Linkage of monovalent and divalent ion binding in the folding of the P4-P6 domain of the Tetrahymena ribozyme

Biochemistry. 2002 May 7;41(18):5799-806. doi: 10.1021/bi020042v.

Abstract

We have explored the linkage of monovalent and divalent ion binding in the folding of the P4-P6 domain of Tetrahymena thermophila ribozyme by examining the Mg2+-induced folding and the urea-induced denaturation of the folded state as a function of Na+ under equilibrium folding conditions using hydroxyl radical footprinting. These studies allowed a thermodynamic examination of eight discrete protection sites within P4-P6 that are involved in several tertiary structure contacts. Monovalent ions compete with Mg2+ ions in mediating P4-P6 folding. The urea denaturation isotherms demonstrated DeltaDeltaG values of >2 kcal x mol(-1) in experiments conducted in 10 versus 200 mM NaCl at a constant 10 mM MgCl2. However, the individual-site isotherms reported by footprinting revealed that larger than average changes in DeltaG values were localized to specific sites within the Mg2+-rich A-bulge. The competitive effects of monovalent ions were less when K+ rather than Na+ was the monovalent cation present. This result indicates the importance of the specific K+ binding sites that are associated with AA-platform structures to P4-P6 folding and stability. These site-specific footprinting data provide quantitative and site-specific measurements of the ion-linked stability for P4-P6 that are interpreted with respect to crystallographic data.

Publication types

  • Research Support, U.S. Gov't, P.H.S.

MeSH terms

  • Animals
  • Base Sequence
  • Catalysis
  • Cations, Divalent / metabolism*
  • Cations, Divalent / pharmacology
  • Cations, Monovalent / metabolism*
  • Cations, Monovalent / pharmacology
  • Magnesium / metabolism
  • Magnesium / pharmacology
  • Models, Molecular
  • Molecular Sequence Data
  • Nucleic Acid Conformation* / drug effects
  • Potassium / metabolism
  • Potassium / pharmacology
  • RNA, Catalytic / chemistry*
  • RNA, Catalytic / genetics
  • RNA, Catalytic / metabolism*
  • RNA, Transfer / chemistry
  • RNA, Transfer / genetics
  • RNA, Transfer / metabolism
  • Sodium / metabolism
  • Sodium / pharmacology
  • Tetrahymena / enzymology*
  • Tetrahymena / genetics*
  • Thermodynamics
  • Urea / pharmacology

Substances

  • Cations, Divalent
  • Cations, Monovalent
  • RNA, Catalytic
  • Urea
  • RNA, Transfer
  • Sodium
  • Magnesium
  • Potassium