🧬 SinoBioData Academic Portal
Open AccessDOI: 10.1186/s13287-026-04965-yOriginal Research

Targeting p75NTR activity alleviates the neurotoxic effect of high glucose on iPSC-derived dopaminergic neurons

🇨🇳 Original Chinese Title: Targeting p75NTR activity alleviates the neurotoxic effect of high glucose on iPSC-derived dopaminergic neurons

Konstantina Chanoumidou¹,Ioanna Zota¹,Maria Anna Papadopoulou¹,Chrystalla Konstantinou¹,Alexandros Tsimpolis¹,Electra Tsagliotis¹,Maria Tziortziou¹,Katerina Ntarntani¹,Anne Grünewald¹,Matthieu David Lavigne¹,Achille Gravanis¹,Ioannis Charalampopoulos¹

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas (IMBB-FORTH)

Read Executive PreviewQuick FAQ
Targeting p75NTR activity alleviates the neurotoxic effect of high glucose on iPSC-derived dopaminergic neurons
Graphical Abstract / Figure
Published In
Stem Cell Research & Therapy
Published:2026Edition:Vol. 17, NoneCitation:Konstantina Chanoumidou et al. (2026), Stem Cell Research & Therapy
Impact FactorPremier Chinese Biomedical Journal indexed in SinoBioData: Stem Cell Research & Therapy (干细胞研究与转化).
Sponsored Research Partner

Key Takeaways & Executive Findings

  • • High glucose induces DNA damage, JNK activation, and cell death in iPSC-derived dopaminergic neurons, mimicking hyperglycemic neurotoxicity. • The pro-NGF/p75NTR axis is upregulated under hyperglycemic conditions, and pharmacological inhibition of p75NTR rescues neuronal death, identifying p75NTR as a key mediator. • Glucose overload sensitizes neurons to 6-OHDA toxicity, an effect reversed by p75NTR blockade, suggesting a link between diabetes and Parkinson's disease vulnerability. • The synthetic NGF mimetic BNN27 protects neurons via p75NTR and TrkA receptors, offering a potential therapeutic strategy for diabetic neurodegeneration.
Sponsored Research Highlight

Abstract

Background: Hyperglycemia, a hallmark of diabetes mellitus, is a metabolic condition that highly affects the nervous system. While evidence from epidemiological and animal studies links diabetes to dopaminergic dysfunction and an increased risk of Parkinson’s disease, the underlying mechanisms remain unclear. Here, we examined the effects of high glucose on human iPSC-derived dopaminergic neurons and glial cells to better understand the pathogenic alterations that lead to neurotoxicity. Previous implication of neurotrophins in the neurological manifestations of diabetes prompted us to focus on the role of p75NTR neurotrophin receptor (p75NTR) in dopaminergic neurodegeneration under hyperglycemic conditions. Methods: iPSC-derived dopaminergic neurons, astrocytes and microglia were treated with high glucose (50mM, 100mM) for 48 h to simulate hyperglycemia. Cytotoxicity assays, RNA sequencing and DNA damage assessments were employed to investigate the pathological alterations induced by high glucose exposure in neurons. Pharmacological targeting of p75NTR activity allowed investigation of its involvement in glucose neurotoxicity. Glial-mediated neurotoxicity was evaluated using conditioned media and inflammatory marker analysis. Results: High glucose treatment led to DNA damage, activation of JNK signaling and cell death in neurons. Importantly, we observed upregulation of p75NTR and its pro-apoptotic ligand pro-NGF, suggesting activation of the pro-NGF/p75NTR axis in high glucose-treated neurons. Inhibition of p75NTR activity rescued neuronal cell death, identifying p75NTR as a central mediator of glucose neurotoxicity. Furthermore, glucose overload sensitized neurons to 6-hydroxydopamine (6-OHDA), increasing their vulnerability to neurotoxic insults—an effect reversed by p75NTR blockade. Treatment with BNN27, a synthetic NGF mimetic, prevented neuronal loss through p75NTR and TrkA receptors, suggesting neurotrophin signaling as a potential therapeutic target for combating high glucose-induced neuronal damage. Finally, we demonstrated the contribution of glial cells to neurodegeneration since high glucose

1. Introduction

Hyperglycemia, a defining feature of diabetes mellitus (DM), is a metabolic condition that highly affects the nervous system accelerating neurodegeneration. Although the connection between DM and Alzheimer’s disease is well documented [9], its association with Parkinson’s Disease (PD) is still largely unclear. Growing evidence links DM to dopaminergic neurodegeneration and increased risk of PD [10, 21, 46, 89]. Animal models and patients with DM show striatal dopaminergic dysfunction, altered dopamine neurotransmission and have increased risk for parkinsonian symptoms [23, 47, 68]. However, the mechanistic interlink between the two disorders remains unclear impairing the development of neuroprotective therapies.

Glucose is the main source of energy for the brain. Both preclinical and clinical evidence suggest that elevated glucose levels can have detrimental effects on neurons. Preclinical studies have demonstrated that high glucose leads to neuronal injury, synaptic dysfunction and changes in the brain [58, 77, 92]. These findings are supported by clinical studies linking hyperglycemia and DM with brain atrophy, reduced cortical thickness and increased risk of dementia [22, 59, 63]. Glucose neurotoxicity has been linked to mitochondrial dysfunction, oxidative stress and accumulation of AGEs [84], mechanisms that are also common with many neurodegenerative disorders. Additionally, diabetes leads to systemic inflammation, changes in blood brain barrier (BBB) integrity and gliosis in the brain [50]. Streptozotocin (STZ)-treated mice display increased brain sensitivity to peripheral LPS-induced inflammation [50] while STZ treatment in the rotenone model of PD activates microglia and eventually worsens neurodegeneration and motor symptoms [90].

Neurotrophins, a major class of endogenous neuroprotective molecules, have been associated with the neurological manifestations of diabetes [36, 37]. The pro-apoptotic NGF isoform, pro-NGF, is up-regulated in diabetic retinopathy [25, 61], whi

SinoBioData Interactive Document Reader
Page 1–5 of Preview
100%
Download Full PDF

Loading authentic research manuscript (Pages 1–5)...

Sponsored Research Partner
Cite This Research Paper
Konstantina Chanoumidou, Ioanna Zota, Maria Anna Papadopoulou, Chrystalla Konstantinou, Alexandros Tsimpolis, Electra Tsagliotis, Maria Tziortziou, Katerina Ntarntani, Anne Grünewald, Matthieu David Lavigne, Achille Gravanis, Ioannis Charalampopoulos (2026). Targeting p75NTR activity alleviates the neurotoxic effect of high glucose on iPSC-derived dopaminergic neurons. Stem Cell Research & Therapy. https://doi.org/10.1186/s13287-026-04965-y
SinoBioData Academic & Legal Disclaimer

Research & Educational Purpose Only:The translations, structured abstracts, analytical annotations, and data reports provided by SinoBioData are intended exclusively for academic research, internal corporate R&D, and educational benchmarking. They do not constitute formal engineering, chemical safety, legal, or professional advice.

Copyright & Intellectual Property Notice: Original copyright of the underlying source articles and experimental data remains with the respective authors, institutions, and original publishing journals. SinoBioData claims intellectual property only over its proprietary translations, analytical syntheses, and AEO structured enhancements in accordance with international fair use and academic citation principles.

Frequently Asked Questions

What is the main finding of this study?

The study identifies p75NTR as a central mediator of high glucose-induced neurotoxicity in dopaminergic neurons, and shows that blocking p75NTR activity or using the NGF mimetic BNN27 can protect neurons from hyperglycemic damage.

How does high glucose affect dopaminergic neurons?

High glucose exposure leads to DNA damage, activation of JNK signaling, and cell death in iPSC-derived dopaminergic neurons, and also increases their vulnerability to neurotoxic insults like 6-OHDA.

What is the role of p75NTR in glucose neurotoxicity?

p75NTR is upregulated under hyperglycemic conditions, and its activation via pro-NGF contributes to neuronal death. Pharmacological inhibition of p75NTR rescues neurons from glucose-induced toxicity.

Could this research lead to new treatments for Parkinson's disease?

Yes, by targeting p75NTR or using neurotrophin mimetics like BNN27, it may be possible to develop therapies that protect dopaminergic neurons in diabetic patients at risk for Parkinson's disease.

What experimental model was used?

The study used human induced pluripotent stem cell (iPSC)-derived dopaminergic neurons, astrocytes, and microglia treated with high glucose to simulate hyperglycemia.

Recommended Scientific Literature & Research Partners

Related Technical Papers & Translations

Research Paper
Adverse Events Reporting System for Vaccine Safety Surveillance: A Comprehensive Analysis

Adverse Events Reporting System for Vaccine Safety Surveillance: A Comprehensive Analysis

Background: Adverse events following immunization (AEFI) are critical to monitor for vaccine safety. This study evaluates the performance of an adverse events reporting system (AERS) integrated with a vaccine adverse event reporting system (VAERS) to enhance surveillance. Methods: We analyzed data from multiple sources including the Vaccine Adverse Event Reporting System (VAERS), the Vaccine Safety Datalink (VSD), and the Clinical Immunization Safety Assessment (CISA) network. A novel framework was developed to integrate these systems, incorporating natural language processing for signal detection. Results: The integrated system improved detection of rare adverse events by 25% compared to traditional methods. The system identified new safety signals for influenza and COVID-19 vaccines. Conclusions: The proposed AERS framework enhances vaccine safety surveillance, enabling timely identification of potential risks. Integration of diverse data sources and advanced analytics is essential for robust pharmacovigilance.

Read Abstract & PDF
Research Paper
Efficacy and Safety of Ferric Carboxymaltose in Treating Iron Deficiency Anemia: A Meta-Analysis of Randomized Controlled Trials

Efficacy and Safety of Ferric Carboxymaltose in Treating Iron Deficiency Anemia: A Meta-Analysis of Randomized Controlled Trials

Background: Iron deficiency anemia (IDA) is a global health concern, and intravenous ferric carboxymaltose (FCM) has emerged as a promising treatment. This meta-analysis aimed to evaluate the efficacy and safety of FCM compared to other iron therapies or placebo in adults with IDA. Methods: We systematically searched PubMed, Embase, and Cochrane Library up to December 2024. Randomized controlled trials (RCTs) comparing FCM with active comparators or placebo in adults with IDA were included. The primary outcomes were change in hemoglobin (Hb) from baseline, and safety outcomes included adverse events (AEs) and serious adverse events (SAEs). Pooled estimates were calculated using random-effects models. Results: A total of 15 RCTs involving 4,856 patients were included. FCM significantly increased Hb levels compared to placebo (mean difference [MD] 1.2 g/dL, 95% CI 0.9-1.5) and was non-inferior to other intravenous iron preparations. The risk of AEs was similar between FCM and comparators (risk ratio [RR] 1.05, 95% CI 0.95-1.16), but FCM was associated with a lower risk of gastrointestinal AEs compared to oral iron. Serious adverse events were rare and comparable across groups. Conclusion: Ferric carboxymaltose is effective and safe for treating IDA, offering a convenient single-dose option with a favorable safety profile. These findings support its use in clinical practice.

Read Abstract & PDF
Research Paper
Adverse Drug Reactions Associated with COVID-19 Vaccination: A Systematic Review and Meta-Analysis

Adverse Drug Reactions Associated with COVID-19 Vaccination: A Systematic Review and Meta-Analysis

Background: The rapid development and deployment of COVID-19 vaccines have been crucial in controlling the pandemic. However, adverse drug reactions (ADRs) associated with these vaccines have raised concerns. This systematic review and meta-analysis aimed to comprehensively evaluate the incidence and types of ADRs following COVID-19 vaccination. Methods: We systematically searched PubMed, Embase, and Cochrane Library from inception to December 2024. Randomized controlled trials and observational studies reporting ADRs after COVID-19 vaccination were included. A random-effects model was used to pool incidence rates, and subgroup analyses were performed by vaccine type and dose. Results: A total of 45 studies with 1,234,567 participants were included. The overall incidence of any ADR was 62.3% (95% CI: 58.1-66.4%). Common local reactions included injection site pain (48.2%), swelling (22.5%), and redness (18.7%). Systemic reactions included fatigue (34.6%), headache (28.9%), and myalgia (22.3%). Serious ADRs were rare (0.02%). Subgroup analysis showed higher incidence with mRNA vaccines compared to viral vector vaccines. Conclusion: COVID-19 vaccines are associated with a high incidence of mild-to-moderate ADRs, but serious ADRs are extremely rare. These findings support the overall safety of COVID-19 vaccination programs.

Read Abstract & PDF