QUESTION IMAGE
Question
- assume that one of squidwards sons, who is heterozygous for the light blue body color, married a girl that was also heterozygous. create a punnett square to show the possibilities that would result if they had children.
a. list the genotypes with the phenotypes of the possible offspring.
b. what are the chances of a child with light blue skin?
c. what are the chances of a child with light green skin?
Part a: Punnett Square and Genotype-Phenotype List
Step 1: Define Alleles
Let's assume the allele for light blue body color is \( B \) (dominant) and for light green is \( b \) (recessive). Both parents are heterozygous, so their genotype is \( Bb \).
Step 2: Set Up Punnett Square
| \( B \) | \( b \) | |
|---|---|---|
| \( b \) | \( Bb \) | \( bb \) |
Step 3: Determine Genotypes and Phenotypes
- \( BB \): Homozygous dominant, phenotype = light blue (since \( B \) is dominant for blue)
- \( Bb \): Heterozygous, phenotype = light blue (dominant allele \( B \) expressed)
- \( bb \): Homozygous recessive, phenotype = light green (recessive allele \( b \) expressed)
Step 4: List Genotypes and Phenotypes
- \( BB \): Light blue
- \( Bb \): Light blue
- \( bb \): Light green
Part b: Chances of Light Blue Skin
Step 1: Count Light Blue Genotypes
From the Punnett square, \( BB \) and \( Bb \) are light blue. There are 3 such genotypes out of 4 total.
Step 2: Calculate Probability
Probability \( = \frac{\text{Number of light blue genotypes}}{\text{Total genotypes}} = \frac{3}{4} = 75\% \)
Part c: Chances of Light Green Skin
Step 1: Count Light Green Genotypes
The \( bb \) genotype is light green. There is 1 such genotype out of 4 total.
Step 2: Calculate Probability
Probability \( = \frac{\text{Number of light green genotypes}}{\text{Total genotypes}} = \frac{1}{4} = 25\% \)
Final Answers
a. Genotypes and Phenotypes:
\( BB \) - Light blue; \( Bb \) - Light blue; \( bb \) - Light green
b. Chances of light blue skin: \( \boldsymbol{\frac{3}{4}} \) (or 75%)
c. Chances of light green skin: \( \boldsymbol{\frac{1}{4}} \) (or 25%)
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Part a: Punnett Square and Genotype-Phenotype List
Step 1: Define Alleles
Let's assume the allele for light blue body color is \( B \) (dominant) and for light green is \( b \) (recessive). Both parents are heterozygous, so their genotype is \( Bb \).
Step 2: Set Up Punnett Square
| \( B \) | \( b \) | |
|---|---|---|
| \( b \) | \( Bb \) | \( bb \) |
Step 3: Determine Genotypes and Phenotypes
- \( BB \): Homozygous dominant, phenotype = light blue (since \( B \) is dominant for blue)
- \( Bb \): Heterozygous, phenotype = light blue (dominant allele \( B \) expressed)
- \( bb \): Homozygous recessive, phenotype = light green (recessive allele \( b \) expressed)
Step 4: List Genotypes and Phenotypes
- \( BB \): Light blue
- \( Bb \): Light blue
- \( bb \): Light green
Part b: Chances of Light Blue Skin
Step 1: Count Light Blue Genotypes
From the Punnett square, \( BB \) and \( Bb \) are light blue. There are 3 such genotypes out of 4 total.
Step 2: Calculate Probability
Probability \( = \frac{\text{Number of light blue genotypes}}{\text{Total genotypes}} = \frac{3}{4} = 75\% \)
Part c: Chances of Light Green Skin
Step 1: Count Light Green Genotypes
The \( bb \) genotype is light green. There is 1 such genotype out of 4 total.
Step 2: Calculate Probability
Probability \( = \frac{\text{Number of light green genotypes}}{\text{Total genotypes}} = \frac{1}{4} = 25\% \)
Final Answers
a. Genotypes and Phenotypes:
\( BB \) - Light blue; \( Bb \) - Light blue; \( bb \) - Light green
b. Chances of light blue skin: \( \boldsymbol{\frac{3}{4}} \) (or 75%)
c. Chances of light green skin: \( \boldsymbol{\frac{1}{4}} \) (or 25%)