QUESTION IMAGE
Question
unattached earlobes are dominant to attached earlobes. cleft chin is dominant to no cleft. parents that are heterozygous for both traits are crossed. determine the ratio of offspring with the described trait to the total number of offspring: unattached earlobes and cleft chin \boxed{\quad}:\boxed{\quad} unattached earlobes and no cleft \boxed{\quad}:\boxed{\quad} attached earlobes and cleft chin \boxed{\quad}:\boxed{\quad} attached earlobes and no cleft \boxed{\quad}:\boxed{\quad} done \checkmark \
Step1: Fill in the Punnett Square
First, we need to fill in the missing cells (1, 2, 3, 4, 5) in the Punnett square. Let's denote the alleles for earlobes: \( E \) (unattached, dominant), \( e \) (attached, recessive). For chin: \( A \) (cleft, dominant), \( a \) (no cleft, recessive). The parents are heterozygous for both traits, so their genotypes are \( EeAa \), and the gametes are \( EA, Ea, eA, ea \).
- Cell 1 (EA × eA): Genotype is \( EeAA \) (since \( E \times e = Ee \), \( A \times A = AA \))
- Cell 2 (Ea × EA): Genotype is \( EEAa \) ( \( E \times E = EE \), \( a \times A = Aa \))
- Cell 3 (Ea × Ea): Genotype is \( EEaa \) ( \( E \times E = EE \), \( a \times a = aa \))
- Cell 4 (eA × eA): Genotype is \( eeAA \) ( \( e \times e = ee \), \( A \times A = AA \))
- Cell 5 (ea × ea): Genotype is \( eea a \) ( \( e \times e = ee \), \( a \times a = aa \))
Now the complete Punnett square (16 cells) has the following genotypes:
| EA | Ea | eA | ea | |
|---|---|---|---|---|
| Ea | EEAa (2) | EEaa (3) | EeAa | Eeaa |
| eA | EeAA | EeAa | eeAA (4) | eeAa |
| ea | EeAa | Eeaa | eeAa | eea a (5) |
Step2: Determine Phenotypes
Now we determine the phenotype for each genotype:
- Unattached earlobes (E_) and cleft chin (A_): Genotypes with at least one \( E \) and at least one \( A \). Let's count these:
- EEAA, EEAa, EeAA, EeAa (from EA row: 4 cells), EEAa, EEaa (no, EEaa has aa), EeAa, Eeaa (no, Eeaa has aa) (wait, no, let's list all 16 cells:
- EEAA: E_, A_ ✔️
- EEAa: E_, A_ ✔️
- EeAA: E_, A_ ✔️
- EeAa: E_, A_ ✔️
- EEAa (2): E_, A_ ✔️
- EEaa (3): E_, aa ❌
- EeAa: E_, A_ ✔️
- Eeaa: E_, aa ❌
- EeAA: E_, A_ ✔️
- EeAa: E_, A_ ✔️
- eeAA (4): ee, A_ ❌ (attached earlobes)
- eeAa: ee, A_ ❌
- EeAa: E_, A_ ✔️
- Eeaa: E_, aa ❌
- eeAa: ee, A_ ❌
- eea a (5): ee, aa ❌
Wait, let's count properly. Let's list all 16 cells:
- EEAA: E_, A_ ✔️
- EEAa: E_, A_ ✔️
- EeAA: E_, A_ ✔️
- EeAa: E_, A_ ✔️
- EEAa: E_, A_ ✔️
- EEaa: E_, aa ❌
- EeAa: E_, A_ ✔️
- Eeaa: E_, aa ❌
- EeAA: E_, A_ ✔️
- EeAa: E_, A_ ✔️
- eeAA: ee, A_ ❌
- eeAa: ee, A_ ❌
- EeAa: E_, A_ ✔️
- Eeaa: E_, aa ❌
- eeAa: ee, A_ ❌
- eea a: ee, aa ❌
Now count the ✔️ (unattached, cleft): Let's count again. Wait, maybe a better way: For a dihybrid cross (EeAa × EeAa), the phenotypic ratio for dominant-dominant (E_A_), dominant-recessive (E_aa), recessive-dominant (eeA_), recessive-recessive (eeaa) is 9:3:3:1. Wait, that's the standard dihybrid ratio. Let's verify with our Punnett square.
In a dihybrid cross (two traits, both heterozygous parents), the phenotypic ratio is 9 (E_A_): 3 (E_aa): 3 (eeA_): 1 (eeaa). Let's check our Punnett square:
- E_A_ (unattached, cleft): Let's count the number of cells with at least one E and at least one A. From the standard ratio, it's 9. Let's count our filled square:
Looking at each cell:
Row EA: 4 cells (EEAA, EEAa, EeAA, EeAa) – all E_A_ ✔️
Row Ea: First two cells (EEAa, EEAa) – wait no, row Ea: EA column (EEAa) – E_A_ ✔️, Ea column (EEaa) – E_aa ❌, eA column (EeAa) – E_A_ ✔️, ea column (Eeaa) – E_aa ❌. So row Ea: 2 cells (EEAa, EeAa) ✔️
Row eA: EA column (EeAA) – E_A_ ✔️, Ea column (EeAa) – E_A_ ✔️, eA column (eeAA) – eeA_ ❌, ea column (eeAa) – eeA_ ❌. So row eA: 2 cells (EeAA, EeAa) ✔️
Row ea: EA column (EeAa) – E_A_ ✔️, Ea column (Eeaa) – E_aa ❌, eA column (eeAa) – eeA_ ❌, ea column (eeaa) – eeaa ❌. So…
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- Unattached earlobes and cleft chin: \( \boldsymbol{9:16} \)
- Unattached earlobes and no cleft: \( \boldsymbol{3:16} \)
- Attached earlobes and cleft chin: \( \boldsymbol{3:16} \)
- Attached earlobes and no cleft: \( \boldsymbol{1:16} \)