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The Genetic Code Quiz

12 questions biology Grades 9-12

The question sheet

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  1. What process generates messenger RNA (mRNA)?

    • Transcription
    • Degeneracy
    • Translation
    • Replication
    Reveal answer

    Answer: Transcription

    Source evidence

    PDF page 418: The cellular process of transcription generates messenger RNA (mRNA), a mobile molecular copy of one or more genes with an alphabet of A, C, G, and uracil (U). Translation of the mRNA template on ribosomes converts nucleotide-based genetic information into a protein product. That is the central dogma of DNA-protein synthesis.

  2. What is the mobile molecular copy of genes described in the text?

    • Ribosome
    • mRNA
    • Codon
    • DNA
    Reveal answer

    Answer: mRNA

    Source evidence

    PDF page 418: The cellular process of transcription generates messenger RNA (mRNA), a mobile molecular copy of one or more genes with an alphabet of A, C, G, and uracil (U). Translation of the mRNA template on ribosomes converts nucleotide-based genetic information into a protein product. That is the central dogma of DNA-protein synthesis.

  3. Which four letters make up the alphabet of mRNA?

    • A, C, G, U
    • C, G, T, U
    • A, T, G, U
    • A, C, G, T
    Reveal answer

    Answer: A, C, G, U

    Source evidence

    PDF page 418: The cellular process of transcription generates messenger RNA (mRNA), a mobile molecular copy of one or more genes with an alphabet of A, C, G, and uracil (U). Translation of the mRNA template on ribosomes converts nucleotide-based genetic information into a protein product. That is the central dogma of DNA-protein synthesis.

  4. How many commonly occurring amino acids make up the protein alphabet?

    • 20
    • 4
    • 16
    • 64
    Reveal answer

    Answer: 20

    Source evidence

    PDF page 419: Protein sequences consist of 20 commonly occurring amino acids; therefore, it can be said that the protein alphabet consists of 20 “letters” (Figure 15.2). Different amino acids have different chemistries (such as acidic versus basic, or polar and nonpolar) and different structural constraints. Variation in amino acid sequence is responsible for the enormous variation in protein structure and function.

  5. What is responsible for the enormous variation in protein structure and function?

    • Number of ribosomes
    • Number of stop codons
    • Length of DNA
    • Variation in amino acid sequence
    Reveal answer

    Answer: Variation in amino acid sequence

    Source evidence

    PDF page 419: Protein sequences consist of 20 commonly occurring amino acids; therefore, it can be said that the protein alphabet consists of 20 “letters” (Figure 15.2). Different amino acids have different chemistries (such as acidic versus basic, or polar and nonpolar) and different structural constraints. Variation in amino acid sequence is responsible for the enormous variation in protein structure and function.

  6. Each amino acid is composed of an amino group, a side chain, and what?

    • A sugar group
    • A hydroxyl group
    • A phosphate group
    • A carboxyl group
    Reveal answer

    Answer: A carboxyl group

    Source evidence

    PDF page 419: + - group ( NH ), a carboxyl group (COO ), and a side chain (blue). The side chain may be nonpolar, polar, or charged, 3 as well as large or small. It is the variety of amino acid side chains that gives rise to the incredible variation of protein structure and function.

  7. What determines whether an amino acid side chain is nonpolar, polar, or charged?

    • The amino group
    • The ribosome
    • The carboxyl group
    • The side chain
    Reveal answer

    Answer: The side chain

    Source evidence

    PDF page 419: + - group ( NH ), a carboxyl group (COO ), and a side chain (blue). The side chain may be nonpolar, polar, or charged, 3 as well as large or small. It is the variety of amino acid side chains that gives rise to the incredible variation of protein structure and function.

  8. According to the central dogma, genes specify the sequence of what?

    • Codons
    • Lipids
    • Ribosomes
    • mRNAs
    Reveal answer

    Answer: mRNAs

    Source evidence

    PDF page 419: The flow of genetic information in cells from DNA to mRNA to protein is described by the central dogma (Figure 15.3), which states that genes specify the sequence of mRNAs, which in turn specify the sequence of amino acids making up all proteins. The decoding of one molecule to another is performed by specific proteins and RNAs. Because the information stored in DNA is so central to cellular function, it makes intuitive sense that the cell would make mRNA copies of this information for protein synthesis, while keeping the DNA itself intact and protected. The copying of DNA to RNA is relatively straightforward, with one nucleotide being added to the mRNA strand for every nucleotide read in the DNA strand. The translation to protein is a bit more complex because three mRNA nucleotides correspond to one amino acid in the polypeptide sequence. However, the translation to protein is still systematic and colinear, such that nucleotides 1 to 3 correspond to amino acid 1, nucleotides 4 to 6 correspond to amino acid 2, and so on.

  9. How many mRNA nucleotides correspond to one amino acid?

    • Three
    • Two
    • Four
    • One
    Reveal answer

    Answer: Three

    Source evidence

    PDF page 419: The flow of genetic information in cells from DNA to mRNA to protein is described by the central dogma (Figure 15.3), which states that genes specify the sequence of mRNAs, which in turn specify the sequence of amino acids making up all proteins. The decoding of one molecule to another is performed by specific proteins and RNAs. Because the information stored in DNA is so central to cellular function, it makes intuitive sense that the cell would make mRNA copies of this information for protein synthesis, while keeping the DNA itself intact and protected. The copying of DNA to RNA is relatively straightforward, with one nucleotide being added to the mRNA strand for every nucleotide read in the DNA strand. The translation to protein is a bit more complex because three mRNA nucleotides correspond to one amino acid in the polypeptide sequence. However, the translation to protein is still systematic and colinear, such that nucleotides 1 to 3 correspond to amino acid 1, nucleotides 4 to 6 correspond to amino acid 2, and so on.

  10. What is a three-nucleotide sequence that defines an amino acid called?

    • Triplet codon
    • Ribosome
    • Nucleotide doublet
    • Anticodon
    Reveal answer

    Answer: Triplet codon

    Source evidence

    PDF page 420: information inscribed on a strand of messenger RNA and use this information to string amino acids together into a protein. The Genetic Code Is Degenerate and Universal Each amino acid is defined by a three-nucleotide sequence called the triplet codon. Given the different numbers of “letters” in the mRNA and protein “alphabets,” scientists theorized that single amino acids must be represented by combinations of nucleotides. Nucleotide doublets would not be sufficient to specify every amino acid because 2 there are only 16 possible two-nucleotide combinations (4 ). In contrast, there are 64 possible nucleotide triplets

  11. How many possible nucleotide triplet combinations exist?

    • 64
    • 16
    • 84
    • 20
    Reveal answer

    Answer: 64

    Source evidence

    PDF page 420: information inscribed on a strand of messenger RNA and use this information to string amino acids together into a protein. The Genetic Code Is Degenerate and Universal Each amino acid is defined by a three-nucleotide sequence called the triplet codon. Given the different numbers of “letters” in the mRNA and protein “alphabets,” scientists theorized that single amino acids must be represented by combinations of nucleotides. Nucleotide doublets would not be sufficient to specify every amino acid because 2 there are only 16 possible two-nucleotide combinations (4 ). In contrast, there are 64 possible nucleotide triplets

    PDF page 421: 3 (4 ), which is far more than the number of amino acids. Scientists theorized that amino acids were encoded by nucleotide triplets and that the genetic code was “degenerate.” In other words, a given amino acid could be encoded by more than one nucleotide triplet. This was later confirmed experimentally: Francis Crick and Sydney Brenner used the chemical mutagen proflavin to insert one, two, or three nucleotides into the gene of a virus. When one or two nucleotides were inserted, the normal proteins were not produced. When three nucleotides were inserted, the protein was synthesized and functional. This demonstrated that the amino acids must be specified by groups of three nucleotides. These nucleotide triplets are called codons. The insertion of one or two nucleotides completely changed the triplet reading frame, thereby altering the message for every subsequent amino acid (Figure 15.5). Though insertion of three nucleotides caused an extra amino acid to be inserted during translation, the integrity of the rest of the protein was maintained. Scientists painstakingly solved the genetic code by translating synthetic mRNAs in vitro and sequencing the proteins they specified (Figure 15.4).

  12. Why would nucleotide doublets be insufficient to specify every amino acid?

    • Only 4 combinations are possible
    • Too many combinations exist
    • They cannot be read
    • Only 16 combinations are possible
    Reveal answer

    Answer: Only 16 combinations are possible

    Source evidence

    PDF page 420: information inscribed on a strand of messenger RNA and use this information to string amino acids together into a protein. The Genetic Code Is Degenerate and Universal Each amino acid is defined by a three-nucleotide sequence called the triplet codon. Given the different numbers of “letters” in the mRNA and protein “alphabets,” scientists theorized that single amino acids must be represented by combinations of nucleotides. Nucleotide doublets would not be sufficient to specify every amino acid because 2 there are only 16 possible two-nucleotide combinations (4 ). In contrast, there are 64 possible nucleotide triplets

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