Week 8 Notes: Translation
PART I: Recap
DNA in nucleus contains genes that are transcribed to make mRNA. Pre-mRNA produced and processed:
introns spliced, ends are added and the resultant mRNA is exported to cytoplasm, ribosome translates
mRNA to produce polypeptide
Proteins synthesis in cytoplasm requires 3 types of RNA:
o mRNA: carries genetic info
o tRNA: deciphers the codons
conformation of tRNA results from base pairing (H bonding) within molecule
contain non-standard bases due to modification after transcription
3’ end is the amino acid attachment site: binds covalently. Always CCA
Anticodon: site of complementary base pairing with mRNA. Unique for each species of
tRNA
Amino acid is attached to 3’ end (CCA) of tRNA by an energy-rich ester bond. This
provides energy for synthesis of peptide bond to join amino acids.
o rRNA: associates with set of proteins to form ribosomes
There are more codons than there are different amino acids in proteins
o Combinations of the 4 bases give 64 different codons for 20 amino acids
Introduction
A ribosome binds mRNA and tRNA. Ribosomes are ribonucleoprotein particles comprising 2 subunits.
o Each subunit contains a major rRNA and a number of small proteins
Translation occurs by initiation, elongation and termination
AA brought to ribosome by aminoacyl-tRNA and added to nascent peptide chain by interaction with the tRNA that
brought the previous AA
Ribosome has 3 tRNA binding sites:
o aminoacyl-tRNA enters A site.
o Peptidyl-tRNA (tRNA carrying the nascent pp chain) is bound in the P site
o Deacylated tRNA (lacking AA) exits via E site
Translocation: AA added to pp chain by transferring pp from peptidly-tRNA in P site to aminoacyl-tRNA in
A site
Intiation: small + large subunits + aa-tRNA (translation stages up to synthesis of first peptide bond)
Elongation: ribosome moves along mRNA, pp chain extended by addition AA
Termination: translation ends by stopping AA addition and causing disassembly of synthetic machinery
Special mechanisms control the accuracy of translation
Error rates differ at each stage of gene expression
Wrong base, wrong tRNA, frameshift, wrong AA, wrong aminoacyl-tRNA (increasing error rate)
Initiation in bacteria needs 30S subunits and accessory factors
Ribosome binding site: bacterial mRNA sequence that includes initiation codon that is bound by 30S
subunit during initiation
Initiation is not a function of intact ribosomes, it requires separate 50S and 30S subunits which
reassociate during initiation
mRNA recognition occurs when 30S subunit carrying initiation factors binds to form initiation complex
at RBS.
o When initiation complex forms, IF-3 is released to allow 50S to join to form complete ribosome
Initiation factors (IF-1, IF-2, IF-3) bind to 30S subunits
o IF-3
stabilises free 30S subunits
inhibits premature binding of 50S subunit
, Week 8 Notes: Translation
enables 30S subunits to bind initiation sites
checks accuracy of recognition of first aminoacyl-tRNA
o IF-2
Binds special initiator tRNA and controls its entry into ribosome P site
o IF-1
Binds in the vicinity of A site, preventing aminoacyl-tRNA from entering
Initiation involves base pairing b/w mRNA and rRNA
Bacterial mRNA initiation site: AUG initiation codon preceded by Shine-Dalgarno polypurine hexamer
o Shine Dalgarno: polypurine sequence AGGAGG centered about 10 bp before AUG codon on mRNA
30S bacterial ribosomal subunit rRNA (3’ end of 16S rRNA) has complementary
sequence that bp w/Shine-Dalgarno seq during initiation
Initiator tRNA (tRNAfMet) starts the pp chain
Translation starts with Methionine AA coded by AUG
Different Met tRNAs in initiation & elongation
o Only tRNAfMet (controlled by IF-2 & ribosome) can be used for initiation by 30S subunits
IF-2 binds tRNAfMet and allows entry into partial P site on 30S subunit
o Other aminoacyl-tRNAs must be used for elongation by 70S ribosomes
N-formyl-methionyl-tRNA (tRNAfMet): aminoacyl-tRNA that initiates bacterial pp translation
Amino group of the Met is formylated
initiator tRNA has unique structural features that distinguish it from other tRNAs
o NH2 of Met bound is formylated (tRNAfMet)
o Bases at the last position of the stem are unpaired
o 3 G-C bp required to allow tRNAfMet to be inserted directly into P site
tRNAmMet: bacterial tRNA that inserts Met at internal AUG codons
Small subunits scan for initiation site on eukaryotic mRNA
40S subunit binds mRNA 5’ end and scans mRNA until initiation site reached
o Initiation site: 10 nucleotide sequence (Kozak sequence) that includes AUG codon
60S subunit joins the complex at initiation site
IRES (internal ribosome entry site): eukaryotic mRNA sequence that allows ribosome to initiate pp
translation w/o migrating from 5’ end
Eukaryotes use a complex of many initiation factors
IFs required for all stages if initiation including binding the initiator tRNA, 40S subunit attachment to
mRNA, movement along mRNA and joining of the 60S subunit
o At least 12 in eukaryotes
Initiator tRNA is Met-tRNA, different from Met-tRNA used in elongation b/c Met is not formylated
Some eIFs bind to 40S subunit to form 43S preinitiation complex
Cap-binding complex binds to mRNA 5’ prior to mRNA association with 40S subunit
43S complex binds mRNA and scans for initiation codon, forming the 48S complex
eIF2 binds initiator Met-tRNA & GTP, forming a ternary complex that binds to 40S before associating
w/mRNA
o eIF3 maintains free 40S subunits
o eIF2 binds Met-tRNA to 40S. eIF2 is a GTPase, eIF2B is the exchange factor.
eIF4F is a heterotrimer consisting of:
o eIF4G: a scaffold protein that binds two further factors
o eIF4E: binds 5’ methyl cap
o eIF4A: helicase that unwinds the 5’ structure
stimulated by eIF4B
PABP binds 3’ poly(A)
PART I: Recap
DNA in nucleus contains genes that are transcribed to make mRNA. Pre-mRNA produced and processed:
introns spliced, ends are added and the resultant mRNA is exported to cytoplasm, ribosome translates
mRNA to produce polypeptide
Proteins synthesis in cytoplasm requires 3 types of RNA:
o mRNA: carries genetic info
o tRNA: deciphers the codons
conformation of tRNA results from base pairing (H bonding) within molecule
contain non-standard bases due to modification after transcription
3’ end is the amino acid attachment site: binds covalently. Always CCA
Anticodon: site of complementary base pairing with mRNA. Unique for each species of
tRNA
Amino acid is attached to 3’ end (CCA) of tRNA by an energy-rich ester bond. This
provides energy for synthesis of peptide bond to join amino acids.
o rRNA: associates with set of proteins to form ribosomes
There are more codons than there are different amino acids in proteins
o Combinations of the 4 bases give 64 different codons for 20 amino acids
Introduction
A ribosome binds mRNA and tRNA. Ribosomes are ribonucleoprotein particles comprising 2 subunits.
o Each subunit contains a major rRNA and a number of small proteins
Translation occurs by initiation, elongation and termination
AA brought to ribosome by aminoacyl-tRNA and added to nascent peptide chain by interaction with the tRNA that
brought the previous AA
Ribosome has 3 tRNA binding sites:
o aminoacyl-tRNA enters A site.
o Peptidyl-tRNA (tRNA carrying the nascent pp chain) is bound in the P site
o Deacylated tRNA (lacking AA) exits via E site
Translocation: AA added to pp chain by transferring pp from peptidly-tRNA in P site to aminoacyl-tRNA in
A site
Intiation: small + large subunits + aa-tRNA (translation stages up to synthesis of first peptide bond)
Elongation: ribosome moves along mRNA, pp chain extended by addition AA
Termination: translation ends by stopping AA addition and causing disassembly of synthetic machinery
Special mechanisms control the accuracy of translation
Error rates differ at each stage of gene expression
Wrong base, wrong tRNA, frameshift, wrong AA, wrong aminoacyl-tRNA (increasing error rate)
Initiation in bacteria needs 30S subunits and accessory factors
Ribosome binding site: bacterial mRNA sequence that includes initiation codon that is bound by 30S
subunit during initiation
Initiation is not a function of intact ribosomes, it requires separate 50S and 30S subunits which
reassociate during initiation
mRNA recognition occurs when 30S subunit carrying initiation factors binds to form initiation complex
at RBS.
o When initiation complex forms, IF-3 is released to allow 50S to join to form complete ribosome
Initiation factors (IF-1, IF-2, IF-3) bind to 30S subunits
o IF-3
stabilises free 30S subunits
inhibits premature binding of 50S subunit
, Week 8 Notes: Translation
enables 30S subunits to bind initiation sites
checks accuracy of recognition of first aminoacyl-tRNA
o IF-2
Binds special initiator tRNA and controls its entry into ribosome P site
o IF-1
Binds in the vicinity of A site, preventing aminoacyl-tRNA from entering
Initiation involves base pairing b/w mRNA and rRNA
Bacterial mRNA initiation site: AUG initiation codon preceded by Shine-Dalgarno polypurine hexamer
o Shine Dalgarno: polypurine sequence AGGAGG centered about 10 bp before AUG codon on mRNA
30S bacterial ribosomal subunit rRNA (3’ end of 16S rRNA) has complementary
sequence that bp w/Shine-Dalgarno seq during initiation
Initiator tRNA (tRNAfMet) starts the pp chain
Translation starts with Methionine AA coded by AUG
Different Met tRNAs in initiation & elongation
o Only tRNAfMet (controlled by IF-2 & ribosome) can be used for initiation by 30S subunits
IF-2 binds tRNAfMet and allows entry into partial P site on 30S subunit
o Other aminoacyl-tRNAs must be used for elongation by 70S ribosomes
N-formyl-methionyl-tRNA (tRNAfMet): aminoacyl-tRNA that initiates bacterial pp translation
Amino group of the Met is formylated
initiator tRNA has unique structural features that distinguish it from other tRNAs
o NH2 of Met bound is formylated (tRNAfMet)
o Bases at the last position of the stem are unpaired
o 3 G-C bp required to allow tRNAfMet to be inserted directly into P site
tRNAmMet: bacterial tRNA that inserts Met at internal AUG codons
Small subunits scan for initiation site on eukaryotic mRNA
40S subunit binds mRNA 5’ end and scans mRNA until initiation site reached
o Initiation site: 10 nucleotide sequence (Kozak sequence) that includes AUG codon
60S subunit joins the complex at initiation site
IRES (internal ribosome entry site): eukaryotic mRNA sequence that allows ribosome to initiate pp
translation w/o migrating from 5’ end
Eukaryotes use a complex of many initiation factors
IFs required for all stages if initiation including binding the initiator tRNA, 40S subunit attachment to
mRNA, movement along mRNA and joining of the 60S subunit
o At least 12 in eukaryotes
Initiator tRNA is Met-tRNA, different from Met-tRNA used in elongation b/c Met is not formylated
Some eIFs bind to 40S subunit to form 43S preinitiation complex
Cap-binding complex binds to mRNA 5’ prior to mRNA association with 40S subunit
43S complex binds mRNA and scans for initiation codon, forming the 48S complex
eIF2 binds initiator Met-tRNA & GTP, forming a ternary complex that binds to 40S before associating
w/mRNA
o eIF3 maintains free 40S subunits
o eIF2 binds Met-tRNA to 40S. eIF2 is a GTPase, eIF2B is the exchange factor.
eIF4F is a heterotrimer consisting of:
o eIF4G: a scaffold protein that binds two further factors
o eIF4E: binds 5’ methyl cap
o eIF4A: helicase that unwinds the 5’ structure
stimulated by eIF4B
PABP binds 3’ poly(A)