De novo NAD<sup>+</sup> biosynthetic impairment in acute kidney injury in humans.

Poyan Mehr, Ali; Tran, Mei T; Ralto, Kenneth M; Leaf, David E; Washco, Vaughan; Messmer, Joseph; Lerner, Adam; Kher, Ajay et al. · Nat Med · 2018

basic_science · Level V

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Abstract

Nicotinamide adenine dinucleotide (NAD<sup>+</sup>) extends longevity in experimental organisms, raising interest in its impact on human health. De novo NAD<sup>+</sup> biosynthesis from tryptophan is evolutionarily conserved yet considered supplanted among higher species by biosynthesis from nicotinamide (NAM). Here we show that a bottleneck enzyme in de novo biosynthesis, quinolinate phosphoribosyltransferase (QPRT), defends renal NAD<sup>+</sup> and mediates resistance to acute kidney injury (AKI). Following murine AKI, renal NAD<sup>+</sup> fell, quinolinate rose, and QPRT declined. QPRT<sup>+/-</sup> mice exhibited higher quinolinate, lower NAD<sup>+</sup>, and higher AKI susceptibility. Metabolomics suggested an elevated urinary quinolinate/tryptophan ratio (uQ/T) as an indicator of reduced QPRT. Elevated uQ/T predicted AKI and other adverse outcomes in critically ill patients. A phase 1 placebo-controlled study of oral NAM demonstrated a dose-related increase in circulating NAD<sup>+</sup> metabolites. NAM was well tolerated and was associated with less AKI. Therefore, impaired NAD<sup>+</sup> biosynthesis may be a feature of high-risk hospitalizations for which NAD<sup>+</sup> augmentation could be beneficial.

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