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Monohybrid Inheritance

Key definitions

  • Monohybrid inheritance concerns the inheritance of a single characteristic, such as plant height or flower color.
    • It involves the inheritance of the alleles of one gene.

Example (Mendel’s peas)

  • There is one gene for height in pea plants. The gene for plant height has two alleles: tall, T, and dwarf, t.
    • There are three possible genotypes for plant height:
      • TT = homozygous tall
      • Tt = heterozygous tall
      • tt homozygous dwarf

The Punnett square

  • Using our previous example, we could produce a Punnett square to show the combinations of gametes.
gametesTt
tTttt
TTTTt

The parental cross

  • In Figure 16.7.2,, it shows a cross between a homozygous tall plant, TT, and a homozygous dwarf plant, tt.
    • These represent the pure breeding plants that Mendel used in his crosses. This is called the parental cross.
    • The parental cross is the mating of two initial organisms to study how specific genes, traits, and alleles are passed down to their offspring.
  • As a result of meiosis, all the gametes from the tall plant contain the dominant allele T, and all the gametes from the dwarf plant contain the recessive allele t.
  • When fertilization occurs, the new plants receive one dominant allele and one recessive allele, making it heterozygous. They will also all have the genotype, Tt.
    • Their phenotype will be tall, because the allele T is dominant to the recessive allele t.
  • The first generation is known as the generation, and in this particular genetic cross, all the plants in the generation are heterozygous tall (Tt).

The Punnett square for this scenario

gametest
TTt

Crossing the generation

  • The plants are allowed to self-pollinate (review “The Punnett square” at the start of this page).
    • When meiosis occurs, half of the gametes of each plant will have the dominant allele T, and half will have the recessive allele t.
  • When fertilization occurs, there are three possible combinations of alleles in the , or second generation:
    • TT, homozygous tall
    • Tt, heterozygous tall
    • tt, homozygous dwarf.
  • Among this generation:
    • (or 25%) will be homozygous tall.
    • (or 50%) will be heterozygous tall.
    • will be homozygous dwarf.
  • Since the phenotypes of TT and Tt are the same, of the plants will be tall and will be dwarf.
    • This can also be written as 3 tall : 1 dwarf, .

A test cross (supplement)

  • The last two crosses mentioned show that the recessive allele is not expressed in the generation, but is expressed in the generation.
    • This means that we can’t immediately know the genotype of a tall plant only by looking at it, because plants with genotypes TT and Tt have the same phenotype.
    • We already know the genotype of a dwarf plant, because it can only be tt.
  • A test cross is used to determine the genotype of an individual to find out whether it is homozygous or heterozygous.

If unknown tall plant is homozygous

gametest
TTt
  • If our tall plant is homozygous (TT), then crossing it with a dwarf plant (tt) gives it all tall plants (Tt).

If unknown tall plant is heterozygous

gametest
ttt
TTt
  • If our tall plant is heterozygous (Tt), then crossing it with a dwarf plant (tt) will give half tall plants (Tt) and half dwarf plants (tt) in a ratio of .