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  2. Dihybrid cross - Wikipedia

    en.wikipedia.org/wiki/Dihybrid_cross

    This cross results in the expected phenotypic ratio of 9:3:3:1. Another example is listed in the table below and illustrates the process of a dihybrid cross between pea plants with multiple traits and their phenotypic ratio patterns. Dihybrid crosses are easily visualized using a 4 x 4 Punnett square.

  3. Test cross - Wikipedia

    en.wikipedia.org/wiki/Test_cross

    When conducting a dihybrid test cross, two dominant phenotypic characteristics are selected and crossed with parents displaying double recessive traits. The phenotypic characteristics of the F1 generation are then analyzed. In such a test cross, if the individual being tested is heterozygous, a phenotypic ratio of 1:1:1:1 is typically observed. [7]

  4. Punnett square - Wikipedia

    en.wikipedia.org/wiki/Punnett_square

    The forked-line method (also known as the tree method and the branching system) can also solve dihybrid and multi-hybrid crosses. A problem is converted to a series of monohybrid crosses, and the results are combined in a tree. However, a tree produces the same result as a Punnett square in less time and with more clarity.

  5. Classical genetics - Wikipedia

    en.wikipedia.org/wiki/Classical_genetics

    The plants of the F1 generation resulting from this hybrid cross were all heterozygous round and yellow seeds. Classical genetics is a hallmark of the start of great discovery in biology, and has led to increased understanding of multiple important components of molecular genetics, human genetics, medical genetics, and much more.

  6. Monohybrid cross - Wikipedia

    en.wikipedia.org/wiki/Monohybrid_cross

    A monohybrid cross is a cross between two organisms with different variations at one genetic locus of interest. [ 1 ] [ 2 ] The character(s) being studied in a monohybrid cross are governed by two or multiple variations for a single location of a gene.

  7. Experiments on Plant Hybridization - Wikipedia

    en.wikipedia.org/wiki/Experiments_on_Plant...

    The effect is that Mendel was unlikely to have encountered genetic linkage. In any case, he did not report dihybrid experiments on either of these pairs, and only reported on the unlinked pairs, and he always found the ratio to be 9:3:3:1. [6]

  8. F1 hybrid - Wikipedia

    en.wikipedia.org/wiki/F1_hybrid

    In his cross-pollination experiments involving two true-breeding, or homozygous, parents, Mendel found that the resulting F1 generation was heterozygous and consistent. The offspring showed a combination of the phenotypes from each parent that were genetically dominant. Mendel's discoveries involving the F1 and F2 generations laid the ...

  9. Heterosis - Wikipedia

    en.wikipedia.org/wiki/Heterosis

    Crosses between inbreds from different heterotic groups result in vigorous F1 hybrids with significantly more heterosis than F1 hybrids from inbreds within the same heterotic group or pattern. Heterotic groups are created by plant breeders to classify inbred lines, and can be progressively improved by reciprocal recurrent selection.