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Chromatin Structure & Gene Expression The Histone Code

Chromatin Structure & Gene Expression The Histone Code

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Page 1: Chromatin Structure & Gene Expression The Histone Code

Chromatin Structure &Gene Expression

The Histone Code

Page 2: Chromatin Structure & Gene Expression The Histone Code

Structural Features of DNA

Page 3: Chromatin Structure & Gene Expression The Histone Code

The Genome is Organized into Chromosomes

Page 4: Chromatin Structure & Gene Expression The Histone Code

A. Chromatin fibers exploding from lysed nucleus

B. Metaphase Chromosome (folded fibers).

DNA-Protein Fibers Make up Chromatin

Page 5: Chromatin Structure & Gene Expression The Histone Code

Chromosomes Are made of Thick Chromatin Fibers

Page 6: Chromatin Structure & Gene Expression The Histone Code

Thick Fibers Can Unravel to Reveal Thin Fibers

Page 7: Chromatin Structure & Gene Expression The Histone Code

The Fundamental Chromatin Fiber is the 10 nm Fiber (DNA Associated With Nucleosomes)

30 nm fibers

10 nm fibers :“beads on a string”nucleosome

nucleosome

DNA

Page 8: Chromatin Structure & Gene Expression The Histone Code

Levels of DNA Packing Based on the Fundamental Fiber

Page 9: Chromatin Structure & Gene Expression The Histone Code

Probing the 10 nm Fiber With Nuclease

Page 10: Chromatin Structure & Gene Expression The Histone Code

Nucleosomes Are Composed of DNA and an Ocatamer of Four Histone Pairs + DNA

Page 11: Chromatin Structure & Gene Expression The Histone Code

Nucleosome Structure

DNA

H2B

H4 H3

H2A

Page 12: Chromatin Structure & Gene Expression The Histone Code

H2A Fold H2A/H2B Dimer

Page 13: Chromatin Structure & Gene Expression The Histone Code

Histones Assemble into Core Ocatamer

Page 14: Chromatin Structure & Gene Expression The Histone Code

Final Ocatamer Assembly

Page 15: Chromatin Structure & Gene Expression The Histone Code

Conformations for the 30 nm Fiber

Page 16: Chromatin Structure & Gene Expression The Histone Code

Some Chromatin Allows Access to DNABy Specific Binding Proteins (TF & Pol)

Page 17: Chromatin Structure & Gene Expression The Histone Code

Covalent Modification of the Histone Tails Can Alter DNA- Histone Interaction or “Mark” Nucleosomes

Acetylation (lys)

Methylation (Lys)

Phosphorylation (ser)

Ubiquination (Lys)

Page 18: Chromatin Structure & Gene Expression The Histone Code

Chromatin is Dynamic- Remodeling Complexes Alter Structure or Positioning on DNA

Page 19: Chromatin Structure & Gene Expression The Histone Code

A model for Dynamic Regulation of Chromatin & Access to DNA

Page 20: Chromatin Structure & Gene Expression The Histone Code

Chromatin Remodeling Complexes Like Sir Can Recognize Acetylated Histone Tails

Page 21: Chromatin Structure & Gene Expression The Histone Code

Heterochromatin Inactivates Specific Regions of Chromosomes With Defined Borders (Epigenetic Modification)

Page 22: Chromatin Structure & Gene Expression The Histone Code

Variegated Position Effects Occur When Normally Active Genes Become Heterochromatin~30-40 Loci modify PEV.

•Su(var) Genes suppress variagation.

•HDACs

•E(var) Genes enhance variagation

•Bromo & Chromodomain proteinsBromo domains bind Ac Chromo domains bind Me

Page 23: Chromatin Structure & Gene Expression The Histone Code

Histone Modification May Mark Nucleosomes as Heterochromatin

Page 24: Chromatin Structure & Gene Expression The Histone Code

Is There A Histone Modification Code?

Page 25: Chromatin Structure & Gene Expression The Histone Code

David Allis’ Model For The Histone Code

Page 26: Chromatin Structure & Gene Expression The Histone Code

Active Chromatin Can Become Extended in Looped Domains

Locus Control Region (LCR)

Page 27: Chromatin Structure & Gene Expression The Histone Code

Activation of Promoters By Acetylation & Phosporylation –The Standard Model

A = Activator bound to upstream reg. seq.

HAT = Histone Acetyl Transferase

P = Phosphate

Ac = Acetate

Ki = Kinase

Swi/SNF = Chromatin Remodeling Complex

T = TATA Box

M = Mediator

Page 28: Chromatin Structure & Gene Expression The Histone Code

ChIP Assay

Page 29: Chromatin Structure & Gene Expression The Histone Code

The Histone Code: What do we know for sure? The information required for proper gene

transcription is not just the promotors enhancers and transcription factors

Chromatin structure regulates gene expression Chromatin structure is regulated at different levels

Heterochromatin vs. Euchromatin Nucleosome structure at promoters and other regulatory

sequences Histone modification plays a role in the regulation of

chromatin structure Modification of transcription factors also plays a role We can’t read the code yet!