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Transcript
Topic 2
Molecular Biology
2.7 DNA replication, transcription &
translation
Bellwork
1. With your partner, discuss the differences between
DNA and RNA.
2. Then place the following steps of transcription in the
correct order:
a. After the gene has completely transcribed, the mRNA
breaks away from the DNA and leaves the nucleus
for the ribosomes
b. The DNA double helix reforms
c. The polynucleotide DNA strand with the gene of
interest acts as a template for mRNA.
d. RNA polymerase adds free RNA nucleotide base pairs
to DNA nucleotides, forming phosphodiester bonds
between RNA nucleotides.
e. The DNA helix is opened at the position of the gene by
RNA polymerase
Steps of Transcription
1. The DNA helix is opened at the position of the gene by
RNA polymerase
2. The polynucleotide DNA strand with the gene of interest
acts as a template for mRNA.
3. RNA polymerase adds free RNA nucleotide base pairs to
DNA nucleotides, forming phosphodiester bonds between
RNA nucleotides.
4. After the gene has completely transcribed, the mRNA
breaks away from the DNA and leaves the nucleus for the
ribosomes.
5. The DNA double helix reforms.
2.7 DNA Replication, Transcription, Translation
Give purpose and product of the following:
• Replication:
• Transcription:
• Translation:
REPLICATION:
1 DNA
to
2 DNA
i. The replication of DNA is semi-conservative and
depends on complementary base pairing.
• New cells need to have the same DNA
• Product is two identical strands of DNA, each with
one side from original DNA and other side is a
newly formed strand.
i. The replication of DNA is semi-conservative and
depends on complementary base pairing.
• The new strands of DNA are made using the base
pair rules.
ii. Helicase unwinds the double helix and separates
the two strands by breaking hydrogen bonds.
• Helicase is an enzyme that unzips DNA
• Energy from ATP is required for breaking the
hydrogen bonds between complimentary
base pairs
• As the helicase un-zips the DNA it also
unwinds the helix
ii. Helicase unwinds the double helix and separates
the two strands by breaking hydrogen bonds.
iii. DNA polymerase links nucleotides together to
form a new strand, using the pre-existing strand as a
template.
• DNA polymerase is an enzyme moves along the newly made
DNA strand attaching matching nucleotides. Moves from 5’
to 3’
iii. DNA polymerase links nucleotides together to
form a new strand, using the pre-existing strand as a
template.
iii. DNA polymerase links nucleotides together to
form a new strand, using the pre-existing strand as a
template.
Replication in ACTION
DNA Replication 3D 5.45min
https://www.youtube.com/watch?v=27TxKoFU2Nw
DNA structure and replication: Crash course 12:58
https://www.youtube.com/watch?v=8kK2zwjRV0M
http://www.youtube.com/watch?v=yqESR7E4b_8
2.7.A1 Use of Taq DNA polymerase to produce multiple copies of DNA rapidly by the polymerase
chain reaction (PCR).
To summarize:
PCR is a way of producing large quantities of a specific
target sequence of DNA. It is useful when only a small
amount of DNA is available for testing e.g. crime scene
samples of blood, semen, tissue, hair, etc.
PCR occurs in a thermal cycler and involves a repeat
procedure of 3 steps:
1. Denaturation: DNA sample is heated to separate it
into two strands
2. Annealing: DNA primers attach to opposite ends
of the target sequence
3. Elongation: A heat-tolerant DNA polymerase (Taq)
copies the strands
• One cycle of PCR yields two identical copies of the
DNA sequence
• A standard reaction of 30 cycles would yield
1,073,741,826 copies of DNA (230)
2.7.A1 Use of Taq DNA polymerase to produce multiple copies of DNA rapidly by the polymerase
chain reaction (PCR).
After clicking on the
myDNA link choose
techniques and then
amplifying to access the
tutorials on the polymerase
chain reaction (PCR).
Alternatively watch the
McGraw-Hill tutorial
http://www.dnai.org/b/index.html
http://highered.mcgraw-hill.com/olc/dl/120078/micro15.swf
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
Before Meselson and Stahl’s work there were different proposed models for DNA replication.
After their work only semi-conservative replication was found to be biologically significant.
https://upload.wikimedia.org/wikipedia/commons/a/a2/DNAreplicationModes.p
SKILL: Analysis of Meselson and Stahl’s results to obtain
support for the theory of semi-conservative replication of
DNA>
• Read through the article for Obtaining evidence
for the theory of semi-conservative replication
and complete the data based question on the
Analysis of Meselson and Stahl’s results on page
113- and 114
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
http://highered.mheducation.com/olcweb/cgi/pluginpop.
cgi?it=swf::535::535::/sites/dl/free/0072437316/120076/
bio22.swf::Meselson%20and%20Stahl%20Experiment
Learn about Meselson and Stahl’s
work with DNA to discover the
mechanism of semi-conservative
replication
http://www.nature.com/scitable/topicpage/Semi-Conservative-DNA-Replication-Meselson-and-
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
At the start of a Meselson and Stahl experiment (generation 0) a single band of
DNA with a density of 1.730 g cm-3 was found. After 4 generations two bands were
found, but the main band had a density of 1.700 g cm-3.
a. Explain why the density of the main band changed over four generations. (2)
b. After one generation one still only one DNA band appears, but the density has
changed.
i. Estimate the density of the band. (1)
ii. Which (if any) mechanisms of DNA replication are falsified by this result?
(1)
iii. Explain why the identified mechanism(s) are falsified. (1)
c. Describe the results after two generations and which mechanisms and explain
the identified mechanism(s) (if any) are falsified as a consequence. (3)
d. Describe and explain the result found by centrifuging a mixture of DNA from
generation 0 and 2. (2)
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
At the start of a Meselson and Stahl experiment (generation 0) a single band of
DNA with a density of 1.730 g cm-3 was found. After 4 generations two bands were
found, but the main band had a density of 1.700 g cm-3.
a. Explain why the density of the main band changed over four generations. (2)
• N15 isotope has a greater mass than N14 isotope due to the extra neutron
• Generation 0 contained DNA with exclusively N15 isotopes (giving it a
greater density)
• With each generation the proportion N14 isotope (from free nucleotides)
increases as the mass of DNA doubles
• After four generations most strands contain only N14 isotope – the dominant
band at a density of 1.700 g cm-3.
• N15 isotope remains, but is combined in strands with N14 isotope – a
second band at a density between 1.730 and 1.700 g cm-3.
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
At the start of a Meselson and Stahl experiment (generation 0) a single band of
DNA with a density of 1.730 g cm-3 was found. After 4 generations two bands were
found, but the main band had a density of 1.700 g cm-3.
b. After one generation one still only one DNA band appears, but the density has
changed.
i. Estimate the density of the band. (1)
• The band would contain equally amounts of N14 isotope and N15
isotope
• Density of an all N15 isotope band is 1.730 g cm-3.
• Density of an all N14 isotope band is 1.700 g cm-3.
• Density of an the mixed isotope band is the average of the two:
= ( 1.730 g cm-3 + 1.700 g cm-3 ) / 2 = 1.715 g cm-3
ii.
Which (if any) mechanisms of DNA replication are falsified by this result?
(1)
• conservative replication
iii. Explain why the identified mechanism(s) are falsified. (1)
• For conservative replication to be the case two bands should appear
in all generations after generation 0
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
At the start of a Meselson and Stahl experiment (generation 0) a single band of
DNA with a density of 1.730 g cm-3 was found. After 4 generations two bands were
found, but the main band had a density of 1.700 g cm-3.
c. Describe the results after two generations and which mechanisms and explain
the identified mechanism(s) (if any) are falsified as a consequence. (3)
• 2 bands:
• One band containing a mixture of N15 and N14 isotopes – semiconservative replication preserves the DNA strands containing N15
isotopes, but combines them with N14 nucleotides during replication.
• One band containing all N14 isotopes - during replication from generation
1 to generation 2. The new strands consisting of of N14 isotopes are
replicated using N14 nucleotides creating strands containing just N14
isotopes.
• Dispersive replication is falsified as this model would continue to
produce a single band, containing proportionally less N15 isotope.
2.7.S2 Analysis of Meselson and Stahl’s results to obtain support for the theory of semiconservative replication of DNA.
At the start of a Meselson and Stahl experiment (generation 0) a single band of
DNA with a density of 1.730 g cm-3 was found. After 4 generations two bands were
found, but the main band had a density of 1.700 g cm-3.
d. Describe and explain the result found by centrifuging a mixture of DNA from
generation 0 and 2. (2)
• 3 bands:
• One band from generation 0 containing all N15 isotopes – no replication
has occured
• One band from generation 2 containing a mixture of N15 and N14
isotopes – semi-conservative replication preserves the DNA strands
containing N15 isotopes, but combines them with N14 nucleotides during
replication.
• One band from generation 2 (all replicated DNA) containing all N14
isotopes - during replication from generation 1 to generation 2. The new
strands consisting of of N14 isotopes are replicated using N14 nucleotides
creating strands containing just N14 isotopes.
Q - What is the purpose of transcription and translation?
AThese processes work together to create a polypeptide which
in turns folds to become a protein. Proteins carry many essential
functions in cells. For more detail review 2.4.U7 Living organisms
synthesize many different proteins with a wide range of functions.
Catalysis
Tensile strengthening
Muscle
contraction
Transport of nutrients and gases
Use the learn.genetics tutorial to discover one example:
Cell adhesion
Hormones
Receptors
Cytoskeletons
Packing of DNA
Blood clotting
Immunity
Membrane
transport
http://learn.genetics.utah.edu/content/molecules/firefly/
TRANSCRIPTION:
DNA
to
mRNA
iv. Transcription is the synthesis of mRNA copied
from the DNA base sequence by RNA polymerase
• Genes are the instructions for making proteins
• Transcription is the synthesis of RNA using DNA
as a template
• RNA is single-stranded so transcription only
occurs along one strand of DNA
iv. Transcription is the synthesis of mRNA copied
from the DNA base sequence by RNA polymerase
• During transcription,
• RNA polymerase:
• Binds to the active site on the DNA at the start of the
gene
• Moves along the DNA molecule pairing up the
complimentary bases, using U instead of T
• Forms covalent bonds between the new RNA
nucleotides
• RNA then separates from the DNA & the DNA reforms
• RNA then leaves the nucleus
• http://www.johnkyrk.com/DNAtranscription.html
iv. Transcription is the synthesis of mRNA copied
from the DNA base sequence by RNA polymerase
Transcription: DNA to mRNA
*Occurs in
Nucleus
*Template =
antisense strand
*Product is
mRNA
Transcription practice
• Transcribe the following DNA sequence:
• TGCTACGGATAAATCGAC
• ____________________________
ACGAUGCCUAUUUAGCUG
• Now, take a moment to explain this process to
your neighbor & visa versa
TRANSLATION:
mRNA
to
Protein
v. Translation is the synthesis of polypeptides on
ribosomes.
• The second process used to make proteins is
translation
• Once the strand of mRNA has left the
nucleus it moves into the cytoplasm
• The ribosome has two parts – large subunit
& small subunit
v. Translation is the synthesis of polypeptides on
ribosomes.
vi. The amino acid sequence of polypeptides is
determined by mRNA according to the genetic code.
• Messenger RNA (mRNA) carries the
information from the gene on DNA to the
ribosome to create the polypeptide.
vii. Codons of three bases on mRNA correspond to
one amino acid in a polypeptide
• There are 4 different bases & 20 amino acids so a single
base cannot code for an amino acid
• Every 3 bases therefore code for an amino acid
• These groups of 3 bases that are found on the mRNA is
referred to as a codon
• Because there are 64 different combinations of codons,
several codons code for the same amino acid
• When the mRNA strand pairs up with the tRNA the 3 bases
complimentary to the mRNA codon is called an anti-codon
vii. Codons of three bases on mRNA correspond to
one amino acid in a polypeptide
• 3 components work together to synthesize polypeptides by
translation
• mRNA contains codons that code for specific amino acids
• tRNA has a complimentary anticodon on one end that pairs
with the codon & an amino acid on the other end
• Ribosomes act as a binding site for mRNA & tRNA & also
catalyze the assembly of the polypeptide
SKILL: Use a table of the genetic code to deduce
which codon(s) corresponds to which amino acid.
SKILL: Use a table of mRNA codons and their
corresponding amino acids to deduce the sequence
of amino acids coded by a short mRNA strand of
know base sequence
SKILL: Deducing the DNA base sequence for the
mRNA strand
Translation practice
• DNA
TGCTACGGATAA ATC GAC
• mRNA A C G A U G C C U A U U U A G C U G
Met - Pro - iso - stop
• A. acids ______________________________
viii. Translation depend on complementary base
pairing between codons on mRNA and anticodons on
tRNA.
What are the Key components of translation?
What are the Key components of translation?
Key components of translation that enable genetic code to synthesize
polypeptides
tRNA molecules
have an anticodon
of three bases that
binds to a
complementary
3
codon on mRNA
mRNA has a sequence of
codons that specifies the
amino acid sequence of the
polypeptide
1
tRNA molecules carry the
amino acid corresponding to
their codon
2
4
Ribosomes:
• act as the binding site
for mRNA and tRNA
• catalyse the peptide
bonds of the
polypeptide
https://upload.wikimedia.org/wikipedia/commons/0/0f/Peptide_syn.png
viii. Translation depend on complementary base
pairing between codons on mRNA and anticodons on
tRNA.
Watch the following animation on
translation.http://highered.mheducation.co
m/sites/0072943696/student_view0/chapte
r3/animation__protein_synthesis__quiz_3_
.html
Genetic Code
• Genetic code is written in
codon: a triplet of 3 bases on
the mRNA that codes for one
amino acid.
• Genetic code is degenerate –
two or more codons can code
for the same amino acid
• Anticodon: triplet of 3 bases on
the tRNA that correspond to
the codon. Tell tRNA where to
bind to mRNA.
• Genetic code is universal – all
living organisms and viruses
use the same code
How does polymerase read the gene?
#generegulation
Start codons: where
translation begins:
• AUG = (Methionine)
Met
Stop Codons:
Where translation ends:
• UGA, UAA, AUG =
STOP
Application: Production of human insulin in bacteria
as an example of the universality of the genetic code
allowing gene transfer between species.
Watch the video on the production of
insulin and genetic
engineering https://www.youtube.com/wat
ch?v=zlqD4UWCuws 3.37 min
2.7.A2 Production of human insulin in bacteria as an example of the universality of the genetic code
allowing gene transfer between species.
Diabetes in some individuals is due to destruction of cells in the pancreas that
secrete the hormone insulin. It can be treated by injecting insulin into the
blood. Porcine and bovine insulin, extracted from the pancreases of pigs and
cattle, have both been widely used. Porcine insulin has only one difference in
amino acid sequence from human insulin and bovine insulin has three
differences. Shark insulin, which has been used for treating diabetics in
Japan, has seventeen differences.
Despite the differences in the amino acid sequence between animal and
human insulin, they all bind to the human insulin receptor and cause lowering
of blood glucose concentration. However, some diabetics develop an allergy
to animal insulins, so it is preferable to use human insulin. In 1982 human
insulin became commercially available for the first time. It was produced
using genetically modified E. coli bacteria. Since then methods of production
have been developed using yeast cells and more recently safflower plants.
https://en.wikipedia.org/wiki/File:Inzul%C3%ADn.jpg
2.7.A2 Production of human insulin in bacteria as an example of the universality of the genetic code
allowing gene transfer between species.
• All living things use the same bases and the same genetic
code.
• Each codon produces the same amino acid in transcription
and translation, regardless of the species.
• So the sequence of amino acids in a polypeptide remains
unchanged.
• Therefore, we can take genes from one species and insert
them into the genome of another species.
We already make use of gene transfer in industrial production of insulin:
http://www.abpischools.org.uk/res/coResourceImport/modules/hormones/en-flash/geneticeng.cfm
“The
Genetic
Code
is
Universal”
2.7.A2 Production of human insulin in bacteria as an example of the universality of the genetic code
allowing gene transfer between species.
Restriction enzymes ‘cut’
the desired gene from the
genome.
E. coli bacteria contain
small circles of DNA called
plasmids.
These can be removed.
The same restriction enzyme
cuts into the plasmid.
Because it is the same restriction
enzyme the same bases are left
exposed, creating ‘sticky ends’
Ligase joins the sticky ends, fixing
the gene into the E. coli plasmid.
The recombinant plasmid is
inserted into the host cell. It now
expresses the new gene. An
example of this is human insulin
production.
2.7.A2 Production of human insulin in bacteria as an example of the universality of the genetic code
allowing gene transfer between species.
Restriction enzymes ‘cut’
the desired gene from the
genome.
E. coli bacteria contain
small circles of DNA called
plasmids.
These can be removed.
The same restriction enzyme
cuts into the plasmid.
Because it is the same restriction
enzyme the same bases are left
exposed, creating ‘sticky ends’
Ligase joins the sticky ends, fixing
the gene into the E. coli plasmid.
The recombinant plasmid is
inserted into the host cell. It now
expresses the new gene. An
example of this is human insulin
production.
“The Genetic Code is
Universal”
2.7.A2 Production of human insulin in bacteria as an example of the universality of the genetic code
allowing gene transfer between species.
Restriction enzymes ‘cut’
the desired gene from the
genome.
E. coli bacteria contain
small circles of DNA called
plasmids.
These can be removed.
The same restriction enzyme
cuts into the plasmid.
Because it is the same restriction
enzyme the same bases are left
exposed, creating ‘sticky ends’
Ligase joins the sticky ends, fixing
the gene into the E. coli plasmid.
The recombinant plasmid is
inserted into the host cell. It now
expresses the new gene. An
example of this is human insulin
production.
“The Genetic Code is
Universal”
Transcription & translation practice
• DNA: ATACGGAAGCTTC
*DNA to mRNA=Transcription
• mRNA: UAUGCCUUCGAAG
• Amino acid:*mRNA to amino acid=Translation
Tyr-Ala-Phe-Glu
Polypeptide!
Best animation:
https://www.youtube.com/watch?v=D
3fOXt4MrOM
Another one:
http://www.youtube.com/watch?v=erOP76_qL
WA
2.7.S1, 2.7.S3, 2.7.S4
1. Deduce the codon(s) that translate for Aspartate.
2. If mRNA contains the base sequence CUGACUAGGUCCGGA
a. deduce the amino acid sequence of the polypeptide
translated.
b. deduce the base sequence of the DNA antisense strand from
which the mRNA was transcribed.
3. If mRNA contains the base sequence ACUAAC deduce the base
sequence of the DNA sense strand.
2.7.S1, 2.7.S3, 2.7.S4
1. Deduce the codon(s) that translate for Aspartate.
GAU, GAC
2. If mRNA contains the base sequence CUGACUAGGUCCGGA
a. deduce the amino acid sequence of the polypeptide
translated.
Leucine + Threonine + Lysine + Arginine + Serine + Glycine
b. deduce the base sequence of the DNA antisense strand from
which the mRNA was(the
transcribed.
antisense strand is complementary to the
GACTGATCCAGGCCT
mRNA, but remember that uracil is replaced by
thymine)
3. If mRNA contains the base sequence ACUAAC deduce the base
sequence of the DNA sense strand.
ACTAAC
(the sense strand is the template for the mRNA the only
change is that uracil is replaced by thymine
2.7.S1, 2.7.S3, 2.7.S4
1. Deduce the codon(s) that translate for Aspartate.
2. If mRNA contains the base sequence CUGACUAGGUCCGGA
a. deduce the amino acid sequence of the polypeptide
translated.
b. deduce the base sequence of the DNA antisense strand from
which the mRNA was transcribed.
3. If mRNA contains the base sequence ACUAAC deduce the base
sequence of the DNA sense strand.
2.7.S1, 2.7.S3, 2.7.S4
1. Deduce the codon(s) that translate for Aspartate.
GAU, GAC
2. If mRNA contains the base sequence CUGACUAGGUCCGGA
a. deduce the amino acid sequence of the polypeptide
translated.
Leucine + Threonine + Lysine + Arginine + Serine + Glycine
b. deduce the base sequence of the DNA antisense strand from
which the mRNA was(the
transcribed.
antisense strand is complementary to the
GACTGATCCAGGCCT
mRNA, but remember that uracil is replaced by
thymine)
3. If mRNA contains the base sequence ACUAAC deduce the base
sequence of the DNA sense strand.
ACTAAC
(the sense strand is the template for the mRNA the only
change is that uracil is replaced by thymine
2.7.S1 Use a table of the genetic code to deduce which codon(s) corresponds to which amino acid.
2.7.S1, 2.7.S3, 2.7.S4
2.7.S1 Use a table of the genetic code to deduce which codon(s) corresponds to which amino acid.
2.7.S1, 2.7.S3, 2.7.S4
2.7.S1 Use a table of the genetic code to deduce which codon(s) corresponds to which amino acid.