4.8 Article

Structure of the Arabidopsis Glucan Phosphatase LIKE SEX FOUR2 Reveals a Unique Mechanism for Starch Dephosphorylation

期刊

PLANT CELL
卷 25, 期 6, 页码 2302-2314

出版社

AMER SOC PLANT BIOLOGISTS
DOI: 10.1105/tpc.113.112706

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资金

  1. National Science Foundation CAREER Grant [MCB-1252345]
  2. National Institutes of Health [R01NS070899, P20GM103486]
  3. Kentucky Science and Energy Foundation [KSEF-2268-RDE-014]
  4. University of Kentucky Summer Research and Creativity Fellowship
  5. University of Kentucky College of Medicine startup funds
  6. ETH-Zurich
  7. Swiss-South African Joint Research Program Grant [IZ LS X3122916]
  8. Direct For Biological Sciences [1252345] Funding Source: National Science Foundation
  9. Div Of Molecular and Cellular Bioscience [1252345] Funding Source: National Science Foundation

向作者/读者索取更多资源

Starch is a water-insoluble, Glc-based biopolymer that is used for energy storage and is synthesized and degraded in a diurnal manner in plant leaves. Reversible phosphorylation is the only known natural starch modification and is required for starch degradation in planta. Critical to starch energy release is the activity of glucan phosphatases; however, the structural basis of dephosphorylation by glucan phosphatases is unknown. Here, we describe the structure of the Arabidopsis thaliana starch glucan phosphatase LIKE SEX FOUR2 (LSF2) both with and without phospho-glucan product bound at 2.3 angstrom and 1.65 angstrom, respectively. LSF2 binds maltohexaose-phosphate using an aromatic channel within an extended phosphatase active site and positions maltohexaose in a C3-specific orientation, which we show is critical for the specific glucan phosphatase activity of LSF2 toward native Arabidopsis starch. However, unlike other starch binding enzymes, LSF2 does not possess a carbohydrate binding module domain. Instead we identify two additional glucan binding sites located within the core LSF2 phosphatase domain. This structure is the first of a glucan-bound glucan phosphatase and provides new insights into the molecular basis of this agriculturally and industrially relevant enzyme family as well as the unique mechanism of LSF2 catalysis, substrate specificity, and interaction with starch granules.

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