Quantum chemistry reveals thermodynamic principles of redox biochemistry. Academic Article uri icon

Overview

abstract

  • Thermodynamics dictates the structure and function of metabolism. Redox reactions drive cellular energy and material flow. Hence, accurately quantifying the thermodynamics of redox reactions should reveal design principles that shape cellular metabolism. However, only few redox potentials have been measured, and mostly with inconsistent experimental setups. Here, we develop a quantum chemistry approach to calculate redox potentials of biochemical reactions and demonstrate our method predicts experimentally measured potentials with unparalleled accuracy. We then calculate the potentials of all redox pairs that can be generated from biochemically relevant compounds and highlight fundamental trends in redox biochemistry. We further address the question of why NAD/NADP are used as primary electron carriers, demonstrating how their physiological potential range fits the reactions of central metabolism and minimizes the concentration of reactive carbonyls. The use of quantum chemistry can revolutionize our understanding of biochemical phenomena by enabling fast and accurate calculation of thermodynamic values.

authors

  • Jinich, Adrian
  • Flamholz, Avi
  • Ren, Haniu
  • Kim, Sung-Jin
  • Sanchez-Lengeling, Benjamin
  • Cotton, Charles A R
  • Noor, Elad
  • Aspuru-Guzik, Alán
  • Bar-Even, Arren

publication date

  • October 24, 2018

Research

keywords

  • Biochemical Phenomena
  • Models, Chemical
  • Oxidation-Reduction
  • Thermodynamics

Identity

PubMed Central ID

  • PMC6218094

Scopus Document Identifier

  • 85056270995

Digital Object Identifier (DOI)

  • 10.1021/ci100050t

PubMed ID

  • 30356318

Additional Document Info

volume

  • 14

issue

  • 10