Related Experiment Video
Updated: Jan 11, 2026

Determination of Self- and Inter-incompatibility Relationships in Apricot Combining Hand-Pollination, Microscopy and Genetic Analyses
Published on: June 16, 2020
Fruit Quality Traits and Self- (In)compatibility Allele Status of Some Apricot (Prunus armeniaca L.) Seedlings
Derya Taşdemir Karaoğlan1, Ercan Yıldız2, Mehmet Yaman2
1Department of Horticulture Graduate School of Natural and Applied Sciences, Erciyes University Kayseri Türkiye.
Abstract:
Cross-breeding in apricot (Prunus armeniaca L.) is widely used to increase genetic diversity and develop new cultivars with desirable characteristics. In the present study, the morphological traits, chemical properties, and self-compatibility status of 96 apricot seedlings from controlled hybridization and the two reference cultivars (Hacıhaliloğlu and Kabaaşı) were examined. The morphological traits' coefficient of variation (CV) ranged from 3.22% to 55.83%. Principal component analysis (PCA) revealed that the first three components accounted for 63.8% of the total variance. Traits important for table apricots, such as fruit weight, fruit width, fruit length, fruit height, and fruit flesh/pit ratio, showed a high contribution in PC1. While L*, b*, and chroma values showed the highest effect on PC2, dried apricot-related characteristics such as soluble solids content (SSC), pH, fruit shape, fruit firmness, and seed weight showed the highest effect on PC3. As a result of the heatmap hierarchical clustering analysis, seedlings and reference cultivars were divided into two main groups with different subsets. In total, 76 out of 96 seedlings showed self-compatible alleles. Seedlings 6, 3, 8, and 39, having high fruit weight, an important character in table apricots, and seedlings 34, 35, 47, and 68, showing high SSC, an important feature in dried apricots, were determined to be self-compatible. Although seedling 3 was self-incompatible, it attracted attention for its red fruit color and weight. The findings provide valuable information for apricot breeding programs. These findings will shed light on studies on developing new apricot varieties with self-compatibility and high fruit quality.
More Related Videos
07:03Establishing Pollination Requirements in Japanese Plum by Phenological Monitoring, Hand Pollinations, Fluorescence Microscopy and Molecular Genotyping
Published on: November 9, 2020
07:12Determination of Self-Incompatibility and Inter-Incompatibility Relationships in Citrus Using Manual Pollination, Microscopy, and S-Genotype Analyses
Published on: June 30, 2023
Related Concept Videos
Dihybrid Crosses
Monohybrid Crosses
Trihybrid Crosses
Some of Mendel’s crosses examined three pairs of contrasting characteristics. Such a cross is called a trihybrid cross. A trihybrid cross is a combination of three individual monohybrid crosses. For example, plant height (tall vs. short), seed shape (round vs. wrinkled), and seed color (yellow vs. green).
The F1 generation plants of a trihybrid cross are heterozygous for all three traits and produce eight gametes. Upon self-fertilization, these gametes have an equal...
Test Cross
Incomplete Dominance
Law of Independent Assortment