Lac repressor

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Drag the structure with the mouse to rotate

Animation for Powerpoint® Slides

Here is an animated multi-gif Morph of the above morph, ready to insert into a Powerpoint®[1] slide. If the image below is not moving, reload this page (it stops after 50 cycles).

 
  • In Windows, simply drag the movie and drop it into the Powerpoint slide. You can then resize it and position it. The movie should play when you change the View to Slide Show ("project") the slide.
  • In Mac OSX, Ctrl-Click on the movie, then Save Image. In Mac Powerpoint, at the desired slide, use the Insert menu (at the top) and select Movie ..., then insert the saved .gif movie file. After inserting the movie, make sure the Toolbox is showing (controlled with an icon-button at the top of the window). Now you can resize and reposition the movie. Click in the movie in the slide to select it. Now, in the Toolbox/Formatting Palette, under Movie, check Loop Until Stopped. Now the movie should play when you change the View to Slide Show ("project") the slide.

Challenge Your Understanding

Here are some questions to challenge your understanding.

  1. Why does the lac repressor bind to DNA non-specifically?
  2. When the lac repressor binds non-specifically to DNA, what part of the DNA double helix does it bind to?
  3. Does DNA have a net charge, and if so, is it negative or positive in aqueous solution at pH 7?
  4. What kinds of chemical bonds are likely to be involved in non-specific binding of the repressor protein to DNA?
  5. Does specific binding of lac repressor to DNA disrupt any of the Watson-Crick hydrogen bonds between the base pairs in the DNA strands?
  6. How do proteins such as the lac repressor recognize specific nucleotide sequences in a DNA double helix?
  7. What kinds of chemical bonds are involved in specific binding of the repressor protein to DNA?
  8. Does the lac repressor recognize specific bases in the major or minor grooves of the DNA?
  9. When it recognizes its specific nucleotide sequence, how does the lac repressor stabilize a kink in the DNA double helix?

Answers are available on request to  . If you would like us to make the answers publically available within Proteopedia, please let us know. When contacting us, please give your full name, your position, institution or school, and location.


Content Attribution & Acknowledgement

The morphs displayed here were originally prepared by Eric Martz in 2004 for the page Lac Repressor Binding to DNA, within ProteinExplorer.Org.

Eric Martz thanks Remo Rohs for his kind and expert advice concerning the 2010-2011 updates to this article.

See Also


3D structures of Lac repressor

Updated on 04-May-2014

1osl – EcLAC + hexanediol - Escherichia coli
NMR models – EcLAC residues 2-331 (mutant) + effector
helix-turn-helix motif - EcLAC + effector
methods - EcLAC residues 62-330 + effector
1osl - EcLAC residues 62-330 + anti-inducer
NMR models – EcLAC
1l1m, NMR models - EcLAC (mutant)
Lac repressor morph methods - EcLAC headpiece – NMR
1jj2 - EcLAC residues 19-319
morphing – LAC coiled-coil - yeast

Lac repressor complex with DNA

Lac repressor morph methods, hydrogen bonds – EcLAC DNA-binding domain (mutant) + O1 operator –NMR
Methods - EcLAC DNA-binding domain (mutant) + O2 operator – NMR
1lbg - EcLAC DNA-binding domain (mutant) + O3 operator – NMR
1lbi - EcLAC DNA-binding domain (mutant) + GAL operator – NMR
PDB files - EcLAC DNA-binding domain (mutant) + DNA – NMR
1osl, 1l1m, 1lcd - EcLAC headpiece + DNA – NMR
1jwl - EcLAC + O1 operator + effector
1lbg - EcLAC + DNA + inducer
1efa - EcLAC residues 1-333 (mutant) + DNA


References & Notes

  1. ↑ Powerpoint is a registered trademark for a software package licensed by Microsoft Corp..