Related Experiment Video
Updated: Mar 16, 2026

Microglia as a Surrogate Biosensor to Determine Nanoparticle Neurotoxicity
Published on: October 25, 2016
Neuron-microglia interaction induced bi-directional cytotoxicity associated with calpain activation
Maria Podbielska1,2,3, Arabinda Das1, Amena W Smith1
1Department of Neurology and Neurosurgery, Medical University of South Carolina, Charleston, South Carolina, USA.
Abstract:
Activated microglia release pro-inflammatory factors and calpain into the extracellular milieu, damaging surrounding neurons. However, mechanistic links to progressive neurodegeneration in disease such as multiple sclerosis (MS) remain obscure. We hypothesize that persistent damaged/dying neurons may also release cytotoxic factors and calpain into the media, which then activate microglia again. Thus, inflammation, neuronal damage, and microglia activation, i.e., bi-directional interaction between neurons and microglia, may be involved in the progressive neurodegeneration. We tested this hypothesis using two in vitro models: (i) the effects of soluble factors from damaged primary cortical neurons upon primary rat neurons and microglia and (ii) soluble factors released from CD3/CD28 activated peripheral blood mononuclear cells of MS patients on primary human neurons and microglia. The first model indicated that neurons due to injury with pro-inflammatory agents (IFN-γ) release soluble neurotoxic factors, including COX-2, reactive oxygen species, and calpain, thus activating microglia, which in turn released neurotoxic factors as well. This repeated microglial activation leads to persistent inflammation and neurodegeneration. The released calpain from neurons and microglia was confirmed by the use of calpain inhibitor calpeptin or SNJ-1945 as well as μ- and m-calpain knock down using the small interfering RNA (siRNA) technology. Our second model using activated peripheral blood mononuclear cells, a source of pro-inflammatory Th1/Th17 cytokines and calpain released from auto-reactive T cells, corroborated similar results in human primary cell cultures and confirmed calpain to be involved in progressive MS. These insights into reciprocal paracrine regulation of cell injury and calpain activation in the progressive phase of MS, Parkinson's disease, and other neurodegenerative diseases suggest potentially beneficial preventive and therapeutic strategies, including calpain inhibition.
Insights
Persistent inflammation and neuronal damage in multiple sclerosis (MS) involve a damaging cycle between neurons and microglia. This study reveals that targeting calpain may offer new therapeutic strategies for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Activated microglia release pro-inflammatory factors and calpain, contributing to neuronal damage.
- The precise mechanisms linking microglia activation to progressive neurodegeneration in diseases like multiple sclerosis (MS) are not fully understood.
Purpose of the Study:
- To investigate the bidirectional interactions between neurons and microglia in progressive neurodegeneration.
- To explore the role of calpain in the inflammatory cycle of neurodegenerative diseases.
Main Methods:
- Utilized two in vitro models: damaged primary cortical neurons and activated peripheral blood mononuclear cells from MS patients.
- Assessed the effects of soluble factors on primary rat and human neurons and microglia.
- Employed calpain inhibitors (calpeptin, SNJ-1945) and small interfering RNA (siRNA) for calpain knockdown.
Main Results:
- Injured neurons release neurotoxic factors (COX-2, reactive oxygen species, calpain), activating microglia.
- Activated microglia release further neurotoxic factors, perpetuating inflammation and neurodegeneration.
- Calpain release from both neurons and microglia was confirmed and implicated in progressive MS pathogenesis.
Conclusions:
- A reciprocal paracrine regulation loop between neuronal injury and microglial activation, involving calpain, drives progressive neurodegeneration.
- These findings highlight calpain as a potential therapeutic target for MS and other neurodegenerative diseases.

