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Neuronal loss of the pentose phosphate pathway in the living nervous system is causally linked to [NADPH] reduction and elevated oxidative stress.

Overview

Authors: Stephan Müller1, Nina Surina1, Andrés Köhler‐Solís1, Ioannis Nellas1, Astrid Fleige2, Sebastian Görtz2, Stefanie Schirmeier1
  1. Zoology and Animal Physiology, Faculty of Biology Technische Universität Dresden Dresden Germany
  2. Institute for Neuro‐ and Behavioral Biology; Faculty of Biology Universität Münster Münster Germany
Institutions: Technische Universität Dresden (Germany); University of Münster (Germany)
Journal: The Journal of physiology, volume 604, issue 10, pages 3825-3842
Dates: received 20 January 2025; accepted 18 February 2026; published online 15 March 2026; in print 15 May 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.1113/jp288582 · PMID 41832615 · PMCID PMC13178545 · OpenAlex W7136055184
Open access: hybrid, a free copy (OpenAlex)
Status: data only
Categories: drosophila (organism), cellular / molecular (subfield)
Methods: Spectral & time-frequency, Evoked potentials, Statistics, fMRI & imaging
Keywords: neurodegeneration, NADPH, oxidative stress, pentose phosphate pathway, reactive oxygen species
MeSH: NADP*, Neurons*, Oxidative Stress*, Pentose Phosphate Pathway*, Animals, Drosophila, Drosophila melanogaster, Hydrogen Peroxide, Reactive Oxygen Species (* major topic)
Journal subjects: Molecular and Cellular
Topic: Neurobiology and Insect Physiology Research (Cellular and Molecular Neuroscience, Neuroscience), according to OpenAlex
Funding: Deutsche Forschungsgemeinschaft (DFG) (SFB1009, SCHI1380/6‐1)
Citations: cited by 2 papers (Europe PMC); 59 references in the paper

Abstract

Abstract: Neurons are highly specialized cells that require large amounts of energy to function. Glial cells support neurons in many ways, including metabolically. In Drosophila, neuronal glycolysis has been found to be dispensable, as long as glial glycolysis is intact, a finding supporting a conservation of the astrocyte‐neuron‐lactate shuttle (i.e. ANLS)‐hypothesis. Neurons use glia‐derived lactate to fuel their highly oxidative metabolism. Nevertheless, they readily take up glucose. It has been hypothesized that neuronal glucose might be pre‐dominantly metabolized through the pentose phosphate pathway (PPP) rather than glycolysis to produce reduction equivalents in the form of NADPH to cope with the oxidative stress caused by a highly oxidative metabolism and prevent oxidative damage. We show that knockdown of components of the PPP in all neurons in Drosophila induces mild neurodegeneration, which can be rescued by antioxidant feeding. To directly link a putative loss of neuronal NADPH to elevated reactive oxygen species (ROS), we generated fly lines expressing biosensors for NADPH and H2O2 and developed methods to image the sensors in Drosophila neurons. Panneuronal PPP knockdown results in reduced neuronal NADPH and elevated H2O2 levels in larval tissue. In addition, multiparametric live imaging of fully differentiated neurons in the adult Drosophila brain shows decreased NADPH levels and increased ROS stress upon PPP knockdown. Even though the phenotypic consequences of elevated ROS are mild, these data demonstrate that loss of PPP, reduced NADPH levels and increased oxidative stress are indeed functionally linked in living tissue.

Significance Statement: The neuronal pentose phosphate pathway (PPP) has been linked to various phenotypes, including failures in long term memory formation (de Tredern et al., 2021). The PPP has long been postulated to play a neuro‐protective role by providing reduction equivalents in the form of NADPH (Tang, 2019). However, studies directly linking the oxidative phase of the PPP to NADPH concentrations and subsequently reactive oxygen species (ROS) detoxification are missing. Here, we demonstrate the use of genetically encoded fluorescent metabolite indicators in Drosophila and reveal a causal link between PPP activity, NADPH and ROS concentrations.

Key points: Neuronal pentose phosphate pathway (PPP) knockdown induces neurodegeneration that can be rescued by food‐derived antioxidants. Neuronal PPP deficiency results in reduced neuronal NADPH levels in living tissue. Neuronal PPP deficiency results in elevated neuronal H2O2 levels in living tissue and oxidative stress.

Reproduced under the paper's license (CC BY), from the paper cited above.

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Data

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Data availability statement

All raw data are available from the corresponding author upon reasonable request.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

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Version 1, 30 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 7 authors, 5 keywords, 9 MeSH terms, 1 funder, 58 references.

Cite

This paper

Müller, S., Surina, N., Köhler‐Solís, A., Nellas, I., Fleige, A., Görtz, S., & Schirmeier, S. (2026). Neuronal loss of the pentose phosphate pathway in the living nervous system is causally linked to [NADPH] reduction and elevated oxidative stress. The Journal of physiology, 604(10), 3825-3842. https://doi.org/10.1113/jp288582

BibTeX

@article{muller2026neuronal,
author = {Müller, Stephan and Surina, Nina and Köhler‐Solís, Andrés and Nellas, Ioannis and Fleige, Astrid and Görtz, Sebastian and Schirmeier, Stefanie},
title = {{Neuronal loss of the pentose phosphate pathway in the living nervous system is causally linked to [NADPH] reduction and elevated oxidative stress}},
journal = {The Journal of physiology},
year = {2026},
month = mar,
volume = {604},
number = {10},
pages = {3825--3842},
publisher = {Wiley},
issn = {0022-3751},
doi = {10.1113/jp288582},
url = {https://doi.org/10.1113/jp288582},
pmid = {41832615},
pmcid = {PMC13178545}
}

RIS

TY - JOUR
AU - Müller, Stephan
AU - Surina, Nina
AU - Köhler‐Solís, Andrés
AU - Nellas, Ioannis
AU - Fleige, Astrid
AU - Görtz, Sebastian
AU - Schirmeier, Stefanie
TI - Neuronal loss of the pentose phosphate pathway in the living nervous system is causally linked to [NADPH] reduction and elevated oxidative stress
T2 - The Journal of physiology
J2 - J Physiol
PY - 2026
DA - 2026/03/15
VL - 604
IS - 10
SP - 3825
EP - 3842
SN - 0022-3751
PB - Wiley
DO - 10.1113/jp288582
UR - https://doi.org/10.1113/jp288582
LA - en
ER -

CSL-JSON

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