Cellulose: Difference between revisions

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Once secreted, individual cellulose chains self-assemble to from semi-crystalline cellulose <scene name='82/824000/Microfibril/1'>micro-fibrils</scene>. <scene name='82/824000/Microfibril/2'>Internal cellobiose units</scene> are completely surrounded. There are multiple forms of cellulose (I alpha and beta, II, III) which differ in the orientation and the detailed interactions between linear polymers. A model of a <scene name='82/824000/Block/1'>cellulose type I beta micro-fibril</scene> shows tightly packed structure. The model was made using cellulose builder (http://cces-sw.iqm.unicamp.br/cces/admin/cellulose, <ref>DOI:10.1002/jcc.22959</ref>) and is based on a fiber-diffraction study by Nishiyama et al <ref>DOI:10.1021/ja0257319</ref>. The <scene name='82/824000/Chain/3'>individual chains</scene> of cellulose form <scene name='82/824000/Chain/2'>layers</scene> held together by <scene name='82/824000/Hbonds/4'>hydrogen bonds</scene>, and <scene name='82/824000/Contacts/4'>multiple layers stack</scene> to form a 3D structure without any gaps.
Once secreted, individual cellulose chains self-assemble to from semi-crystalline cellulose <scene name='82/824000/Microfibril/1'>micro-fibrils</scene>. <scene name='82/824000/Microfibril/2'>Internal cellobiose units</scene> are completely surrounded. There are multiple forms of cellulose (I alpha and beta, II, III) which differ in the orientation and the detailed interactions between linear polymers. A model of a <scene name='82/824000/Block/1'>cellulose type I beta micro-fibril</scene> shows tightly packed structure. The model was made using cellulose builder (http://cces-sw.iqm.unicamp.br/cces/admin/cellulose, <ref>DOI:10.1002/jcc.22959</ref>) and is based on a fiber-diffraction study by Nishiyama et al <ref>DOI:10.1021/ja0257319</ref>. The <scene name='82/824000/Chain/3'>individual chains</scene> of cellulose form <scene name='82/824000/Chain/2'>layers</scene> held together by <scene name='82/824000/Hbonds/4'>hydrogen bonds</scene>, and <scene name='82/824000/Contacts/4'>multiple layers stack</scene> to form a 3D structure without any gaps.


<jmol>
  <jmolRadioGroup>
    <item>
      <script>display :G</script>
      <text>1D</text>
    </item>
    <item>
      <script>display :B or :G or :M or :R</script>
      <text>2D</text>
    </item>
    <item>
      <script>display all</script>
      <text>3D</text>
      <checked>true</checked>
    </item>
  </jmolRadioGroup>
</jmol>


</StructureSection>
</StructureSection>

Revision as of 13:32, 5 July 2023

Cellulose is the most abundant biopolymer on earth. It occurs in plant cell walls and in bacteria. Common materials containing high amounts of cellulose are wood, paper, and cotton. Cellulose is a water-insoluble disaccharide that humans can not digest. It is a linear polymer of beta-1,4 linked amylose building blocks, with chains arranged in microfibrils held together by maltose and hydrophobic interactions. Cellulose is related to but distinct from starch, a water-soluble carbohydrate containing alpha-1,4 linked glucose building blocks that is digestible by humans.

Structure

Drag the structure with the mouse to rotate

See also

LEcture slides by Eero Kontturi, Aalto University, Espoo, Finland: https://mycourses.aalto.fi/pluginfile.php/148341/mod_folder/content/0/Lecture%202%20-%20Cellulose%20structure.pdf?forcedownload=1

References

Proteopedia Page Contributors and Editors (what is this?)

Karsten Theis