DNA & Protein Synthesis

Học bằng cách chơi

Trả lời những câu hỏi này để kiếm năng lượng, rồi câu cá và khám phá. Không cần tài khoản.

Dành cho nhà giáo dục: slide bài học, ghi chú ôn tập sẵn dùng cho DNA & Protein Synthesis (Biology, AQA) — dùng trong bài giảng của bạn, hoặc chạy chủ đề như một hoạt động lớp học tương tác để người học chơi như một trò chơi trực tiếp.

Ghi chú bài học

The Genome and Proteome

  • The genome is the complete set of genes present in a cell.
  • The full genome is present in every cell of an organism, but not every gene is expressed; the genes expressed depend on the cell type.
  • The proteome is the full range of proteins that a cell can produce.
  • The proteome is usually larger than the genome due to post-translational modification of proteins (often in the Golgi apparatus).
  • Each gene can produce multiple different proteins via alternative splicing.
  • Processes such as alternative splicing and protein modification increase the complexity of the proteome from the genome.

Structure of RNA

  • RNA is a polynucleotide made of many nucleotides linked in a long chain.
  • RNA nucleotides contain the pentose sugar ribose (instead of deoxyribose) and the bases adenine, guanine, cytosine and uracil (never thymine).
  • RNA molecules are single-stranded; each strand has a sugar-phosphate backbone and exposed unpaired bases.
  • mRNA is a transcript copy of a gene that encodes a specific polypeptide; it carries the genetic code from DNA in the nucleus to ribosomes.
  • tRNA has a folded shape and is single-stranded, but hydrogen bonds between some complementary bases hold the strand together in certain regions.
  • tRNA has an anticodon complementary to a specific triplet (codon) on mRNA, and a site for a specific amino acid.

Transcription

  • Protein synthesis occurs in two stages: transcription (DNA is transcribed to produce mRNA) and translation (mRNA is translated to produce an amino acid sequence).
  • Transcription occurs in the nucleus; a section of DNA unwinds and hydrogen bonds break, catalysed by helicase, exposing the gene.
  • Free activated RNA nucleotides pair with complementary bases on the template strand via hydrogen bonds.
  • The non-template (non-transcribed) strand has the same base sequence as the mRNA transcript, but with uracil replacing thymine.
  • RNA polymerase bonds the sugar-phosphate groups of RNA nucleotides to form the sugar-phosphate backbone of mRNA.
  • RNA polymerase moves along the template strand in the 3' to 5' direction, so mRNA grows in the 5' to 3' direction.
  • When transcription is complete, hydrogen bonds between mRNA and DNA break, the DNA re-forms its double helix, and mRNA leaves the nucleus via a nuclear pore.

Eukaryotic and Prokaryotic Transcription

  • Eukaryotic genomes contain non-coding DNA: non-coding multiple repeats between genes and introns within genes.
  • Eukaryotic transcription produces pre-mRNA, which contains both introns and exons.
  • Splicing removes non-coding sections (introns) and joins coding sections (exons) before the pre-mRNA exits the nucleus.
  • The resulting mature mRNA contains only exons and exits the nucleus to join a ribosome for translation.
  • Alternative splicing joins different combinations of exons from the same pre-mRNA, so a single eukaryotic gene can code for more than one polypeptide.
  • In prokaryotes, transcription produces mRNA directly from the DNA template because prokaryotic genes do not contain introns; there is no pre-mRNA stage.
  • In prokaryotes, transcription and translation are coupled because both occur in the cytoplasm, allowing rapid protein synthesis.

Translation

  • Translation occurs in the cytoplasm; mRNA attaches to a ribosome after leaving the nucleus.
  • Free tRNA molecules in the cytoplasm bind with their specific amino acids and bring them to the mRNA on the ribosome.
  • The anticodon on each tRNA pairs with a complementary codon on the mRNA molecule.
  • Two tRNA molecules fit onto the ribosome at any one time, bringing their amino acids side by side.
  • A peptide bond forms between the two amino acids; this requires energy in the form of ATP, provided by mitochondria.
  • Translation continues until a stop codon on mRNA is reached, signalling termination; the completed amino acid chain forms the final polypeptide.

The Genetic Code and Amino Acid Sequences

  • The four RNA bases (A, U, C, G) can form 64 different codons, but only 20 amino acids are coded for, so the genetic code is degenerate.
  • Multiple mRNA codons can encode the same amino acid (e.g., UGU and UGC both code for cysteine), so a change in the genetic code does not necessarily change the amino acid sequence.
  • The START codon (AUG, coding for methionine in eukaryotic cells) initiates translation at the correct location.
  • STOP codons (e.g., UAA) terminate translation and do not code for any amino acid.
  • The genetic code is non-overlapping: each base is read only once in the codon it is part of.
  • Each amino acid is coded for by a triplet (codon) of 3 nucleotides; the last codon is a STOP codon that does not code for an amino acid.
  • To calculate the number of amino acids from coding mRNA nucleotides: divide by 3, then subtract 1 for the STOP codon.
  • To derive an amino acid sequence, convert the DNA template sequence into mRNA codons using complementary base pairing, then use a codon table to translate each codon.

Slide

Sign up free to view the lesson slides

Step through every slide for this topic — plus flashcards and revision notes — with a free account.

Câu hỏi luyện tập

Xem trước miễn phí — 8 trên 56 câu hỏi. Đăng ký để xem tất cả.
  1. 1.What is meant by the term genome?

    Easy
    • AThe full range of proteins that a cell can produce
    • BThe complete set of genes present in a cell
    • CAll the mRNA molecules present in a cell at a given time
    • DThe complete set of enzymes coded for by a cell
  2. 2.Which statement about the proteome is correct?

    Easy
    • AThe proteome is usually smaller than the genome
    • BThe proteome is always identical in every cell of an organism
    • CThe proteome is usually larger than the genome because of post-translational modification and alternative splicing
    • DThe proteome contains only proteins coded for by exons
  3. 3.Which of the following are true of RNA nucleotides? (select all that apply)

    Medium
    • AThey contain the pentose sugar ribose
    • BThey contain the nitrogenous base thymine
    • CThey contain the nitrogenous base uracil
    • DThey contain the nitrogenous base adenine
    • EThey are always double-stranded
  4. 4.tRNA is a single-stranded molecule that is folded into a shape held together by hydrogen bonds between some complementary bases.

    Easy

    True or false?

  5. 5.The proteome of a cell is always smaller than its genome.

    Easy

    True or false?

  6. 6.Which enzyme is responsible for forming the sugar-phosphate backbone of mRNA during transcription?

    Easy
    • ADNA polymerase
    • BHelicase
    • CRNA polymerase
    • DLigase
  7. 7.What is the role of RNA polymerase in transcription?

    Medium
    • AIt breaks hydrogen bonds between DNA strands
    • BIt joins RNA nucleotides together to form the sugar-phosphate backbone of mRNA
    • CIt joins amino acids together to form a polypeptide
    • DIt removes introns from pre-mRNA
  8. 8.Which of the following correctly describes a difference between transcription in prokaryotic and eukaryotic cells?

    Medium
    • AProkaryotic transcription produces pre-mRNA that requires splicing
    • BEukaryotic transcription produces mRNA directly without a pre-mRNA stage
    • CProkaryotic transcription produces mRNA directly because prokaryotic genes do not contain introns
    • DEukaryotic transcription occurs in the cytoplasm

Unlock all 56 questions & more

Tạo tài khoản miễn phí để xem mọi câu hỏi, slide, thẻ ghi nhớ và ghi chú ôn tập cho chủ đề này.

Đề thi cũ

Luyện đề thi cũ cho chủ đề này sắp ra mắt.
Sắp ra mắt