New alleles can be: beneficial, neutral or harmful.
Example of
Beneficial mutation might be to improve an efficiency of an enzyme.
Harmful mutation might be a production of an enzyme that does not work
If the mutation has no particular effect, we call it a neutralmutation.
Although the neutrality may change due to environmental change which can lead to harmful or beneficial mutations.
Monday, 24 October 2011
3.31 Evolution
Describe the process of evolution by means of natural selection.
Natural selections is the mechanism of evolution and was first proposed by Charles Darwin.
Example:
A bacteria staphlococcus aureus which can lead to skin and lung infection is introduced.
- Evolution can be a change in the form of organisms
- Evolution can be a change in the frequency (how many) of alleles.
Natural selections is the mechanism of evolution and was first proposed by Charles Darwin.
Example:
A bacteria staphlococcus aureus which can lead to skin and lung infection is introduced.
The original form of such bacteria is sustained to be kill by methecilline, which is a type of antibiotic.
(They are susceptible to the antibiotic.)
What happens is that a random mutation to the genome of the bacteria allowed us a characteristic of 'breaking down methecilline.' This means that it is no longer killed by the antibiotic. This new form is called the Resistant form, MRSA.
[Refer to definition number 1 of evolution]
Because the MRSA is resistant to the antibiotic, they became increasingly common (increase in frequency of the allele)
[Refer to definition number 2 of evolution]
Two features of natural selection (process not a thing):
1. Random mutation - produce MRSA form
2. Non-random selection - due to anti-biotic which is selecting the MRSA to survive and MSSA to be selected and killed
3.30 Mutation
- The base sequence ( A,C,T,G,A,A,C,C) of a DNA is what constitute the gene.
- The form of the gene is called an allele.
- Certain events and certain processes can result in a change in the base sequence .
-> This change create a new version of the allele and it is possible that this process will result in an entirely different protein and therefore creating an entirely different phenotype ( how it looks).
The reasons why dominant alleles and recessive alleles exist is because of this process.
3.29 Species Variation
Every individual has a phenotype and the appearance for an individual for any of the characteristics is because of their genotype which is be variant to various degrees accordingly to the environment.
Differences in the appearance of the indiviuals in an species is because they have different genotypes and they are surviving and living in different environments.
Example to this :
In the first example it shows variation that depends entirely on the genotype with no role of the environment. For example the blood groups.
In the second example it shows where the variation depends on the environment. With one example such as height, one might have been inherited the genotype to be short, however, a good diet may affect his height.
In the third example, it shows a variation in population which depends entirely on the environment. Genes have no roles to play here, for example, languages.
Individual Phenotype = Genotype + Environment
Differences in the appearance of the indiviuals in an species is because they have different genotypes and they are surviving and living in different environments.
Vpop = Vgeneration + Venvironment
Example to this :
In the first example it shows variation that depends entirely on the genotype with no role of the environment. For example the blood groups.
In the second example it shows where the variation depends on the environment. With one example such as height, one might have been inherited the genotype to be short, however, a good diet may affect his height.
In the third example, it shows a variation in population which depends entirely on the environment. Genes have no roles to play here, for example, languages.
Monday, 3 October 2011
3.20 Pedigree diagrams
Pedigree can be use to interpret that the affected condition is caused by dominant or recessiveallele.
3.18c Codominance
Codominance refers to a relationship between two alleles of a gene in which both phenotypes of the genes are visible and do not over power each other in phenotype.
This happens when both alleles are dominant.
The offspring will result in an unusual third phenotype as the parents both contribute to the phenotype. The offspring's genotype would be a heterozygous of both dominant alleles.
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