Lecture 3
Now let’s consider diploid organisms:
The genotype of the zygote will depend on which alleles are carried in the gametes.
When heterozygotes mate their offspring will have different phenotypes: If A is domi-
nant to a, the two possible phenotypes will be the phenotype of a/a or the phenotype of
A/A and A/a.
When we do breeding experiments it is important to know the genotypes of the parents.
But as you can see from the example above individuals with the dominant trait could be
either A/A or A/a. A method to control this type of variation is to start with populations
that we know to be homozygous. One way to do this is to keep inbreeding individuals until
all crosses among related individuals always produce identical offspring. This is known as
a true-breeding population and all individuals can be assumed to be homozygous.
A/AA/a
a/Aa/a
Aa
A
a
sperm
egg
Allele
in gamete
Zygote
True Breeding: homozygous for all genes
Say we have a true breeding line of shibire flies these flies are paralyzed and have geno-
type shi
–
/shi
–
.
First, we can test to see whether the shibire allele is dominant or recessive.
shi
–
/shi
–
x (wild type) shi
+
/shi
+
↓
all are shi
–
/shi
+
(The offspring from a cross of two true breeding lines is known as the F
1
or first filial
generation). The F
1
flies appear like wild type therefore shi
–
is recessive (not expressed
in heterozygote)
Say we have isolated a new paralyzed mutant that we call par.
We start with a true breeding par
–
strain that we mate to wild type. We find that the
mutation is not expressed in the F
1
heterozygotes and therefore is recessive.
To find out whether par
–
is the same as shi
–
we can do a complementation test since
both mutations are recessive. For this test, we cross a true breeding par
–
strain to a
true breeding shi
–
strain.
par
–
/par
–
x shi
–
/shi
–
↓
F
1
(these flies must inherit both shi
–
and par
–
)
Possible outcome Complementation? Explanation Inferred genotype
F
1
not paralyzed
F
1
paralyzed
Let’s look more carefully at gene segregation in a cross between F
1
flies.
shi
–
/shi
+
x shi
–
/shi
+
What is the probability of a paralyzed fly in the next (F
2
) generation?
par
–
genotype can supply
function missing in shi
–
and vice versa
par
–
has lost function
needed to restore shi
–
shi
–
and par
–
complement
shi
–
and par
–
do not complement
par
–
/par
+
shi
+
/shi
–
shi
–
/shi
–
Definition: p(a) = n
a
= number of outcomes that satisfy condition a
N = total number of outcomes (of equal probability)
Probability problems can be solved by accounting for every outcome, but usually it is
easier to combine probabilities.
p(paralyzed F
2
fly) = p(inherit shi
-
from mother and inherit shi
-
from father)
Product rule: p(a and b) = p(a) x p(b)
(note the product rule only applies if a and b are independent which is the case here since
the allele from mother does not affect the allele from the father)
p(shi
–
from mother) =
1
/
2
p(paralyzed) =
1
/
2
x
1
/
2
=
1
/
4
p(not paralyzed) = 1 –
1
/
4
=
3
/
4
Thus in the F
2
generation the phenotypic ratio will be, 1 paralyzed : 3 not paralyzed
A 1 : 3 phenotypic ratio among the F
2
in a breeding experiment shows that alleles of a
single gene are segregating.
This actually constitutes a third definition of a gene. Historically, this was the first
definition of the gene developed by Gregor Mendel in the 1860s. Mendel was able to
detect single genes segregating in pea plants because he looked at simple traits and
started with true-breeding strains.
Let’s see how these ideas can be applied to a very interesting problem in the evolution of
corn. Domestic corn is derived from wild progenitor Teosinte. There is no historical
record of how the breeding was done to produce Maize but there is a genetic record of
the differences between Teosinte and Maize recorded the genomic differences between
these two species. Maize and Teosinte can be crossed to give viable progeny.
Teosinte x Maize
↓
F
1
all same and unlike either parent
↓
F
2
50,000 plants
~
1
/
500
look like Teosinte and ~
1
/
500
look like Maize
n
a
N
How many genes contribute to the differences between the two kinds of plants?
Let’s designate the genes that differ as A, B, C, D ...
For each gene there are two alleles: the allele present in Teosinte and the allele present
in Maize.
For the A gene we will designate these alleles A
T
and A
M
respectively. For the B gene
there will be alleles B
T
and B
M
and so on for all the genes that differ.
Let’s follow the A gene through the cross between Maize and Teosinte
A
T
/A
T
x A
M
/A
M
F
1
: A
T
/A
M
Because the F
1
don’t look like either parent, let’s assume that the alleles are codominant.
Codominant: heterozygote different than either homozygote.
Incomplete dominance: heterozygote expresses the traits of both homozygous parents.
(Alternatively, the genes that differ could have a mixture of dominant and recessive
alleles)
F
2
: A
T
/A
T
A
T
/A
M
A
M
/A
M
1 : 2 : 1
1
/
4
will look like Teosinte.
For two genes that differ: A
T
/A
T
B
T
/B
T
1
/
4
x
1
/
4
=
1/
16
will look like Teosinte.
Similarly, for three genes the probability will be
1
/
64
. For four genes it will be
1
/
256
,
and for five genes it will be
1
/
1024
.
Since ~1/500 look like Teosinte the conclusion is that 4–5 genes differ between wild corn
(Teosinte) and domestic corn (Maize). Using modern methods, it has been confirmed that
there are about five significantly different alleles and several of these have been located
using mapping methods.