Z-DNA: Difference between revisions

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Z-DNA binding proteins have common structural characteristics. The binding domains of these proteins can substitute one another and thus can act as competitive inhibitors against one another. As explained above, disruption in the Z-DNA binding region of E3L reduces its pathogenicity. All these observations are important pointers towards the biological importance of Z-DNA.<ref name ='Wang'>PMID:17485386</ref>
Z-DNA binding proteins have common structural characteristics. The binding domains of these proteins can substitute one another and thus can act as competitive inhibitors against one another. As explained above, disruption in the Z-DNA binding region of E3L reduces its pathogenicity. All these observations are important pointers towards the biological importance of Z-DNA.<ref name ='Wang'>PMID:17485386</ref>
</StructureSection>
</StructureSection>
__NOTOC__
== Movie Depicting ADAR1 binding to Z-DNA ==
== Movie Depicting ADAR1 binding to Z-DNA ==
<qt>file=Movie3_Z-DNA.mov|width=320|height=280|autoplay=false|controller=true</qt>
<qt>file=Movie3_Z-DNA.mov|width=320|height=280|autoplay=false|controller=true</qt>

Revision as of 12:50, 25 February 2015

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Movie Depicting ADAR1 binding to Z-DNA

<qt>file=Movie3_Z-DNA.mov|width=320|height=280|autoplay=false|controller=true</qt>

Comparison of the three helices and helical parameters of DNA

Sources[1]

A-DNA

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B-DNA

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Z-DNA

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Parameter A-DNA B-DNA Z-DNA
Helix sense right-handed right-handed left-handed
Residues per turn 11 10.5 12
Axial rise [Å] 2.55 3.4 3.7
Helix pitch(°) 28 34 45
Base pair tilt(°) 20 −6 7
Rotation per residue (°) 33 36 -30
Diameter of helix [Å] 23 20 18
Glycosidic bond configuration<br\>dA,dT,dC<br\>dG <br\>anti<br\>anti <br\>anti<br\>anti <br\>anti<br\>syn
Sugar pucker<br\>dA,dT,dC<br\>dG <br\>C3'-endo<br\>C3'-endo <br\> C2'-endo<br\>C2'-endo <br\>C2'-endo<br\>C3'-endo
Intrastrand phosphate-phosphate distance [Å] <br\>dA,dT,dC<br\>dG <br\>5.9<br\>5.9 <br\>7.0<br\>7.0 <br\>7.0<br\> 5.9
Sources:[2][3][4]

3D structures of Z-DNA

Updated on 25-February-2015

2acj, 1qbj – ZDNA hexamer CGCGCG
1qbj – ZDNA hexamer CGCGCG + hADAR1 Zα domain - human
2heo - ZDNA hexamer CGCGCG + Z-DNA-binding protein Zα domain – mouse
2eyi - ZDNA hexamer CGCGCG + Z-DNA-binding protein Zβ domain
1j75 - ZDNA hexamer CGCGCG + DLM-1 Zα domain

Additional Resources

For additional information, see: Nucleic Acids

References

  1. ↑ https://203.129.231.23/indira/nacc/
  2. ↑ Rich A, Nordheim A, Wang AH. The chemistry and biology of left-handed Z-DNA. Annu Rev Biochem. 1984;53:791-846. PMID:6383204 doi:https://dx.doi.org/10.1146/annurev.bi.53.070184.004043
  3. ↑ Wang AH, Quigley GJ, Kolpak FJ, Crawford JL, van Boom JH, van der Marel G, Rich A. Molecular structure of a left-handed double helical DNA fragment at atomic resolution. Nature. 1979 Dec 13;282(5740):680-6. PMID:514347
  4. ↑ Sinden, Richard R (1994-01-15). DNA structure and function (1st ed.). Academic Press. pp. 398. ISBN 0-12-645750-6.