Evidence That Nucleophile Deprotonation Exceeds Bond Formation in the HDV Ribozyme Transition State

Biochemistry. 2018 Jun 26;57(25):3465-3472. doi: 10.1021/acs.biochem.8b00031. Epub 2018 May 17.

Abstract

Steric constraints imposed by the active sites of protein and RNA enzymes pose major challenges to the investigation of structure-function relationships within these systems. As a strategy to circumvent such constraints in the HDV ribozyme, we have synthesized phosphoramidites from propanediol derivatives and incorporated them at the 5'-termini of RNA and DNA oligonucleotides to generate a series of novel substrates with nucleophiles perturbed electronically through geminal fluorination. In nonenzymatic, hydroxide-catalyzed intramolecular transphosphorylation of the DNA substrates, pH-rate profiles revealed that fluorine substitution reduces the maximal rate and the kinetic p Ka, consistent with the expected electron-withdrawing effect. In HDV ribozyme reactions, we observed that the RNA substrates undergo transphosphorylation relatively efficiently, suggesting that the conformational constraints imposed by a ribofuranose ring are not strictly required for ribozyme catalysis. In contrast to the nonenzymatic reactions, however, substrate fluorination modestly increases the ribozyme reaction rate, consistent with a mechanism in which (1) the 2'-hydroxyl nucleophile exists predominantly in its neutral, protonated form in the ground state and (2) the 2'-hydroxyl bears some negative charge in the rate-determining step, consistent with a transition state in which the extent of 2'-OH deprotonation exceeds the extent of P-O bond formation.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • DNA / chemistry
  • DNA / metabolism
  • Hepatitis D / virology*
  • Hepatitis Delta Virus / chemistry
  • Hepatitis Delta Virus / enzymology*
  • Hepatitis Delta Virus / metabolism
  • Humans
  • Nucleic Acid Conformation
  • Oligonucleotides / chemistry
  • Oligonucleotides / metabolism
  • Organophosphorus Compounds / chemistry
  • Organophosphorus Compounds / metabolism
  • Protons
  • RNA, Catalytic / chemistry
  • RNA, Catalytic / metabolism*
  • RNA, Viral / chemistry
  • RNA, Viral / metabolism*
  • Substrate Specificity

Substances

  • Oligonucleotides
  • Organophosphorus Compounds
  • Protons
  • RNA, Catalytic
  • RNA, Viral
  • phosphoramidite
  • DNA