The recessive allele of a gene causes cystic fibrosis. For this gene among Caucasians, p = 0.98. If a Caucasian population is in Hardy-Weinberg equilibrium with respect to this gene, what proportion of babies is born homozygous recessive and therefore suffers cystic fibrosis?

Question

Quizplus · Accepted Answer

In Hardy-Weinberg equilibrium, the frequency of homozygous recessive individuals is q². Since p = 0.98, q = 1 - p = 0.02. Therefore, q² = (0.02)² = 0.0004.

The Recessive Allele of a Gene Causes Cystic Fibrosis