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Sav [38]
2 years ago
9

This food web illustrates some characteristics that ANIMALS have in common. Find all the animals. What do they all

Biology
1 answer:
mr Goodwill [35]2 years ago
3 0

Answer:

B) They must consume their food.

Explanation:

I just did the test

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Technician a says that the intake valve runs hotter than the exhaust valve because the intake valve has the greater surface area
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Technician B......

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which kingdom of organism is usually multi-celled, heterotrophic and has Cell walls made of cutting divided by opening called se
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Write a paragraph that includes all of the above: bats, c o v i d 19, corona viruses, colds, crown, respiratory, SARS CoV 2, spi
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3 0
3 years ago
A population of 150 individuals has an allele frequency of 0.2 for the dominant allele (H) and a frequency of 0.8 for the recess
Amanda [17]
Hardy-Weinberg Equation (HW) states that following certain biological tenets or requirements, the total frequency of all homozygous dominant alleles (p) and the total frequency of all homozygous recessive alleles (q) for a gene, account for the total # of alleles for that gene in that HW population, which is 100% or 1.00 as a decimel. So in short: p + q = 1, and additionally (p+q)^2 = 1^2, or 1
So (p+q)(p+q) algebraically works out to p^2 + 2pq + q^2 = 1, where p^2 = genotype frequency of homozygous dominant individuals, 2pq = genotype frequency of heterozygous individuals, and q^2 = genotype frequency of homozygous recessive individuals.
The problem states that Ptotal = 150 individuals, H frequency (p) = 0.2, and h frequency (q) = 0.8.
So homozygous dominant individuals (HH) = p^2 = (0.2)^2 = 0.04 or 4% of 150 --> 6 people
Heterozygous individuals (Hh) = 2pq = 2(0.2)(0.8) = 0.32 or 32% of 150
--> 48 people
And homozygous recessive individuals (hh) = q^2 = (0.8)^2 = 0.64 = 64% of 150 --> 96 people
Hope that helps you to understand how to solve these types of population genetics problems!
6 0
3 years ago
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