60: 1–10
[3]Bouis H E, Graham R D, Welch R M. The consultative group on international agriculture research (CGIAR) micronutrients project: justification and objectives. Food Nutr Bull, 2000, 21: 374–381
[4]Ortiz-Monasterio J I, Palacios-Rojas N, Meng E, Pixley K, Trethowan R, Pena R J. Enhancing the mineral and vitamin content of wheat and maize through plant breeding. J Cereal Sci, 2007, 46: 293–307
[5]张勇, 王德森, 张艳, 何中虎. 北方冬麦区小麦品种籽粒主要矿物质元素含量分布及其相关性分析. 中国农业科学, 2007, 40: 1871–1876
Zhang Y, Wang D S, Zhang Y, He Z H. Variation of major mineral elements concentration and their relationships in grain of Chinese wheat. Sci Agric Sin, 2007, 40: 1871–1876 (in Chinese with English abstract)
[6]Lei X G, Stahl C H. Biotechnological development of effective phytases for mineral nutrition and environmental protection. Appl Microbiol Biot, 2001, 57: 474–481
[7]Cosgrove D J. The chemistry and biochemistry of inositol polyphosphates. Pure Appl Chem, 1966, 16: 209–224
[8]Asada K, Tanaka K, Kasai Z .Formation of phytic acid in cereal grains. Ann New York Acad Sci, 1970, 165:801–814
[9]Liu Z H, Wang H Y, Wang X E, Zhang G P, Chen P D, LiuD J. Genotypic and spike positional difference in grain phytase activity, phytate, inorganic phosphorus, iron, and zinc contents in wheat. J Cereal Sci, 2006, 44: 212–219
[10]Schroder B, Breves G, Rodehutscord M. Mechanisms of intestinal phosphorus absorption and availability of dietary phosphorus in pigs. Dtsch Tieraerztl Wochenschr, 1996, 103: 209–214
[11]Brinch-Pedersen H, Sorensen L D, Holm P B. Engineering crop plants: getting a handle on phosphate. Trends Plant Sci, 2002, 7: 118–125
[12]Shamsuddin A M, Vucenik I. Mammary tumor inhibition by IP6: a review. Anticancer Res, 1999, 19: 36–71
[13]Jenab M, Thompson L U. Role of phytic acid in cancer and other diseases. In: Reddy N R, Sathe S K (eds.). Food Phytates. Boca Raton: The Chemical Rubber Company Press, 2002. pp 225–248
[14]Oh B C, Choi W C, Park S, Kim Y O, Oh T K. Biochemical properties and substrate specificities of alkaline and histidine acid phytases. Appl Microbiol Biot, 2004, 63: 362–372
[15]Chen R M, Xue G X, Chen P, Yao B, Yang W Z, Ma Q L, Fan Y L, Zhao Z Y, Mitchell C, Tarczynski, Shi J R. Transgenic maize plants expressing a fungal phytase gene. Transgenic Res, 2008, 17: 633-643
[16]王延锋, 郎志宏, 赵奎军, 黄大昉. 转基因作物的生态安全性问题及其对策. 生物技术通报, 2010, (7): 1–6
Wang Y, Lang Z H, Zhao K J, Huang D F. Ecological risks and countermeasures of genetically modified crops. Biotechnol Bull, 2010, (7): 1–6 (in Chinese)
[17]Zhang Y, Song Q, Yan J, Tang J, Zhao R, Zhang Y, He Z, Zou C, Ortiz-Monasterio I. Mineral element concentrations in grains of Chinese wheat cultivars. Euphytica, 2010, 174: 303–313
[18]Tiwari V K, Rawat N, Chhuneja P, Neelam K, Aggarwal R, Randhawa G S, Dhaliwal H S, Keller B, Singh K. Mapping of quantitative trait loci for grain iron and zinc concentration in diploid a genome wheat. J Hered, 2009, 100: 771–776
[19]Shi R L, Li H W, Tong Y P, et al. Identification of quantitative trait locus of zinc and phosphorus density in wheat (Triticum aestivum L.) grain. Plant soil, 2008, 306: 95–104
[20]Ram S, Verma A, Sharma S. Large variability exits in phytase levels among Indian wheat varieties and synthetic hexaploids. J Cereal Sci, 2010, 52: 486–490
[21]吴澎, 陈建省, 田纪春. 137个微核心种质资源植酸含量的聚类分析. 中国粮油学报, 2010, 25(10): 19–23
Wu P, Chen J S, Tian J C. Cluster analysis of phytic acid for 137 wheat micro-core collections. J Chin Cereals Oils Assoc, 2010, 25(10): 19–23 (in Chinese with English abstract)
[22]Barreto H J, Edmeades G O, Chapman S C, Crossa J. The alpha lattice design in plant breeding and agronomy: Generation and analysis. In: Edmeades, G. O, M Banziger, H R Mickelson, C B Peña-Valdivia (eds). Developing Drought- and Low N-Tolerant Maize. Proceedings of a Symposium. Mexico, D.F.: CIMMYT, 1997. pp 544–551
[23]Wyss M, Pasamontes L, Friedlein A, Rémy R, Tessier M, Kronenberger A, Middendorf A, Lehmann M, Schnoebelen L, Röthlisberger U, Kusznir E, Wahl G, Müller F, Lahm H W, Vogel K, van Loon A P. Biophysical characterization of fungal phytases (myo-inositol hexakisphosphate phosphohydrolases): molecular size, glycosylation pattern, and engineering of proteolytic resistance. Appl Environ Microb, 1999, 65: 359–366
[24]张勇, 吴振录, 张爱民, Maarten van Ginkel, 何中虎. CIMMYT小麦在中国春麦区的适应性分析. 中国农业科学, 2006, 39: 655–663
Zhang Y, Wu Z L, Zhang A M, Maarten van Ginkel, He Z H. Adaptation of CIMMYT wheat germplasm in China's spring wheat regions. Sci Agric Sin, 2006, 39: 655–663 (in Chinese with English abstract)
[25]Ward J H. Hierarchical grouping to optimize an objective function. J Am Stat Assoc, 1963, 58: 236–244
[26]Liu Z H, Wang H Y, Wang X E, Zhang G P, Chen P D, Liu D J. Phytase activity, phytate, iron, and zinc contents in wheat pearling fractions and their variation across production locations. J Cereal Sci, 2007, 45: 319–326
[27]Kim J C, Mullan B P, Selle P H, Pluske J R. Levels of total phosphorus, phytate phosphorus and phytase activity in three varieties of Western Australian wheats in response to growing region, growing season and storage. Aust J Agric Res, 2002, 53: 1361–1366 |