Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study...

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Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene activators (acting on promoter, enhancer, chromatin etc), repressors 3. regulation of gene activators/repressors 4. integrated response.

Transcript of Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study...

Page 1: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Last Class: Gene Regulation

1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction

2. Gene regulation on DNAs, gene activators (acting on promoter, enhancer, chromatin etc), repressors

3. regulation of gene activators/repressors4. integrated response.

Page 2: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Posttranscriptional Regulations

Page 3: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Posttranscriptional regulation possibilities

Page 4: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Alternative RNA Splicing

Page 5: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Alternative Splicing of RNA of the Drosophila DSCAM gene (axon

guidance receptors directing growth cone localization)

Page 6: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Negative and Positive Controls of Alternative Splicing (active regulation)

sometimes, the splicing sequence is ambiguous, so constitutive random splicing

Page 7: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Antibodies (membrane-bound, secreted) in B

lymphocytecleavage regulated RNA

processing (CstF)

Page 8: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

RNA Editing (inserting Uracil at different sites and change encoding sequence)

Page 9: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Nuclear Export

Rev binds to rev response elelent (RRE), which

binds to nuclear export receptor (exportin 1) to regulate nuclear export even without splicing

a delay of virus infection symptom

Page 10: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Localization in cytoplasmalso determine the fate of RNAs

3’ UTR (untranslated region)

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3’ UTR in regulating LocalizationRed: intact 3’ UTR,

Green: 3’ UTR deleted

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Translational Regulation

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Negative Translational Controlaconitase inhibits ferritin production

Page 14: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Phosphorylation RegulationeIF-2B serving as GEF for eIF-2 and promote translation initiation

phosphorylation locked eIF-2 in inactive form

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Internal Ribosome Entry Site (IRES)

Page 16: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Two Mechanisms of mRNA decay

1. regular 3’ tail shortening followed by ‘5 decapping

and degradation2. endonucleolytic cleavage

and fast decapping and degrading

Page 17: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

The competition between mRNA translation and decay

initiation machinery and deadenylation proteins are all associated with 5’ and 3’

Page 18: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

With Iron, aconitase release enhances the production of ferritin to bind iron while destabilizes transferrin receptor mRNA to reduce the

transportation of more iron intracellularly

Page 19: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Stop Codon CheckingShould after all the exons (nonsense-mediated mRNA decaying)

Page 20: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

SiRNA MechanismRNase, ATP hydrolysis

and RNA helicase

Page 21: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Summary• Premature termination

• Alternative RNA Splicing

• 3’ cleavage and Poly A’ addition

• RNA editing

• Necleus transportation

• Localization of RNA at the cytoplasm

• Translational initiation

• Degradation

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• Cell Membranes

• Lipid Bilayers

• Cell Membrane

Page 23: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Cell Membrane Views

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Phospholipid Molecule

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Hydrophilic and Hydrophobic

Molecules interacting

differently with water

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Wedge-shaped lipids form micellesCylinder-shaped lipids form bilayers

Page 27: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Spontaneous sealing of phospholipid bilayer

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LiposomesProved the self sealing

process

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Phospholipid mobilityLateral diffusion:

Diffusion coefficient 10-8 cm2/sec

Migrate in seconds to cover the whole

surface

Flip-Flop: phospholipid translocators

Page 30: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Cis-double bonds affect packing

Saturated: packed and thick

Unsaturated : loose and thin

Phase transition: liquid to solid

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Cholesterol and Glycolipids

Page 32: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Function of Cholesterol

1. Provide structural support, prevent small molecule to pass

2. Prevent tight packing and transition

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Page 34: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Phospholipid types

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Microdomains on plasma membrane

Lipid rafts (~ 50nm)

ChoresterolSphingolipids (long saturated chains)Other proteins

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Asymmetrical distribution of

phospholipids and glycolipids

Protein kinase C (PKC) binds to

negatively charged

phosphotidylserine to be functional

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Phospholipids in cell signaling

PKCCalcium

GEF, AKT, migrating front

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Phospholipase Cleavage sites

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Phosphotidylserine exposed on outer surface as apoptosis signal

1. Phospholipid translocator2. Scramblase

Page 40: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Glycolipids

Gm1 Ganglioside with charge can serve as signal for lipid rafts, binds to Cholera toxin

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Summary•Lipid molecules: phospholipids, cholesterol, glycolipid, all amphipathic•Lipid bilayer, hydrophobic inside and hydrophilic outside•Subdomains on membrane, asymmetry important for functions•Phospholipids as signals

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Membrane Proteins

Glycosylphosphatidylinositol (GPI) anchor protein

Integral membrane proteinPeripheral membrane protein

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Fatty acid chain (acyl, N-terminal) or prenyl group modifications (C-terminal)

Or geranylgeranylOr palmitic acid

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Hydropathy PlotsIndex of hydrophobicity

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Membrane proteins are glycosylated

Sugar are added in the lumen of the ER and

Golgi apparatus, therefore, sugar are

outside of cell surface

Cytosol has reduced environment,

preventing disulfide bonds

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A detergent micelle

Detergent to solubilize and purify membrane proteins

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Solubilize membrane proteins with detergent

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Different DetergentsIonic (strong) or nonionic

(weak)

Page 49: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

Mild detergent for the solubilizing,

purification, and reconstitution of

membrane protein functions to study the

functions of membrane proteins in simplified

environment

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The study of membrane proteinsMost prominent example

red blood cells

No nucleus or internal organelles

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The preparation of red blood cell membranes

Page 52: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

15 major membrane proteins in red blood cells

Label them with impermeable dyes can

determine the location on layers

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Membrane proteins are diffusible

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Techniques to study protein motion on membrane(Fluorescence Recovery After Photobleaching

Page 55: Last Class: Gene Regulation 1. DNA-protein interaction, different motifs, techniques to study DNA-protein interaction 2. Gene regulation on DNAs, gene.

(Fluorescence Loss In Photobleaching)

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Proteins restrictionsTight Junction is one kind of them

Proteins and lipids on the outer layers can’t move to other compartments

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Protein distributions in a guinea pig sperm cell

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4 ways of protein restrictions1. self-assembly2. Tethered to macromolecules outside3. Tethered to macromolecules inside

4. Cell-cell adhesion