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Franklin’s photo below proved model on left to be correct for DNA Watson Cric k Frankl in Wilkin s Pauling
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Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Jan 02, 2016

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Page 1: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Franklin’s photo below proved model on left to be correct for DNA

WatsonCrick

Franklin

Wilkins

Pauling

Page 2: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Most important scientific paper in

Biology in last 100 years

First time DNA double helix seen in print

By Watson and Crick,

1953

Page 3: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

2 April 1953MOLECULAR STRUCTURE OF NUCLEIC ACIDS

A Structure for Deoxyribose Nucleic Acid 

“We wish to suggest a structure for the salt of deoxyribose nucleic acid (D.N.A.). This structure has novel features which are of

considerable biological interest.”

From the original Watson and Crick article – first published “double helix” diagram

Page 4: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Proof of double helix

Page 5: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Summary of a few people involved with DNA:

Pauling and Corey – “telephone pole” model for DNA

Franklin – x-ray photos proved Pauling wrong

Wilkins – gave x-rays to Watson and Crick

Watson, Crick, Wilkins – Nobel Prizes for DNA structure

Watson & Crick Pauling and Corey

Page 6: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Rosalind Franklin Lise Meitner

First to discover structure of DNA

First to describe the physics to split the atom

Nobel Prize

Otto Hahn

Nobel Prizes

06

Page 7: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Basic Terms:DNA Nucleotide (monomer)

Subcomponents of nucleotide

sugar = deoxyribose

phosphate

bases – 4 of them

adenine (A) guanine (G)cytosine (C)thymine (T)

Nucleic Acid (polymer) – chain of nucleotides

Double helix – two chains of nucleic acids

Page 8: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

PPPPP S S S S S

B B B B B

Nucleic acid (polymer) = chain of nucleotides (monomers)

Base = A, G, C, Tphosphate

sugar

Nucleotide (DNA or RNA)

B

SP

Page 9: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Nucleotide

Sugar phosphate base Nucleic acid

Double helix of nucleic acid

Page 10: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Base Pairing in DNA double helix

G-C

A-T

C-G

T-A

Page 11: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Only one base pairing is possible

Page 12: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

(a)

Nucleosome = protein

+ DNA

DNA

Nucleosome

Protein

Page 13: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Nucleosomes

Page 14: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Fig. 13.11

Heterochromatin = inactive DNA = condensed

Euchromatin = active DNA = decondensed

Nucleosome

DNA

Page 15: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA Replication

Page 16: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA replication:

One double helix forms two identical double helices

Page 17: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Double Helix separates

New strands forms by base pairing

Page 18: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

T A C A T G

A

T

G T

A C

Double helix separates

Page 19: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

New nucleotides are added to the “old” or original DNA

nucleotides by base pairing with the

help of enzymes (not shown here)

Base pairing

Page 20: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Fig. 11.08

Mutant normal

Page 21: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Protein Synthesis

Page 22: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Protein gives life structure

Protein gives life function

Amino acid sequence gives protein its structure and function

Question: How is amino acid sequence determined?

Review

Page 23: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Gene = section of DNA that codes for amino acid sequence in a protein

Yeast Fruit Fly Worm Green Plant

6034 genes 13,061 genes 19,099 genes 25,000 genes

Page 24: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA

(m)RNA (copy)

Protein

Transcription

Translation

Page 25: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Overview

Retire already!!!

Page 26: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Base pairing is the genetic code

G-C

C-G

A-T

T-A

Sugar–phosphate backbone

Page 27: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA double helix separates

RNA nucleotides attach to DNA

Base pairing makes RNA copy of DNA

T replaced by U

Page 28: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Transcription = (m)RNA copy of one side of DNA

Page 29: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Transcription of mRNA

mRNA transcript

DNA

DNA

Page 30: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Codon = three RNA nucleotides = code for particular amino acid

Page 31: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Translation – conversion of mRNA nucleotide sequence (codons) into amino acid sequence of protein

Page 32: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Codon – group of three mRNA nucleotides

Each amino acid has at least one specific codon.

Alanine (Ala) has the codon GCU.

Glycine has the codon GGU

Tyrosine has the codon UAU

Page 33: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Codon = three RNA nucleotides = code for particular amino acid

review

Page 34: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Codon 1 Codon 2 Codon 3 Codon 4 Codon 5 Codon 6

Transcribed strand

Nontranscribed strand

3’

5’

TranscriptionDNA

Polypeptide

Translation

Translation = mRNA codons place amino acids in proper order

review

Page 35: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Human skin

UV-AUV-B

Sun screen

products

Page 36: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

A C G T T C C A

T G C A A G G T

A C G T T C C A

T G C A A G G T

Thymine Dimer mutation DNA from U.V. light

UV light

Page 37: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Thymine dimer

Thymine dimer removed DNA repair enzymes

New DNA replaces hole

left by damaged DNA

Page 38: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.
Page 39: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Every cell in the body has the same DNA, but each specific type of cell makes proteins unique to those cells?

In other words every cell in your body has the exact same book of blueprints but only certain pages are read in certain cells.

Page 40: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

http://www.dynamist.com/aaa/blastocyst.gif

Human embryos are totipotent = can become any cell in the human body

Why?

because it has DNA to make every cell in the body.

Page 41: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

6 day old embryo is totipotent –

produce all cells

4 week old embryo is

pluripotent – produce most

cells

Page 42: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Salamander – many tissues can be regenerated if damaged.

Page 43: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

http://www.luc.edu/depts/biology/dev/regen.gif

Salamander can re-grow new limbs because adult stem cells behave like embryonic cells.

Page 44: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Heterochromatin - inactive

Euchromatin - active

Nucleosome

DNA

Transcription of DNA to make new leg

Salamander leg cells damaged

Page 45: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Polymerase Chain Reaction

Page 46: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Polymerase Chain Reaction (PCR)

DNA replication

After 20 replications (a few hours) – over 1,000,000 helices formed

Small amount of DNA left at crime scene

Page 47: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Restriction enzyme (Eco R1) cuts DNA into fragments

DNA

DNA

Page 48: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Fragments (-) migrate through gel because of electric current

DNA fragments loaded into wells in gel (like Jell-O)

Page 49: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA fragments have (-) charge

(+) (-)

Page 50: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

DNA fingerprinting – compares fragments of DNA

formed by restriction enzymes

Like a barcode

Page 51: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.
Page 52: Franklin’s photo below proved model on left to be correct for DNA Watson Crick Franklin Wilkins Pauling.

Father #1Baby’s DNA Father #2