Correlation Engine 2.0
Clear Search sequence regions


  • anions (1)
  • cellular (1)
  • cytosol (1)
  • deuterium (4)
  • electron transfer (2)
  • electron transport (1)
  • homeostasis (1)
  • humans (1)
  • mammals (1)
  • nad (1)
  • nad (4)
  • nadp (2)
  • nucleotides (1)
  • organelles (1)
  • redox (2)
  • Sizes of these terms reflect their relevance to your search.

    Oxidation-reduction (redox) reactions are ubiquitous in biology and typically occur in specific subcellular compartments. In cells, the electron transfer between molecules and organelles is commonly facilitated by pyridine nucleotides such as nicotinamide adenine dinucleotide phosphate (NADPH) and nicotinamide adenine dinucleotide (NADH). While often taken for granted, these metabolic reactions are critically important for maintaining redox homeostasis and biochemical potentials across membranes. While 13C tracing and metabolic flux analysis (MFA) have emerged as powerful tools to study intracellular metabolism, this approach is limited when applied to pathways catalyzed in multiple cellular compartments. To address this issue, we and others have applied 2H (deuterium) tracers to observe transfer of labeled hydride anions, which accompanies electron transfer. Furthermore, we have developed a reporter system for indirectly quantifying NADPH enrichment in specific subcellular compartments. Here, we provide a detailed description of 2H tracing applications and the interrogation of mitochondrial versus cytosolic NAD(P)H metabolism in cultured mammalian cells. Specifically, we describe the generation of reporter cell lines that express epitope-tagged R132H-IDH1 or R172K-IDH2 and produce (D)2-hydroxyglutarate in a doxycycline-dependent manner. These tools and methods allow for quantitation of reducing equivalent turnover rates, the directionality of pathways present in multiple compartments, and the estimation of pathway contributions to NADPH pools.

    Citation

    Esther W Lim, Seth J Parker, Christian M Metallo. Deuterium Tracing to Interrogate Compartment-Specific NAD(P)H Metabolism in Cultured Mammalian Cells. Methods in molecular biology (Clifton, N.J.). 2020;2088:51-71

    Expand section icon Mesh Tags

    Expand section icon Substances


    PMID: 31893370

    View Full Text