Combining ability and heterosis in plant improvement

B. Temesgen
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引用次数: 14

Abstract

Information on combining ability and heterosis of parents and crossings is crucial in breeding efforts. Genetic variety is crucial to the effectiveness of yield improvement efforts because it helps to broaden gene pools in any given crop population. The genotype's ability to pass the intended character to the offspring is referred to as combining ability. As a result, information on combining ability is required to determine the crossing pairs in the production of hybrid varieties. Heterosis is the expression of an F1 hybrid's dominance over its parents in a given feature, as measured not by the trait's absolute value, but by its practical use. To put it another way, heterosis is defined as an increase in the character value of F1 hybrids when compared to the average value of both parents. A plant breeder's ultimate goal is to achieve desirable heterosis (hybrid vigor). In a variety of crop species, heterosis has been widely employed to boost output and extend the adaptability of hybrid types. A crucial requirement for discovering crosses with significant levels of exploitable heterosis is knowledge of the quantity of heterosis in different cross combinations. Any crop improvement program's success is contingent on the presence of a significant level of genetic diversity and heritability. The lack of a broad genetic foundation is the most significant constraint to crop improvement and a major bottleneck in breeding operations. Heterosis is a critical factor in hybrid generation, particularly for traits driven by non-additive gene activity. To get the most out of heterosis for hybrid cultivar production, germplasm must be divided into distinct heterotic groups. Similarly, knowledge on genetic diversity is critical for hybrid breeding and population improvement initiatives because it allows them to analyze genetic diversity, characterize germplasm, and categorize it into different heterotic groupings. In general, general combining ability is used to detect a line's average performance in a hybrid combination, whereas specific combining ability is used to find circumstances where definite combinations perform better or worse than expected based on the mean performance of the lines involved.
植物改良中的配合力与杂种优势
亲本和杂交组合的配合力和杂种优势信息对育种工作至关重要。遗传多样性对提高产量的有效性至关重要,因为它有助于扩大任何特定作物群体的基因库。基因型将预期性状传递给后代的能力被称为配合力。因此,在杂交品种生产中,需要配合力信息来确定杂交对。杂种优势是F1杂种在某一特定特征上对其亲本的优势表现,不是通过该特征的绝对值来衡量,而是通过其实际用途来衡量。换句话说,杂种优势被定义为F1杂交种的性状值相对于双亲的平均值的增加。植物育种者的最终目标是获得理想的杂种优势(杂种优势)。在各种作物品种中,杂种优势已被广泛应用于提高产量和扩大杂交种的适应性。发现具有显著可利用杂种优势的杂交组合的一个关键要求是了解不同杂交组合的杂种优势数量。任何作物改良计划的成功都取决于遗传多样性和遗传能力的显著水平。缺乏广泛的遗传基础是作物改良的最大制约因素,也是育种工作的主要瓶颈。杂种优势是杂种产生的关键因素,特别是对于由非加性基因活性驱动的性状。为了在杂交品种生产中充分发挥杂种优势,必须将种质划分为不同的杂种优势群。同样,遗传多样性的知识对于杂交育种和群体改良计划至关重要,因为它使他们能够分析遗传多样性,表征种质,并将其分类为不同的杂种优势群。一般来说,一般配合力用于检测杂交组合中某一品系的平均性能,而特定配合力用于根据相关品系的平均性能确定特定组合的表现优于或低于预期的情况。
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