• Transcription makes mRNA as a mobile copy of gene information
• RNA polymerase synthesizes RNA complementary to the DNA template strand
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
2
Learning objective
D1.2.2—Hydrogen bonding in transcription
New
• Free RNA nucleotides align by complementary base pairing and hydrogen bonding
• DNA adenine pairs with RNA uracil, while cytosine pairs with guanine
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Start with the concept explanation, then practise to create mastery evidence.
3
Learning objective
D1.2.3—DNA template stability
New
• DNA template strands are transcribed without altering the base sequence
• Sugar-phosphate backbone and base pairing preserve genetic information
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0
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Start with the concept explanation, then practise to create mastery evidence.
4
Learning objective
D1.2.4—Transcription for gene expression
New
• Transcription is the first stage of gene expression
• Cells regulate which genes are transcribed according to tissue, stage, and signals
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Start with the concept explanation, then practise to create mastery evidence.
5
Learning objective
D1.2.5—Translation
New
• Translation decodes mRNA at ribosomes to synthesize polypeptides
• mRNA codon order determines amino acid sequence
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0
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
6
Learning objective
D1.2.6—Roles in translation
New
• mRNA provides codons; tRNA carries activated amino acids with anticodons
• Ribosomes hold mRNA and tRNAs so peptide bonds can form
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Mastery
0
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
7
Learning objective
D1.2.7—Complementary base pairing
New
• tRNA anticodons pair with complementary mRNA codons by hydrogen bonding
• Specific tRNA-amino acid attachment helps ensure correct amino acid addition
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Mastery
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
8
Learning objective
D1.2.8—Genetic code features
New
• The genetic code is triplet, degenerate, and almost universal
• Codons specify amino acids, a start signal, or stop signals
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
9
Learning objective
D1.2.9—Using genetic code table
New
• Genetic code tables use mRNA codons, not DNA triplets
• Convert template DNA to mRNA first, then read codons 5' to 3'
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Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
10
Learning objective
D1.2.10—Elongation of polypeptide
New
• Ribosomes move along mRNA one codon at a time from start to stop
• Peptide bonds join amino acids; multiple ribosomes can form a polysome
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Mastery
0
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0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
11
Learning objective
D1.2.11—Mutations changing protein structure
New
• Mutations can change codons and therefore amino acid sequence
• Changed primary structure may alter folding and function, such as sickle-cell haemoglobin
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Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
12
Learning objective
D1.2.12 (HL)—Directionality
New
• RNA polymerase reads template DNA 3' to 5' and synthesizes RNA 5' to 3'
• Ribosomes translate mRNA codons in the 5' to 3' direction
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Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
13
Learning objective
D1.2.13 (HL)—Initiation of transcription at promoter
New
• Promoters mark transcription start regions and orientation
• Transcription factors help RNA polymerase bind and initiate in eukaryotes
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
14
Learning objective
D1.2.14 (HL)—Non-coding sequences in DNA
New
• Non-coding DNA does not code for polypeptide amino acid sequences
• Includes introns, regulatory sequences, telomeres, rRNA genes, and tRNA genes
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
15
Learning objective
D1.2.15 (HL)—Post-transcriptional modification
New
• Eukaryotic pre-mRNA is modified before export and translation
• Processing adds a 5' cap and poly-A tail and removes introns by splicing
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
16
Learning objective
D1.2.16 (HL)—Alternative splicing
New
• Alternative splicing joins different exon combinations from one pre-mRNA
• One gene can produce multiple protein variants in different cells or stages
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
17
Learning objective
D1.2.17 (HL)—Translation initiation
New
• Translation initiation assembles ribosomal subunits at the start codon AUG
• Initiator tRNA enters the P site; A, P, and E sites organize tRNA movement
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0
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
18
Learning objective
D1.2.18 (HL)—Polypeptide modification
New
• Newly made polypeptides may be folded, cleaved, or chemically modified
• Preproinsulin processing to active insulin is a key example
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Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
19
Learning objective
D1.2.19 (HL)—Amino acid recycling by proteasomes
New
• Proteasomes degrade tagged, damaged, or unneeded proteins
• Amino acid recycling supports new protein synthesis and proteome quality control
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.