Question

Consider a locus with two alleles, A1 and A2. Mutation happens at this locus, but in a way such that A1 mutates to A2 with probability u and A2 mutates to A1 with probability v. If u = v (and neither of them = 0), the equilibrium frequency of the A1 is expected to be [Hint: set u and v to specific numbers that are equal to see what happens]:

Answer 1

The equilibrium frequency of the A1 (p = v/(u+v)) is expected to be equal to the equilibrium frequency of the A2 (q = 1 - p)

Step-by-step explanation:

Available data:

• Locus with two alleles, A1 and A2

• The probability of A1 mutating to A2 is P(A1->A2)=u

• The probability of A2 mutating to A1 is P(A2->A1)=v

• V=U

• nor V or U is equal to cero

• p is the frequency for A1 and q is the frequency of A2.

The equilibrium frequency of the A1 is expected to be p = v/(u+v)

The equilibrium frequency of the A2 is expected to be q=1-p=1 - (v/(u+v))

For example, if V = U = 0.005, then

• p = 0.005/(0.005+0.005) = 0.005/0.01 = 0.5

• q = 1-p = 1-0.5 = 0.5

The equilibrium frequency of A1 = The equilibrium frequency of A2. The rate of mutation is equal for both alleles.