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Phosphoinositides are a group of phospholipids containing a glycerol backbone with two fatty acid chains and a phosphate attached to a myoinositol sugar ring. The inositol head group extends into the cytoplasm, where it is modified by adding phosphate groups to form phosphatidylinositol phosphates or PIPs.
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Related Experiment Video

Updated: Jun 27, 2025

Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
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Phosphate uptake in PhoX: Molecular mechanisms.

María Luz Perez Saura1, Cindy Lee Cajachagua2, Andrea Balan2

  • 1School of Science and Technology, Universidad Nacional de San Martin, 25 de Mayo y Francia, San Martín 1650, Buenos Aires, Argentina.

International Journal of Biological Macromolecules
|May 5, 2024
PubMed
Summary

The PhoX protein from Xanthomonas citri, a citrus canker pathogen, uses natural oscillations to bind phosphate with high affinity. This mechanism involves electrostatic attraction and hydrogen bonds, stabilizing the protein-phosphate complex.

Keywords:
Molecular dynamicsPhoXPhosphate binding proteinPhosphate uptake

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Identification of Inositol Phosphate or Phosphoinositide Interacting Proteins by Affinity Chromatography Coupled to Western Blot or Mass Spectrometry
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Area of Science:

  • Biochemistry
  • Structural Biology
  • Computational Biology

Background:

  • PhoX is a high-affinity phosphate-binding protein found in Xanthomonas citri, the causative agent of citrus canker.
  • Understanding phosphate binding mechanisms is crucial for studying phytopathogens and developing targeted interventions.

Purpose of the Study:

  • To elucidate the molecular mechanisms underlying the high-affinity phosphate binding of the PhoX protein.
  • To investigate the role of protein dynamics and electrostatic interactions in phosphate recognition.

Main Methods:

  • Molecular dynamics simulations were employed to observe protein behavior over time.
  • Computational analyses were performed to assess electrostatic potentials and hydrogen bonding interactions.
  • Normal mode analysis was used to study the protein's conformational flexibility.

Main Results:

  • PhoX exhibits natural oscillations along its global normal modes, enabling exploration of bound and unbound states.
  • A highly positive electrostatic potential on the PhoX surface attracts negatively charged phosphate ions.
  • Phosphate binding induces a closed conformation by forming hydrogen bonds and bridging the protein's two main domains, explaining high affinity.

Conclusions:

  • The PhoX protein's high phosphate-binding affinity is attributed to a dynamic mechanism involving conformational flexibility and specific electrostatic and hydrogen bonding interactions.
  • This study provides insights into the molecular basis of phosphate recognition in a key phytopathogen protein.