烟酰胺单核苷酸
NAD+激酶
烟酰胺腺嘌呤二核苷酸
轴突
烟酰胺磷酸核糖转移酶
瓦勒氏变性
生物化学
细胞生物学
生物
酶
化学
神经科学
作者
M. Di Stefano,Isabel Nascimento-Ferreira,Giuseppe Orsomando,Valerio Mori,Jonathan Gilley,Rosalind Brown,Lucie Janečková,Mauricio E. Vargas,Leslie Worrell,Andrea Loreto,Joseph Tickle,Jane Patrick,Jamie Webster,Martina Marangoni,Francesco M. Carpi,Stefania Pucciarelli,Francesca Rossi,Weina Meng,Alvaro Sagasti,Richard R. Ribchester
摘要
NAD metabolism regulates diverse biological processes, including ageing, circadian rhythm and axon survival. Axons depend on the activity of the central enzyme in NAD biosynthesis, nicotinamide mononucleotide adenylyltransferase 2 (NMNAT2), for their maintenance and degenerate rapidly when this activity is lost. However, whether axon survival is regulated by the supply of NAD or by another action of this enzyme remains unclear. Here we show that the nucleotide precursor of NAD, nicotinamide mononucleotide (NMN), accumulates after nerve injury and promotes axon degeneration. Inhibitors of NMN-synthesising enzyme NAMPT confer robust morphological and functional protection of injured axons and synapses despite lowering NAD. Exogenous NMN abolishes this protection, suggesting that NMN accumulation within axons after NMNAT2 degradation could promote degeneration. Ectopic expression of NMN deamidase, a bacterial NMN-scavenging enzyme, prolongs survival of injured axons, providing genetic evidence to support such a mechanism. NMN rises prior to degeneration and both the NAMPT inhibitor FK866 and the axon protective protein WldS prevent this rise. These data indicate that the mechanism by which NMNAT and the related WldS protein promote axon survival is by limiting NMN accumulation. They indicate a novel physiological function for NMN in mammals and reveal an unexpected link between new strategies for cancer chemotherapy and the treatment of axonopathies.
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