Related Experiment Video
Updated: Nov 9, 2025

Three-dimensional Imaging and Analysis of Mitochondria within Human Intraepidermal Nerve Fibers
Published on: September 29, 2017
The mTOR/NF-κB Pathway Mediates Neuroinflammation and Synaptic Plasticity in Diabetic Encephalopathy
Ting Xu1, Jiao Liu1, Xin-Rui Li1
1Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Xuzhou Medical University, Xuzhou, 221004, Jiangsu, China.
Abstract:
Diabetic encephalopathy, a severe complication of diabetes mellitus, is characterized by neuroinflammation and aberrant synaptogenesis in the hippocampus leading to cognitive decline. Mammalian target of rapamycin (mTOR) is associated with cognition impairment. Nuclear factor-κB (NF-κB) is a transcription factor of proinflammatory cytokines. Although mTOR has been ever implicated in processes occurring in neuroinflammation, the role of this enzyme on NF-κB signaling pathway remains unclear in diabetic encephalopathy. In the present study, we investigated whether mTOR regulates the NF-κB signaling pathway to modulate inflammatory cytokines and synaptic plasticity in hippocampal neurons. In vitro model was constructed in mouse HT-22 hippocampal neuronal cells exposed to high glucose. With the inhibition of mTOR or NF-κB by either chemical inhibitor or short-hairpin RNA (shRNA)-expressing lentivirus-vector, we examined the effects of mTOR/NF-κB signaling on proinflammatory cytokines and synaptic proteins. The diabetic mouse model induced by a high-fat diet combined with streptozotocin injection was administrated with rapamycin (mTOR inhibitor) and PDTC (NF-κB inhibitor), respectively. High glucose significantly increased mTOR phosphorylation in HT-22 cells. While inhibiting mTOR by rapamycin or shmTOR significantly suppressed high glucose-induced activation of NF-κB and its regulators IKKβ and IκBα, suggesting mTOR is the upstream regulator of NF-κB. Furthermore, inhibiting NF-κB by PDTC and shNF-κB decreased proinflammatory cytokines expression (IL-6, IL-1β, and TNF-α) and increased brain-derived neurotrophic factor (BDNF) and synaptic proteins (synaptophysin and PSD-95) in HT-22 cells under high glucose conditions. Besides, the mTOR and NF-κB inhibitors improved cognitive decline in diabetic mice. The inhibition of mTOR and NF-κB suppressed mTOR/NF-κB signaling pathway, increased synaptic proteins, and improved ultrastructural synaptic plasticity in the hippocampus of diabetic mice. Activating mTOR/NF-κB signaling pathway regulates the pathogenesis of diabetic encephalopathy, such as neuroinflammation, synaptic proteins loss, and synaptic ultrastructure impairment. The findings provide the implication that mTOR/NF-κB is potential new drug targets to treat diabetic encephalopathy.
Insights
In diabetic encephalopathy, targeting the mammalian target of rapamycin (mTOR) and nuclear factor-κB (NF-κB) signaling pathway can reduce neuroinflammation and improve synaptic plasticity, offering new therapeutic strategies.
Area of Science:
- Neuroscience
- Cell Biology
- Endocrinology
Background:
- Diabetic encephalopathy (DE) is a severe diabetes complication causing cognitive decline via neuroinflammation and synaptic dysfunction.
- The mammalian target of rapamycin (mTOR) and nuclear factor-κB (NF-κB) signaling pathways are implicated in cognition and inflammation, respectively.
- The precise role of mTOR in the NF-κB pathway within DE remains unclear.
Purpose of the Study:
- To investigate if mTOR regulates the NF-κB signaling pathway in DE.
- To determine the effects of mTOR/NF-κB signaling on inflammatory cytokines and synaptic plasticity in hippocampal neurons.
- To evaluate therapeutic potential of targeting mTOR/NF-κB in DE.
Main Methods:
- Constructed an in vitro model using high-glucose-exposed mouse HT-22 hippocampal neuronal cells.
- Utilized chemical inhibitors and short-hairpin RNA (shRNA) to inhibit mTOR and NF-κB.
- Administered rapamycin (mTOR inhibitor) and PDTC (NF-κB inhibitor) in a diabetic mouse model.
Main Results:
- High glucose increased mTOR phosphorylation; inhibiting mTOR suppressed NF-κB activation in vitro.
- Inhibition of NF-κB reduced pro-inflammatory cytokines and increased synaptic proteins (BDNF, synaptophysin, PSD-95) in high glucose conditions.
- mTOR and NF-κB inhibition improved cognitive function and synaptic plasticity in diabetic mice.
Conclusions:
- mTOR acts as an upstream regulator of NF-κB in diabetic encephalopathy.
- The mTOR/NF-κB pathway significantly influences neuroinflammation and synaptic integrity in DE.
- Targeting the mTOR/NF-κB pathway presents a promising therapeutic strategy for treating diabetic encephalopathy.
More Related Videos
06:21Osmotic Minipump Implantation for Increasing Glucose Concentration in Mouse Cerebrospinal Fluid
Published on: April 7, 2023
07:43Immunohistochemical Visualization of Hippocampal Neuron Activity After Spatial Learning in a Mouse Model of Neurodevelopmental Disorders
Published on: May 12, 2015
Related Concept Videos
PI3K/mTOR/AKT Signaling Pathway
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
Pathophysiology of Diabetes
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility,...
Enzyme-linked Receptors
Neurotrophin (NT) receptors are a family of RTKs, including trkA, trkB, and trkC (tropomyosin-related kinase) receptors. TrkA is specific for nerve growth factor (NGF), neurotrophin-6, and neurotrophin-7. TrkB binds...
Long-term Depression
Calcium Ion Concentration Mechanism
If over...
Long-term Depression