Evidence map›Paper›PMID 41615511›Full record

ArticleNeuromolecular medicine2026

Neuronal Subtype-Specific Expression of γ-Enolase: Its Role in Neuronal Differentiation.

Selena Horvat, Urša Pečar Fonović, Nace Zidar, Bojan Doljak, Janko Kos, Anja Pišlar

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Article in Neuromolecular medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

6 authors.

Selena HorvatDepartment of Pharmaceutical Biology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia.
Urša Pečar FonovićDepartment of Pharmaceutical Biology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia.
Nace ZidarDepartment of Pharmaceutical Chemistry, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia.
Bojan DoljakDepartment of Pharmaceutical Biology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia.
Janko KosDepartment of Pharmaceutical Biology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia.
Anja PišlarDepartment of Pharmaceutical Biology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, Ljubljana, 1000, Slovenia. anja.pislar@ffa.uni-lj.si.ORCID 0000-0002-1159-1024

Funding

The Slovenian Research and Innovation Agency P4-0127
6 · The paper itself

Abstract

Neuronal differentiation into specific subtypes is crucial for nervous system development and function, guided by neurotrophic factors. γ-Enolase, a neuron-specific glycolytic enzyme, exhibits neurotrophic-like properties and supports neuronal differentiation; however, its role in specific neuronal subtypes remains unknown. Here, we investigate the role of γ-enolase in differentiation dopaminergic-, cholinergic-, and adrenergic-like neuronal cells. Our results demonstrate that γ-enolase expression is significantly upregulated in differentiated cells, with the highest expression observed in cholinergic-like neurons. Full-length γ-enolase, compared to its truncated form, promoted enhanced neurite outgrowth and increased β-tubulin, a cytoskeletal marker. Conversely, silencing endogenous γ-enolase significantly reduced neurite length, confirming its essential role in driving neuronal morphological maturation. Furthermore, a γ-enolase-derived peptide corresponding to the active C-terminus of γ-enolase significantly promoted neurite outgrowth and increased β-tubulin expression, particularly in cholinergic-like neuronal cells. Notably, γ-enolase activity is regulated by cathepsin X, a lysosomal peptidase that cleaves γ-enolase at its C-terminus, reducing its neurotrophic effects. Confocal microscopy revealed increased co-localization of γ-enolase and cathepsin X in differentiated neuronal cells, emphasizing their interaction in cholinergic-like neurons. Inhibiting cathepsin X preserved active γ-enolase, promoted neuronal differentiation, and altered cytoskeletal marker expression. These findings suggest an important role for γ-enolase in cholinergic-like neuronal cells and propose cathepsin X as a regulatory modulator of γ-enolase activity, suggesting novel therapeutic strategies for neuroregeneration.

Indexed as

Nerve Tissue ProteinsNeurogenesisNeuronsPhosphopyruvate HydrataseAnimalsCell DifferentiationHumansNeuritesNeurodevelopmentNeuronal OutgrowthRatsRNA, Small InterferingTubulinUp-RegulationNerve Tissue ProteinsPhosphopyruvate HydrataseRNA, Small InterferingTubulinCathepsin x regulationEnolase isoformsNeuronal specific subtypeNeurotrophic activityγ-Enolase

Identifiers

PMID41615511
PMCPMC12858592

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