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In a Hardy-Weinberg population with two alleles, A and a, that are in equilibrium, the frequency of allele a is 0.1. What is the frequency of individuals with AA genotype?
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In a Hardy-Weinberg population with two alleles, A and a, that are in equilibrium, the frequency of allele a is 0.1. What is the frequency of individuals with AA genotype?

User Mattforni
by
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1 Answer

5 votes

Answer:

Frequency of individuals with AA genotype is
0.81

Step-by-step explanation:

As per Hardy-Weinberg equation, frequency of allele "a" is
0.1

Which means that
q=1

where "q" denotes frequency of allele "a"

As per I equation of Hardy-Weinberg -


p+ q =1\\

where "p" denotes frequency of allele "A"

Substituting the value of "q" we get ,


p+0.1=1\\p=1-0.1\\p=0.9

Frequency of individuals with AA genotype is represented as
p^(2) which is equal to


0.9^2\\= 0.81

Frequency of individuals with AA genotype is
0.81

User Marcopah
by
6.7k points
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