NMNAT2 Functional Landscape and Localization in Programmed Axon Degeneration

Why is NMNAT2 (and the NAD-NMNAT2-SARM1 axis) important? Axon loss is a common and early driver of disability across neurodegenerative diseases, peripheral neuropathies, traumatic injury, and neurotoxic chemotherapy. A major conceptual advance from the Wallerian degeneration research field is that axons can execute an intrinsic self-destruction program (programmed axon degeneration) that is actively suppressed in healthy axons. NMNAT2 acts as the central endogenous axon maintenance factor in this system: it is highly labile; it must be continuously delivered from the soma into axons; and when its levels fall, axon degeneration is triggered through activation of SARM1, an NAD-consuming enzyme. This makes NMNAT2 a mechanistically grounded therapeutic node: stabilizing it, improving axonal delivery, or blocking downstream SARM1 can strongly preserve axons in diverse injury and disease contexts. NMNAT2 is a short-lived axonal NAD biosynthetic enzyme that maintains a low NMN:NAD ratio to restrain the executioner SARM1, thereby preserving axon integrity. This review integrates NMNAT2's localization-dependent pools, turnover mechanisms, upstream stressors, downstream SARM1 signaling, and engineered and disease-associated variants. A localization-aware representation of NMNAT2's functions, trafficking, proteostatic regulation, upstream stressors, and genetic variants should enable targeted experimental design and therapeutic hypothesis generation aimed at stabilizing axons. Here the functional landscape and localization of NMNAT2 in neurodegeneration is examined, ending with gaps identified in the literature and strategies to address these.

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Publication Details

Journal
The Neuroscientist
Published
2026-08-25
DOI
https://doi.org/10.1177/10738584261476959
Primary Topic
Sirtuins and Resveratrol in Medicine
Type
article
Field-Weighted Citation Impact
0.00

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article

NMNAT2 Functional Landscape and Localization in Programmed Axon Degeneration

Flora Hui, Pete A. Williams, Andrea Brancale, E. J. Hopkins et al.
The Neuroscientist
Sirtuins and Resveratrol in Medicine
article

NMNAT2 Functional Landscape and Localization in Programmed Axon Degeneration

Flora Hui, Pete A. Williams, Andrea Brancale, E. J. Hopkins, Alan Nicol
article en

Abstract

Why is NMNAT2 (and the NAD-NMNAT2-SARM1 axis) important? Axon loss is a common and early driver of disability across neurodegenerative diseases, peripheral neuropathies, traumatic injury, and neurotoxic chemotherapy. A major conceptual advance from the Wallerian degeneration research field is that axons can execute an intrinsic self-destruction program (programmed axon degeneration) that is actively suppressed in healthy axons. NMNAT2 acts as the central endogenous axon maintenance factor in this system: it is highly labile; it must be continuously delivered from the soma into axons; and when its levels fall, axon degeneration is triggered through activation of SARM1, an NAD-consuming enzyme. This makes NMNAT2 a mechanistically grounded therapeutic node: stabilizing it, improving axonal delivery, or blocking downstream SARM1 can strongly preserve axons in diverse injury and disease contexts. NMNAT2 is a short-lived axonal NAD biosynthetic enzyme that maintains a low NMN:NAD ratio to restrain the executioner SARM1, thereby preserving axon integrity. This review integrates NMNAT2's localization-dependent pools, turnover mechanisms, upstream stressors, downstream SARM1 signaling, and engineered and disease-associated variants. A localization-aware representation of NMNAT2's functions, trafficking, proteostatic regulation, upstream stressors, and genetic variants should enable targeted experimental design and therapeutic hypothesis generation aimed at stabilizing axons. Here the functional landscape and localization of NMNAT2 in neurodegeneration is examined, ending with gaps identified in the literature and strategies to address these.

The Neuroscientist
The University of Melbourne (AU), Karolinska Institutet (SE), Centre for Eye Research Australia (AU), S:t Eriks Ögonsjukhus (SE), University of Chemistry and Technology, Prague (CZ)
BrightFocus Foundation, Vetenskapsrådet, European Research Council
Openalex Percentile: Top 13%
Sirtuins and Resveratrol in Medicine
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