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138. Clement JD, Constable GA, Stiller WN, Liu SM. Negative associations still exist between
yield and fibre quality in cotton breeding programs in Australia and USA. Field Crop Res.
2012;128:1-7.
139. Culp TW, Harrell DC. Breeding methods for improving yield and fiber quality of Upland
cotton ( Gossypium hirsutum L.). Crop Sci. 1973;13:686-9.
140. Scholl RL, Miller PA. Genetic association between yield and fiber strength in Upland cotton.
Crop Sci. 1976;16:780-3.
141. Meredith WR. Backcross breeding to increase fiber strength of cotton. Crop Sci.
1977;17:172-5.
142. Hague SS, Smith CW, Berger G, Clement J, Jones D. Variation in an extra-long staple upland
x medium staple Upland cotton F2 population. J Cotton Sci. 2011;15:265-70.
143. Smith CW, Hague S, Hequet E, Thaxton PS, Brown IN. Development of extra-long staple
Upland cotton. Crop Sci. 2008;48:1823-31.
144. Auld DL, Bechere E, Ethridge MD, Becker WD, Hequet EF, Cantrell RG. Registration of
TTU 202-1107-B and TTU 271-2155-C mutant germplasm lines of upland cotton with
improved fiber quality. Crop Sci. 2000;40:1835-6.
145. Culp TW, Harrell DC, Kerr T. Some genetic implications in the transfer of high fiber strength
genes to cotton. Crop Sci. 1979;19:481-4.
146. Jenkins JN, McCarty JC, Wu JX, Gutierrez O. Genetic variance components and genetic
effects among eleven diverse Upland cotton lines and their F2 hybrids. Euphytica.
2009;167:397-408.
147. Hinze LL, Campbell BT, Kohel RJ. Performance and combining ability in cotton ( Gossypium
hirsutum L.) populations with diverse parents. Euphytica. 2011;181:115-25.
148. Yuan YL, Zhang TZ, Guo WZ, Pan JJ, Kohel RJ. Diallel analysis of superior fiber quality
properties in selected Upland cottons. Acta Genet Sin. 2005;32:79-85.
149. Smith CW, Braden CA, Hequet EF. Generation means analysis of near-long-staple fiber
length in TAM 94 L-25 Upland cotton. Crop Sci. 2009;49:1638-46.
150. Wu J, McCarty JC, Jenkins JN, Meredith WR. Breeding potential of introgressions into
upland cotton: genetic efforts and heterosis. Plant Breed. 2010;129:526-32.
151. Quisenberry JE. Inheritance of fiber properties among crosses of Acala and high plains
cultivars of Upland cotton. Crop Sci. 1975;15:202-4.
152. May OL, Green CC. Genetic variation for fiber properties in elite Pee-Dee cotton populations.
Crop Sci. 1994;34:684-90.
153. Cheatham CL, Jenkins JN, McCarty Jr JC, Watson CE, Wu J. Genetic variances and
combining ability of crosses of American cultivars, Australian cultivars and wild cotton. J
Cotton Sci. 2003;7:16-22.
154. Meredith WR. Quantitative genetics. In: Kohel RJ, Lewis CF, editors. Cotton. Madison:
American Society of Agronomy; 1984. p. 131-50.
155. Stiller W, Reid P, Constable G. Lessons learnt in developing transgenic cotton ( Gossypium
hirsutum ) varieties. In: Mercer CF, editor. Breeding for success: diversity in action. Pro-
ceedings of the 13th Australasian plant breeding conference; 2006 April 18-21; Christchurch;
2006. p. 56-61.
156. Iyengar RLN, Gupta AK. Some functions involving fiber properties for estimating yarn
tenacity. Text Res J. 1974;44:492-4.
157. Subramanian TA, Ganesh K, Bandyopadhyay S. A generalized equation for predicting the lea
strength of ring-spun cotton yarns. J Text Inst. 1973;65:307-13.
158. Suh MW, Koo HJ. Prediction of yarn tensile properties based on HVI testing of 36 U.-
S. Upland cottons. In: Dugger P, Richter D, editors. Proceedings of Beltwide cotton confer-
ence. Jan 5-9; San Diego: National Cotton Council; 1998. p. 786-90.
159. Krifa M. Fiber length distribution in cotton processing: dominant features and interaction
effects. Text Res J. 2006;76:426-35.
160. Hequet E, Abidi N, Gannaway JR. Relationship between HVI, AFIS, and yarn tensile
properties. In: World cotton research conference-4. Sept 10-14. Lubbock; 2007. Available
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