QUESTION IMAGE
Question
- cross a heterozygous tall plant with a short plant.use a punnett square to show your work. (no credit given without punnett square.)
a. what are the genotypic ratios?
b. what are the phenotypic ratios?
insert a picture of your work here
- cross a homozygous inflated pod shape with a heterozygous pod shape.
a. what are the genotypic ratios?
b. what are the phenotypic ratios?
insert a picture of your work here
- if a heterozygous round seeded plant is crossed with another plant and the ratio of offspring is 3:1 round:wrinkled seeds. what is the genotype of the unknown parent plant? use a punnett square to show your work. (no credit given without punnett square.
insert a picture of your work here
8.
Punnett Square:
Let \( T \) represent the allele for tall (dominant) and \( t \) represent the allele for short (recessive). The heterozygous tall plant has a genotype of \( Tt \), and the short plant has a genotype of \( tt \).
| \( T \) | \( t \) | |
|---|---|---|
| \( t \) | \( Tt \) | \( tt \) |
a. Genotypic Ratios:
Step1: Count Genotypes
Count the number of each genotype (\( Tt \) and \( tt \)). There are 2 \( Tt \) and 2 \( tt \).
The genotypic ratio is \( Tt:tt = 1:1 \)
b. Phenotypic Ratios:
Step1: Determine Phenotypes
\( Tt \) is tall (dominant phenotype) and \( tt \) is short (recessive phenotype).
Count the number of each phenotype. There are 2 tall (\( Tt \)) and 2 short (\( tt \)).
The phenotypic ratio is \( \text{Tall}:\text{Short}=1:1 \)
9.
Let \( I \) represent the allele for inflated pod (dominant) and \( i \) represent the allele for constricted pod (recessive). The homozygous inflated - pod plant has a genotype of \( II \), and the heterozygous pod - shape plant has a genotype of \( Ii \).
| \( I \) | \( I \) | |
|---|---|---|
| \( i \) | \( Ii \) | \( Ii \) |
a. Genotypic Ratios:
Step1: Count Genotypes
Count the number of \( II \) and \( Ii \). There are 2 \( II \) and 2 \( Ii \).
The genotypic ratio is \( II:Ii = 1:1 \)
b. Phenotypic Ratios:
Step1: Determine Phenotypes
Both \( II \) and \( Ii \) show the inflated - pod (dominant) phenotype.
The phenotypic ratio is \( \text{Inflated}:\text{Constricted}=1:0 \) (all inflated)
10.
Let \( R \) represent the allele for round seeds (dominant) and \( r \) represent the allele for wrinkled seeds (recessive). The heterozygous round - seeded plant has a genotype of \( Rr \).
We know that the offspring ratio is \( 3:1\ (\text{round}:\text{wrinkled}) \). Using the Punnett square principle (\( Rr\times Rr \)):
| \( R \) | \( r \) | |
|---|---|---|
| \( r \) | \( Rr \) | \( rr \) |
Step1: Analyze Offspring Ratios
In a \( Rr\times Rr \) cross:
- Genotypes: \( RR:Rr:rr = 1:2:1 \)
- Phenotypes: \( \text{Round}(\text{RR}+\text{Rr}):\text{Wrinkled}(rr)=3:1 \)
The genotype of the unknown parent plant is \( Rr \)
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s:
8.
a. \( Tt:tt = 1:1 \)
b. \( \text{Tall}:\text{Short}=1:1 \)
9.
a. \( II:Ii = 1:1 \)
b. \( \text{Inflated}:\text{Constricted}=1:0 \)
- \( Rr \)