Answer:
16%
Explanation:
If the population is in Hardy Weinberg equilibrium:
p + q = 1
p² + 2pq + q² = 1
where, p= frequency of dominant allele
q= frequency of recessive allele
p² = frequency of homozygous dominant population
q² = frequency of homozygous recessive population
2pq= frequency of heterozygous dominant population
Given, q²= 72/200 = 0.36
q= √0.36 = 0.6
Hence, p = 1-q
= 0.4
p² = 0.16 = 16%
Hence, 16% of population will be homozygous dominant.
