Biomedical Engineering Reference
In-Depth Information
119. Zhang Z, Rong J, Waghmare VN, Chee PW, May OL, Wright RJ, et al. QTL alleles for
improved fiber quality from a wild Hawaiian cotton, Gossypium tomentosum . Theor Appl
Genet. 2011;123:1075-88.
120. Lacape JM, Claverie M, Jacobs J, Llewellyn D, Arioli T, Derycker R, et al. Reconciliation of
genetic and genomic approaches to cotton fiber quality improvement. In: World cotton
research conference-4. Sept 10-14. Lubbock; 2007. Available at http://www.icac.org/meet
ings/wcrc/wcrc4/presentations/start.htm . Last accessed 26 June 2013.
121. Chen X, Guo W, Liu B, Zhang Y, Song X, Cheng Y, Zhang L, Zhang T. Molecular
mechanisms of fiber differential development between G. barbadense and G. hirsutum
revealed by genetical genomics. PLOS One. 2012;7:e30056. doi: 10.1371/journal.pone.
0030056 . Epub 2012 Jan 11.
122. Chen ZJ, Lee JJ, Woodward AW, Han Z, Ha M, Lackey E. Functional genomic analysis of
early events in cotton fiber development. In: World cotton research conference-4. Sept 10-14.
Lubbock; 2007. Available at http://www.icac.org/meetings/wcrc/wcrc4/presentations/start.
htm . Last accessed 26 June 2013.
123. Kumar S, Banks TW, Cloutier S. SNP discovery through next-generation sequencing and its
applications. Int J Plant Genomics. 2012;2012:831460. doi: 10.1155/2012/831460 . Epub
2012 Nov 22.
124. Elshire RJ, Glaubitz JC, Sun Q, Poland JA, Kawamoto K, Buckler ES, Mitchell SE. A robust,
simple genotyping-by-sequencing (GBS) approach for high diversity species. PLoS One.
2011;6:e19379. doi: 10.1371/journal.pone.0019379 . Epub 2011 May 4.
125. Nakaya A, Isobe SN. Will genomic selection be a practical method for plant breeding. Ann
Bot. 2012;110:1303-16.
126. Rahman M, Zafar Y, Paterson AH. Gossypium DNA markers: types, numbers and uses. In:
Paterson AH, editor. Genetics and genomics of cotton. New York: Springer; 2009. p. 101-39.
127. Chen X, Guo W, Zhang T. Cotton omics in China. Plant Omics J. 2011;4:278-87.
128. Mishra GP, Tiwari SK, Singh R, Singh SB. Marker assisted selection for improvement of
quality traits in crop plants. In: Singh RK, Singh R, GuoYou Y, Selvi A, Rao GP, editors.
Molecular plant breeding: principle, method and application. Houston: Studium Press LLC;
2010. p. 343-65.
129. Miedaner T, Korzun V. Marker-assisted selection for disease resistance in wheat and barley
breeding. Phytopathology. 2012;102:560-6.
130. Gao S, Martinez C, Skinner DJ, Krivanek AF, Crouch JH, Xu Y. Development of a seed
DNA-based genotyping system for marker-assisted selection in maize. Mol Breed.
2008;22:477-94.
131. Byers RL, Harker DB, Yourstone SM, Maughan PJ, Udall JA. Development and mapping of
SNP assays in allotetraploid cotton. Theor Appl Genet. 2012;124:1201-14.
132. Broeders SRM, De Keersmaecker SCJ, Roosens NHC. How to deal with the upcoming
challenges in GMO detection in food and feed. J Biomed Biotechnol. 2012;12:402418.
doi: 10.1155/2012/402418 . Epub 2012 Oct 21.
133. Lee J. Cotton. In: Fehr WR, editor. Principles of cultivar development, Crop species, vol.
2. Ames: Iowa State University; 1987. p. 126-60.
134. Calhoun S, Bowman DT. Techniques for development of new cultivars. In: Smith CW,
Cothren JT, editors. Cotton: origin, history, technology and production. New York: Wiley;
1999. p. 361-413.
135. Campbell BT, Bowman DT, Weaver DB. Heterotic effects in topcrosses of modern and
obsolete cotton cultivars. Crop Sci. 2008;48:593-600.
136. Bowman DT. Attributes of public and private cotton breeding programs. J Cotton Sci.
2000;4:130-6.
137. Miller PA, Rawlings JO. Breakup of initial linkage blocks through intermating in a cotton
breeding population. Crop Sci. 1967;7:199-204.
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