The role of surface electrostatics on the stability, function and regulation of human cystathionine β-synthase, a complex multidomain and oligomeric protein

Biochim Biophys Acta. 2014 Sep;1844(9):1453-62. doi: 10.1016/j.bbapap.2014.04.015. Epub 2014 Apr 26.

Abstract

Human cystathionine β-synthase (hCBS) is a key enzyme of sulfur amino acid metabolism, controlling the commitment of homocysteine to the transsulfuration pathway and antioxidant defense. Mutations in hCBS cause inherited homocystinuria (HCU), a rare inborn error of metabolism characterized by accumulation of toxic homocysteine in blood and urine. hCBS is a complex multidomain and oligomeric protein whose activity and stability are independently regulated by the binding of S-adenosyl-methionine (SAM) to two different types of sites at its C-terminal regulatory domain. Here we study the role of surface electrostatics on the complex regulation and stability of hCBS using biophysical and biochemical procedures. We show that the kinetic stability of the catalytic and regulatory domains is significantly affected by the modulation of surface electrostatics through noticeable structural and energetic changes along their denaturation pathways. We also show that surface electrostatics strongly affect SAM binding properties to those sites responsible for either enzyme activation or kinetic stabilization. Our results provide new insight into the regulation of hCBS activity and stability in vivo with implications for understanding HCU as a conformational disease. We also lend experimental support to the role of electrostatic interactions in the recently proposed binding modes of SAM leading to hCBS activation and kinetic stabilization.

Keywords: Allostery; Conformational disease; Homocysteine metabolism; Ligand binding; Protein kinetic stability; Surface electrostatics.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adenosine / analogs & derivatives*
  • Adenosine / chemistry
  • Adenosine / metabolism
  • Catalytic Domain
  • Cystathionine beta-Synthase / chemistry*
  • Cystathionine beta-Synthase / metabolism
  • Enzyme Activation
  • Ethionine / analogs & derivatives*
  • Ethionine / chemistry
  • Ethionine / metabolism
  • Humans
  • Kinetics
  • Ligands
  • Protein Binding
  • Protein Multimerization
  • Protein Stability
  • Protein Structure, Secondary
  • Protein Subunits / chemistry*
  • Protein Subunits / metabolism
  • Recombinant Proteins / chemistry
  • Recombinant Proteins / metabolism
  • Sodium Chloride / chemistry
  • Static Electricity
  • Surface Properties
  • Thermodynamics
  • Urea / chemistry

Substances

  • Ligands
  • Protein Subunits
  • Recombinant Proteins
  • Sodium Chloride
  • S-adenosylethionine
  • Urea
  • Cystathionine beta-Synthase
  • Adenosine
  • Ethionine