Exploring the Role of NCX1 and NCX3 in an In Vitro Model of Metabolism Impairment: Potential Neuroprotective Targets for Alzheimer’s Disease

Author:

Preziuso Alessandra1ORCID,Piccirillo Silvia1,Cerqueni Giorgia1ORCID,Serfilippi Tiziano1,Terenzi Valentina1,Vinciguerra Antonio1,Orciani Monia2ORCID,Amoroso Salvatore1,Magi Simona1,Lariccia Vincenzo1ORCID

Affiliation:

1. Department of Biomedical Sciences and Public Health-Pharmacology, School of Medicine, University “Politecnica delle Marche”, Via Tronto 10/A, 60126 Ancona, Italy

2. Department of Clinical and Molecular Sciences-Histology, School of Medicine, University “Politecnica delle Marche”, Via Tronto 10/A, 60126 Ancona, Italy

Abstract

Alzheimer’s disease (AD) is a widespread neurodegenerative disorder, affecting a large number of elderly individuals worldwide. Mitochondrial dysfunction, metabolic alterations, and oxidative stress are regarded as cooperating drivers of the progression of AD. In particular, metabolic impairment amplifies the production of reactive oxygen species (ROS), resulting in detrimental alterations to intracellular Ca2+ regulatory processes. The Na+/Ca2+ exchanger (NCX) proteins are key pathophysiological determinants of Ca2+ and Na+ homeostasis, operating at both the plasma membrane and mitochondria levels. Our study aimed to explore the role of NCX1 and NCX3 in retinoic acid (RA) differentiated SH-SY5Y cells treated with glyceraldehyde (GA), to induce impairment of the default glucose metabolism that typically precedes Aβ deposition or Tau protein phosphorylation in AD. By using an RNA interference-mediated approach to silence either NCX1 or NCX3 expression, we found that, in GA-treated cells, the knocking-down of NCX3 ameliorated cell viability, increased the intracellular ATP production, and reduced the oxidative damage. Remarkably, NCX3 silencing also prevented the enhancement of Aβ and pTau levels and normalized the GA-induced decrease in NCX reverse-mode activity. By contrast, the knocking-down of NCX1 was totally ineffective in preventing GA-induced cytotoxicity except for the increase in ATP synthesis. These findings indicate that NCX3 and NCX1 may differently influence the evolution of AD pathology fostered by glucose metabolic dysfunction, thus providing a potential target for preventing AD.

Funder

Ministero dell’Istruzione, dell’Università e della Ricerca

Ricerca Scientifica di Ateneo

Publisher

MDPI AG

Subject

General Agricultural and Biological Sciences,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology

Reference54 articles.

1. GBD 2019 Dementia Forecasting Collaborators (2022). Estimation of the global prevalence of dementia in 2019 and forecasted prevalence in 2050: An analysis for the Global Burden of Disease Study 2019. Lancet Public Health, 7, e105–e125.

2. Towards a future where Alzheimer’s disease pathology is stopped before the onset of dementia;Smets;Nat. Aging,2023

3. Neuroinflammation in Alzheimer’s disease: From pathogenesis to a therapeutic target;Pimplikar;J. Clin. Immunol.,2014

4. Molecular and cellular mechanisms underlying the pathogenesis of Alzheimer’s disease;Guo;Mol. Neurodegener.,2020

5. Metabolic Dysregulation Contributes to the Progression of Alzheimer’s Disease;Yan;Front. Neurosci.,2020

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