CAMPBELL'S BIOLOGY 12E PERUSALL
CAMPBELL'S BIOLOGY 12E PERUSALL
12th Edition
ISBN: 9780135858080
Author: Urry
Publisher: PERUSALL
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Chapter 15.2, Problem 3CC

MAKE CONNECTIONS Ø Consider what you learned about dominant and recessive alleles in Concept 14.1. If a disorder were caused by a dominant X-Iinked allele, how would the inheritance pattern differ from what we see for recessive X-Iinked disorders?

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EXAMPLE PROBLEM Two black female mice are crossed with a brown male. In several litters, female I produced 9 black offspring and 7 brown; female II produced 57 black offspring. What deductions can you make about the inheritance of black and brown coat color in mice? What are the genotypes of the parents? Dominance and recessive describe which of two possible phenotypes are exhibited when two different alleles occur in the same individual.
Could the trait presented in the pedigree shown be caused by an X-linked recessive allele? Why or why not? 11 ||| IV ■ 5 6 Yes, with individual 2 of generation I being heterozygous. No, the offspring of 7 and 8 contradict an X-linked recessive inheritance. No, the offspring of 3 and 4 of generation II contradict an X-linked recessive inheritance. No, the offspring of 1 and 2 of generation I contradict an X-linked recessive inheritance.
n an example of recessive epistasis the deposition of pigment into hair follicles of the Labrador Retriever is governed by a dominant gene (C) and lack of deposition by its recessive allele (c).  Lack of pigment deposition produces a yellow coat color. The color of pigment is governed by an independently assorting hypostatic gene, the dominant allele (B) produces black pigment and its recessive allele (b) produces brown. What coat color ratio is expected from the cross of a brown dog (bbCc) to a black dog (BbCc)?     1/2 brown, 1/2 black     1/4 black, 1/4 brown, 1/2 yellow     1/2 black, 1/4 brown, 1/4 yellow     3/8 black, 1/8 brown, 1/2 yellow     3/8 black, 3/8 brown, 1/4 yellow

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CAMPBELL'S BIOLOGY 12E PERUSALL

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