Genetic analysis of fruit shape traits at different maturation stages in sponge gourd.

被引:20
作者
Zhang S. [1 ]
Hu J. [1 ]
Zhang C.F. [1 ]
Guan Y.J. [1 ]
Zhang Y. [1 ]
机构
[1] Department of Agronomy, Zhejiang University, Hangzhou
基金
中国国家自然科学基金;
关键词
Fruit length; Fruit perimeter; Genetic effects; Genetic variance; Roem; S63; S32;
D O I
10.1631/jzus.2007.B0338
中图分类号
学科分类号
摘要
The fruit shape is important quantitative trait closely related to the fruit quality. However, the genetic model of fruit shapes has not been proposed. Therefore, in the present study, analysis of genetic effects for fruit shape traits (fruit length and fruit perimeter) in sponge gourd was conducted by employing a developmental genetic model including fruit direct effects and maternal effects. Analysis approaches of unconditional and conditional variances were applied to evaluate the genetic behavior of fruit shape traits at economical and physiological maturation times. The results of variance analysis indicated that fruit length and fruit perimeter were simultaneously affected by fruit direct genetic effects and maternal effects. Fruit direct genetic effects were relatively more important for fruit shape traits at whole developmental period. The gene expression was most active at the economical maturation stage (1 approximately 12 d after flowering) for two shape traits, and the activation of gene was mostly due to direct dominance effects at physiological maturation stage (13 approximately 60 d after flowering). The coefficients due to different genetic effects, as well as the phenotypic correlation coefficients, varied significantly between fruit shape traits themselves at various maturation stages. The results showed that it was relatively easy to improve fruit shape traits for industrial purpose by carefully selecting the parents at economical maturation stage instead of that at physiological maturation stage.
引用
收藏
页码:338 / 344
页数:6
相关论文
共 51 条
[1]  
Beyer M.(2002)Analysing fruit shape in sweet cherry ( Scientia Horticulturae 96 139-150
[2]  
Hahn R.(1997) L.) Australian Journal of Agricultural Research 48 605-614
[3]  
Peschel S.(1998)Genetic analysis of variation for grain yield and protein concentration in two wheat crosses Scientia Horticulturae 75 11-25
[4]  
Harz M.(1974)Components of the genetic variance and genetic correlations between traits in Mango Biomertika 61 1-15
[5]  
Knoche M.(1992)The jackknife—a review Australian Journal of Agricultural Research 43 1051-1066
[6]  
Fabrizius M.A.(2005)Sodium chloride and soil texture interactions in irrigated field grown sultana grapevines. I. Yield and fruit quality Scientia Horticulturae 105 177-195
[7]  
Cooper M.(2001)Growth, yield, fruit quality and nutrient uptake of hydroponically cultivated zucchini squash as affected by irrigation systems and growing seasons Acta Botanica Sinica 43 603-609
[8]  
Basford K.E.(2002)Developmental genetic analysis of brown rice weight under different environmental conditions in indica rice Genesis 33 185-190
[9]  
Lavi U.(2006)Developmental behavior of gene expression for brown rice thickness under different environments Plant Breeding 125 277-280
[10]  
Tomer E.(1997)Analysis of generation means and components of variance for parthenocarpy in cucumber ( Scientia Horticulturae 70 281-292