genetics chapter 2 part 2
TRANSCRIPT
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Homework 1 Results!
•You all nailed it! • Introduction: 3 pts possible, class average: 2.9
• Chapter 1: 10 pts possible, class average 8.9
• We had a few scores above 10!
• 2% bonus for not opening a hint
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Mastering Genetics QUIZ
• Quiz 1: 30 minute time limit, 10 questions! – Quiz 2: Coming soon! Same thing!– Quiz 1 & 2: 10 questions, quiz 3-5, 20 questions
(60 minutes)• NO credit for late submissions!• You will be able to see the score after you
submit the quiz, you will be able to see the correct answers after the due date
• Quiz 2 due Feb 5th!
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PART 2Chapter 2
Transmission Genetics
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Previously, the mathematics of allele sorting…
Punnett Squares & Forked Diagram
-Both methods lead to the same results-Understand both
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Questions?
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Mendel’s Work
• Mendelian genetics is named for Mendel because he was the first researcher to explain the observed hereditary patterns
• Based on careful science
• Characteristics are passed from one generation to the next in predictable patterns
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Wild-Type and Mutant Alleles in Mendel’s Traits
• In all of the traits Mendel studied, the wild-type alleles are dominant to the recessive mutant alleles
• This is because the mutant alleles are loss-of-function mutations; if just one functional copy is present in the plants, the phenotype will be wild-type
• The loss-of-function mutations must be homozygous in order for the phenotype to be observed
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For Mendel’s Peas:Recessive Phenotypes = Loss of Function
LUCKY!
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2.4 Probability Theory Predicts Mendelian Ratios
• Mendel recognized that chance is the principle underlying the segregation of alleles for a given gene and the independent assortment of alleles of genes at different loci
• There are four rules of probability theory that describe and predict the outcome of genetic events
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The Product Rule
• If two or more events are independent of one another, the likelihood of their simultaneous or consecutive occurrence is the product of their individual probabilities
• This is the product rule, also called the multiplication rule
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An Aid to Prediction of Gamete Frequency
• The forked-line diagram is used to determine gamete genotypes and frequencies
Product Rule: Likelihood of two independent events occurring consecutively!
Product Rule: Likelihood of two independent events occurring consecutively!
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The Sum Rule
• The sum rule is also called the addition rule
• It defines the joint probability of occurrence of any two or more equivalent events
• The individual probabilities are summed; this rule is used when more than one outcome will satisfy the conditions of the probability question
In heterozygous cross dominant phenotype is ¾ (1/4+1/4+1/4)
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Conditional Probability
• The product and sum rules are used before a cross is made, in order to predict the likelihood of certain outcomes
• Ex. In heterozygous cross dominant phenotype is ¾ (1/4+1/4+1/4)
• Conditional probability involves questions asked after a cross has been made and is applied when information about the outcome modifies the probability calculation
• “The probability of A given that B occurred….”
• Based on information you already know (the condition)….
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Example of Conditional Probability
• For cross Gg Gg, what is the probability that the yellow-seeded progeny are heterozygous?
• Yellow-seeded offspring make up ¾ of the offspring, with two possible genotypes: GG and Gg
• As the yellow-seeded offspring cannot be gg, there is a 2/3 chance they are Gg and a 1/3 chance they are GG
Heterozygous?We already know this is yellow, so we must
discount gg phenotypes!
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Binomial Probability
• Some questions involve predicting the likelihood of a series of events (for which there are two outcomes each time). Ex. How many of x number of children will be boys/girls
• We use binomial probability calculations to answer this type of question
• It expands the binomial expression to reflect the number of outcome combinations and the probability of each
??
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Construction of a Binomial Expansion Formula
• A binomial expansion contains two variables; p, the frequency of one outcome, and q, the frequency of the alternative outcome (p and q may or may not be equal, depending on the type of outcome)
• (p q) 1, since these are the only two outcomes
• We expand the equation by the power of n, where n the number of successive events: (p q)n
What does n=2 look like?Let’s do some FOIL!
What does n=2 look like?Let’s do some FOIL!
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Binomial Expansion Formula — Example
• For families with three children, predict the proportions with each possible combination of boys and girls
• p probability of a boy ½; q probability of a girl ½
• Binomial expansion: (p + q)3 p3 3p2q 3pq2 q3
• p3 = (½)(½)(½) = 1/8 (3 boys)
• 3p2q 3(½)(½)(½) = 3/8 (2 boys, 1 girl)
• 3pq2 3/8 (1 boy, 2 girls)
• q3 1/8 (3 girls)
0 Boys 1 Boy 2 Boys 3 Boys3 Girls 2 Girls 1 Girl 0 Girls
GGG GGB GBB BBB GBG BGB BGG BBG
1/8 3/8 3/8 1/8
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Application of Binomial Expansion to Progeny Phenotypes
• In a self-fertilized Gg pea plant, give the proportion of yellow and green peas in pods with six peas each
• p probability of yellow peas 3/4; q probability of green peas ¼
• A shortcut to the binomial expansion is Pascal’s triangle, which is easy to calculate
26 = 64 possible green/yellow combos!
Possible outcomes
Peas per pod (events)
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Applies to two possible outcomes!Black/white, girl/boy, tall/short
Pascal’s Triangle: binomial coefficients (p+q) raised the nth power
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Get from Pascal’s Triangle
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Let’s give a try!
• A couple has four children, what are the chances that they will have 2 boys and 2 girls?
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A couple has four children. What is the chance that they will have four girls?
A. ½B. ¼C. 1/8D. 1/16E. 1/32
½ ¼8-Ja
n16-Ja
nJan-32
20% 20%20%20%20%
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WHAT WOULD HAPPEN IF WE LOOKED AT 3OO FAMILIES WITH 4 CHILDREN AND 50% OF THE TIME THEY HAD 4 GIRLS?
Is this different from what we expected?How would we tell?
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2.5 Chi-Square Analysis Tests the Fit Between Observed and Expected Outcomes
• Scientists compare observed and expected results to objectively determine whether results are consistent with expectations
• The chi-square test was developed to allow for these objective comparisons
Chi-square Test:Is this what I expected to see
accounting for differences seen by chance?
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The Normal Distribution
• In large samples outcomes predicted by chance have a normal (Gaussian) distribution
• This is often described as a “bell-shaped curve”
• The mean (is the average outcome, and other outcomes are distributed around the mean
• The probability of an experimental outcome gets smaller the further it is from the mean
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The Probability of Particular Outcomes
• Probability of particular outcomes is quantified by a measurement called standard deviation ()
• In a normal distribution 68.2% of all outcomes fall within one of the mean, 95.4% within ,and 99.8% within
• An experimental outcome that is more than from the mean shows a statistically significant difference between the observed and expected outcome
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Measure the height of dogs Standard Deviation (purple):Outside of that area you know you have an extra
tall/small dog
www.mathisfun.com
Past this point:
Significantly different!(Usually what you are aiming for!)
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The Chi-Square Analysis
• The difference between observed and expected values are squared, divided by the expected values and then the values obtained for each outcome are summed
• 2 = (O E)2/E
• 0 = observed values; E expected values
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Interpreting the Chi-Square Analysis
• The interpretation of the test is done by a probability (P) value
• P Value: the probability that your results are due to chance
• Low 2 values are associated with high P values, which indicate that chance alone likely explains the deviations of experimental results from predicted values • If comparing your own treatment (drug) vs. control (no
drug), you will want to see a difference. Therefore, if you want to see a difference, you want a low P value and a high 2 (standard p<0.05)
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Degrees of Freedom
• The P value for an experiment is dependent on the degrees of freedom (df)
• The df value is equal to the number of outcome classes, n, minus 1; this is the number of independent variables
Ex. Coin flip: There are two possible outcomes (heads/tails), so the degree of freedom is : n-1 = 2-1= 1
• The chi-square table includes values for different degrees of freedom and the corresponding P values
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Statistical Significance
• A statistically significant result from 2 analysis is one for which the P value is less than 0.05• When any experimental result has less than 5%
probability, the hypothesis of chance is rejected
• P values above 5% indicate a nonsignificant deviation between observed and expected results
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Monohybrid Cross Example
• For round vs. wrinkled seeds, Mendel observed 5475 round and 1850 wrinkled from his monohybrid cross (Rr Rr), for a total of 7324 seeds
• The expected values: (7324)(3/4) 5493 round (R-), and (7324)(1/4) 1831 wrinkled (rr)
• 2 = (O E)2/E
• 2 (5474 5493)2/5493 (1850 1831)2/1831 0.263
• For df 1, the P value falls between 0.50 and 0.70, well above the 0.05 cutoff value
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Copyright © 2012 Pearson Education Inc. Genetics Analysis: An Integrated Approach
ANIMATION: The Chi-Square Test
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2.6 Autosomal Inheritance and Molecular Genetics Parallel the Predictions of Mendel’s Hereditary Predictions
• In the early 1900s biologists began to extend Mendel’s findings to other organisms
• They immediately began to find exceptions to his predictions
• What are Mendelian principles good at predicting in human?
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Autosomal Inheritance
• Autosomal inheritance refers to transmission of traits carried on autosomes, chromosomes found in both males and females
• Autosomes: all the chromosomes EXCEPT sex chromosomes!
• There are two copies of each autosome; so each individual carries two copies of each autosomal gene
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Pedigrees
• Pedigrees, or family trees, are a way of tracing the inheritance of traits in humans and some animals
• A standard notation is used to indicate males and females, their relationships, and the individuals who show the trait and those who do not
• The generations are indicated by Roman numerals
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Autosomal Dominant Inheritance
• Autosomal dominant inheritance has six characteristics:
1. Each individual who has the disease has at least one affected parent
2. Males and females are affected in equal numbers
3. Either sex can transmit the disease allele
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Autosomal Dominant Inheritance, continued
4. In crosses where one parent is affected and the other is not, approximately half the offspring express the disease
5. Two unaffected parents will not have any children with the disease
6. Two affected parents may produce unaffected children
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1. Each individual who has the disease has at least
one affected parent
2. Males and females are affected in equal numbers
3. Either sex can transmit the disease allele
4. In crosses where one parent is affected and the other is not,
approximately half the offspring express the disease
5. Two unaffected parents will not have any children with the
disease
6. Two affected parents may produce unaffected children
Autosomal Dominant Inheritance
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Autosomal Recessive Inheritance
• Autosomal recessive inheritance has six key features:
1. Individuals who have the disease are often born to parents who do not
2. If only one parent has the disorder the risk that a child will have it depends on the genotype of the other parent
3. If both parents have the disorder, all children will have it
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Autosomal Recessive Inheritance, continued
4. The sex ratio of affected offspring is expected to be equal
5. The disease is not usually seen in each generation but if an affected child is produced by unaffected parents, the risk to subsequent children is ¼
6. If the disease is rare in the population, unaffected parents of affected children are likely to be related to one another
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1. Individuals who have the disease are often born to parents who do
not2. If only one parent has the
disorder the risk that a child will have it depends on the genotype
of the other parent3. If both parents have the disorder,
all children will have it
4. The sex ratio of affected offspring is expected to be
equal5. The disease is not usually seen
in each generation but if an affected child is produced by unaffected parents, the risk to
subsequent children is ¼ 6. If the disease is rare in the
population, unaffected parents of affected children are likely to
be related to one another
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Molecular Genetics of Mendel’s Traits
• A cornerstone of modern genetics is the integration of the principles of transmission genetics with those of molecular genetic analysis
• Transmission of alleles is equated with transmission of variable DNA sequences that act through mRNA to produce proteins responsible for phenotypes
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Molecular Genetics of Mendel’s Traits
• Identification of the genes responsible for the traits Mendel studied requires demonstration that:
1. Allelic variation coincides with morphologic variation
2. DNA variation in alleles produces different protein products
3. Protein products from different alleles have different structures and functions
4. The functional differences between the protein variants affect observed morphological variation in the pea plants
You will continue to see this information all course!
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NOTE: ALL mutations
result in a loss of function!
And they are all recessive
mutants! Mendel was a
lucky guy!
NOTE: ALL mutations
result in a loss of function!
And they are all recessive
mutants! Mendel was a
lucky guy!
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Questions?