17. Inheritance
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17.1 Chromosomes, genes and proteins
• State that chromosomes are made of DNA, which contains genetic information in the form of genes
• Define a gene as a length of DNA that codes for a protein
• Define an allele as an alternative form of a gene
• Describe the inheritance of sex in humans with reference to X and Y chromosomes
• State that the sequence of bases in a gene determines the sequence of amino acids used to make a specific protein (knowledge of the details of nucleotide structure is not required)
• Explain that different sequences of amino acids give different shapes to protein molecules
• Explain that DNA controls cell function by controlling the production of proteins, including enzymes, membrane carriers and receptors for neurotransmitters
• Explain how a protein is made, limited to: • the gene coding for the protein remains in the nucleus • messenger RNA (mRNA) is a copy of a gene • mRNA molecules are made in the nucleus and move to the cytoplasm • the mRNA passes through ribosomes • the ribosome assembles amino acids into protein molecules • the specific sequence of amino acids is determined by the sequence of bases in the mRNA (knowledge of the details of transcription or translation is not required)
• Explain that most body cells in an organism contain the same genes, but many genes in a particular cell are not expressed because the cell only makes the specific proteins it needs
• Describe a haploid nucleus as a nucleus containing a single set of chromosomes
• Describe a diploid nucleus as a nucleus containing two sets of chromosomes
• State that in a diploid cell, there is a pair of each type of chromosome and in a human diploid cell there are 23 pairs
17.2 Mitosis
17.2.1Mitosis as nuclear division giving
• Describe mitosis as nuclear division giving rise to genetically identical cells (details of the stages of mitosis are not required)
17.2.2Role of mitosis in growth, repair
• State the role of mitosis in growth, repair of damaged tissues, replacement of cells and asexual reproduction
17.2.3Exact replication of chromosomes
• State that the exact replication of chromosomes occurs before mitosis
17.2.4During mitosis, the copies
• State that during mitosis, the copies of chromosomes separate, maintaining the chromosome number in each daughter cell
17.2.5Stem cells as unspecialised cells that
• Describe stem cells as unspecialised cells that divide by mitosis to produce daughter cells that can become specialised for specific functions
17.3 Meiosis
• State that meiosis is involved in the production of gametes
• Describe meiosis as a reduction division in which the chromosome number is halved from diploid to haploid resulting in genetically different cells (details of the stages of meiosis are not required)
17.4 Monohybrid inheritance
• Describe inheritance as the transmission of genetic information from generation to generation
• Describe genotype as the genetic make-up of an organism and in terms of the alleles present
• Describe phenotype as the observable features of an organism
• Describe homozygous as having two identical alleles of a particular gene
• State that two identical homozygous individuals that breed together will be pure-breeding
• Describe heterozygous as having two different alleles of a particular gene
• State that a heterozygous individual will not be pure-breeding
• Describe a dominant allele as an allele that is expressed if it is present in the genotype
• Describe a recessive allele as an allele that is only expressed when there is no dominant allele of the gene present in the genotype
• Interpret pedigree diagrams for the inheritance of a given characteristic
• Use genetic diagrams to predict the results of monohybrid crosses and calculate phenotypic ratios, limited to 1: 1 and 3: 1 ratios
• Use Punnett squares in crosses which result in more than one genotype to work out and show the possible different genotypes
• Explain how to use a test cross to identify an unknown genotype
• Describe codominance as a situation in which both alleles in heterozygous organisms contribute to the phenotype
• Explain the inheritance of ABO blood groups: phenotypes are A, B, AB and O blood groups and alleles are IA, IB and Io
• Describe a sex-linked characteristic as a feature in which the gene responsible is located on a sex chromosome and that this makes the characteristic more common in one sex than in the other
• Describe red-green colour blindness as an example of sex linkage
• Use genetic diagrams to predict the results of monohybrid crosses involving codominance or sex linkage and calculate phenotypic ratios