Answer:
A quarter (25%) of the individuals that carry at least one s allele are homozygotes.
Explanation:
Knowing the frequency of s, we can find the frequency of both alleles, because:
[tex]p+q= 1\\p= frequencyS\\q= frecuencys\\\\So, if q=0.4 \\1-q=p\\1-0.4= 0.6= p\\\\p= 0.6 and q=0.4\\[/tex]
Now, if the population of guppies is at Hardy-Weinberg equilibrium, we can find how many heterozygotes and homozygotes are, like this:
[tex]p^{2}+2pq+q^{2}=1\\[/tex]
We know that:
[tex]p^{2}= frequencySS\\ 2pq= frequencySs\\q^{2}= frequencyss\\[/tex]
So, we need to know what is the frequency of guppies Ss (2pq) and ss (s2):
[tex]2pq= 2 (0.6)*(0.4)= 0.48\\q^{2}= (0.4)^{2}= 0.16[/tex]
Finally, to find the fraction of homozygotes (ss) of the individuals that carry at least one s allele, we need to divide the frecuency of homozygotes ss into the frequency of heterozygotes Ss:[tex]\frac{2pq}{q^{2} }=\frac{0.16}{0.64}= 0.25[/tex]
0.25 or 25% of the guppies carring the allele s are homozygotes.
