Literature DB >> 20938980

Why are polar residues within the membrane core evolutionary conserved?

Kristoffer Illergård1, Anni Kauko, Arne Elofsson.   

Abstract

Here, we present a study of polar residues within the membrane core of alpha-helical membrane proteins. As expected, polar residues are less frequent in the membrane than expected. Further, most of these residues are buried within the interior of the protein and are only rarely exposed to lipids. However, the polar groups often border internal water filled cavities, even if the rest of the sidechain is buried. A survey of their functional roles in known structures showed that the polar residues are often directly involved in binding of small compounds, especially in channels and transporters, but other functions including proton transfer, catalysis, and selectivity have also been attributed to these proteins. Among the polar residues histidines often interact with prosthetic groups in photosynthetic- and oxidoreductase-related proteins, whereas prolines often are required for conformational changes of the proteins. Indeed, the polar residues in the membrane core are more conserved than other residues in the core, as well as more conserved than polar residues outside the membrane. The reason is twofold; they are often (i) buried in the interior of the protein and (ii) directly involved in the function of the proteins. Finally, a method to identify which polar residues are present within the membrane core directly from protein sequences was developed. Applying the method to the set of all human membrane proteins the prediction indicates that polar residues were most frequent among active transporter proteins and GPCRs, whereas infrequent in families with few transmembrane regions, such as non-GPCR receptors.
Copyright © 2010 Wiley-Liss, Inc.

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Year:  2010        PMID: 20938980     DOI: 10.1002/prot.22859

Source DB:  PubMed          Journal:  Proteins        ISSN: 0887-3585


  27 in total

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7.  Type IV pilins regulate their own expression via direct intramembrane interactions with the sensor kinase PilS.

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8.  Folding of Aquaporin 1: multiple evidence that helix 3 can shift out of the membrane core.

Authors:  Minttu T Virkki; Nitin Agrawal; Elin Edsbäcker; Susana Cristobal; Arne Elofsson; Anni Kauko
Journal:  Protein Sci       Date:  2014-05-14       Impact factor: 6.725

9.  Folding and Misfolding of Human Membrane Proteins in Health and Disease: From Single Molecules to Cellular Proteostasis.

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10.  Ionization Properties of Histidine Residues in the Lipid Bilayer Membrane Environment.

Authors:  Ashley N Martfeld; Denise V Greathouse; Roger E Koeppe
Journal:  J Biol Chem       Date:  2016-07-20       Impact factor: 5.157

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