NAD homeostasis maintained by NMNAT2 supports vesicular glycolysis and fuels fast axonal transport in distal axons of cortical glutamatergic neurons in mice
Yang, S.; Niou, Z.-X.; Enriquez, A.; LaMar, J.; Huang, J.-Y.; Ling, K.; Jafar-Nejad, P.; Gilley, J.; Coleman, M. P.; Tennessen, J.; Rangaraju, V.; Lu, H.-C.
Show abstract
BackgroundBioenergetic maladaptations and axonopathy are often found in the early stages of neurodegeneration. Nicotinamide adenine dinucleotide (NAD), an essential cofactor for energy metabolism, is mainly synthesized by Nicotinamide mononucleotide adenylyl transferase 2 (NMNAT2) in CNS neurons. NMNAT2 mRNA levels are reduced in the brains of Alzheimers, Parkinsons and Huntingtons disease. Here we addressed whether NMNAT2 is required for axonal health of cortical glutamatergic neurons, whose far-projecting axons are vulnerable to neurodegenerative conditions. We also tested if NMNAT2 maintains axonal health by ensuring proper axonal ATP levels for axonal transport, a critical function of axons. MethodsWe generated mouse and cultured neuron models to determine the impact of NMNAT2 loss from cortical glutamatergic neurons on axonal transport, energetic metabolism, and morphological integrity. In addition, we determined if exogenous NAD supplementation or inhibiting NAD hydrolase sterile alpha and TIR motif-containing protein 1 (SARM1) prevented axonal deficits caused by NMNAT2 loss. Our study used a combination of genetic, molecular biology, immunohistochemistry, biochemistry, fluorescent time-lapse imaging, live imaging with optical sensors, and anti-sense oligos application. ResultsWe provide in vivo evidence that NMNAT2 in cortical glutamatergic neurons is required for axonal survival. Using in vivo and in vitro studies we demonstrate that NMNAT2 protects axons by ensuring the proper NAD-redox potential in distal axons of cortical neurons to support glycolysis on vesicular cargos, thus ensuring "onboard" ATP production fueling axonal transport. Exogenous NAD+ supplementation to NMNAT2 KO cortical neurons restores glycolysis and resumes fast axonal transport. Finally, we demonstrate both in vitro and in vivo that reducing the activity of SARM1, an NAD degradation enzyme, can reduce axonal transport deficits and suppress axon degeneration in NMNAT2 KO neurons. ConclusionNMNAT2 ensures axonal health by maintaining NAD redox potential in distal axons to ensure efficient vesicular glycolysis required for fast axonal transport.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Autophagic stress activates distinct compensatory secretory pathways in neurons 95%
- Parkinson's-linked LRRK2-G2019S derails AMPAR trafficking, mobility and composition in striatum with cell-type and subunit specificity 95%
- D-cysteine is an endogenous regulator of neural progenitor cell dynamics in the mammalian brain 95%
Similar papers in this journal
- Membrane-associated periodic skeleton regulates major forms of endocytosis in neurons through a signaling-driven positive feedback loop 95%
- VMAT2 dysfunction impairs vesicular dopamine uptake, driving its oxidation and α-synuclein pathology in DJ-1-linked Parkinson's disease neurons 95%
- C9orf72-derived arginine-containing dipeptide repeats associate with axonal transport machinery and impede microtubule-based motility 95%
Similar papers in this journal
- A Pathway For T3 Signaling In The Brain To Improve The Variable Effectiveness Of Therapy With L-T4 95%
- Heterozygosity for neurodevelopmental disorder-associated TRIO variants yields distinct deficits in behavior, neuronal development, and synaptic transmission in mice. 95%
- Biochemical and neurophysiological effects of deficiency of the mitochondrial import protein TIMM50 95%
Similar papers in this journal
- SARM1 is responsible for calpain-dependent dendrite degeneration in mouse hippocampal neurons 94%
- Up-regulation of cholesterol synthesis by lysosomal defects requires a functional mitochondrial respiratory chain 94%
- Alzheimer's disease BIN1 coding variants increase intracellular Aβ by interfering with BACE1 recycling 94%
Similar papers in this journal
- Mitochondrial dysfunction impairs human neuronal development and reduces neuronal network activity and synchronicity 94%
- Local translation in perisynaptic astrocytic processes is specific and regulated by fear conditioning 94%
- Neurotoxins subvert the allosteric activation mechanism of SARM1 to induce neuronal loss 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.