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Updated: Nov 12, 2025

Experimental Strategies to Bridge Large Tissue Gaps in the Injured Spinal Cord after Acute and Chronic Lesion
Published on: April 5, 2016
Berberine-loaded M2 macrophage-derived exosomes for spinal cord injury therapy
Zhan-Shan Gao1, Chuan-Jie Zhang2, Nan Xia1
1Pharmacy School, Jinzhou Medical University, Jinzhou, China.
Abstract:
Spinal cord injury (SCI) causes immune activation of resident macrophages/microglia. Activated macrophages/microglia have two different phenotypes, the pro-inflammatory classically activated (M1) phenotype and the anti-inflammatory alternatively activated (M2) phenotype. M1 phenotype macrophages/microglia are the key factor in inflammation. The treatment of SCI remains a huge challenge due to the nontargeting and inefficiency of anti-inflammatory drugs through the blood-brain barrier (BBB). The purpose of this experiment was to design M2-type primary peritoneal macrophages exosomes (Exos) as a drug carrier for berberine (Ber), which can be efficiently targeted to deliver drugs to the injured spinal cord due to the natural advantage of Exos across the BBB. The Exos with particle size of 125±12 nm were loaded with by an ultrasonic method and the drug loading reached 17.13 ±1.64%. The Ber release experiment showed that the loaded sample (Exos-Ber) exhibited sustained release effect, and the cumulative release amount reached 71.44±2.86% within 48 h. In vitro and in vivo experiments confirmed that the Exos-Ber could decrease the M1 protein marker iNOS, elevate the M2 protein marker CD206 and reduce inflammatory and apoptotic cytokines (TNF-α, IL-1β, IL-6, Caspase 9, Caspase 8), which showed that Exos-Ber had a good anti-inflammatory and anti-apoptotic effect by inducing macrophages/microglia from the M1 phenotype to M2 phenotype polarization. Moreover, the motor function of SCI mice was significantly improved after Exos-Ber treatment, indicating that Exos-Ber is a potential agent for SCI therapy. STATEMENT OF SIGNIFICANCE: Efficient targeting strategy for drug delivery. In addition to good biocompatibility and stealth ability, M2 macrophage-derived Exosomes present natural inflammatory targeting ability. The inflammatory microenvironment after spinal cord injury provides motivation for the targeting of exosomes. Natural drug carrier with higher safety. With the rapid development of nanomaterials, drug carriers have become more selective. However, due to the special microenvironment after central nervous system damage, some non-degradable inorganic materials will increase the pressure of self-healing and even secondary damage to neurons, which has been solved by the emergence of exosomes. Some previous studies used tumor cell line exosomes as drug carriers, but the carcinogenic factors carried by themselves have extremely high hidden dangers, and endogenous macrophage exosomes have absolute advantages over their safety.
Insights
This study developed M2 macrophage exosomes loaded with berberine (Exos-Ber) to treat spinal cord injury (SCI). Exos-Ber effectively reduced inflammation and apoptosis, improving motor function in SCI mice by reprogramming immune cells.
Area of Science:
- Neuroscience
- Immunology
- Biomedical Engineering
- Drug Delivery Systems
Background:
- Spinal cord injury (SCI) triggers immune activation, primarily by pro-inflammatory M1 macrophages/microglia, complicating treatment due to the blood-brain barrier (BBB) limiting drug efficacy.
- Current anti-inflammatory drugs struggle with non-specific targeting and poor BBB penetration, posing significant challenges for effective SCI therapy.
- Exosomes, particularly those derived from M2 macrophages, offer potential as biocompatible drug carriers with inherent targeting capabilities for inflammatory sites.
Purpose of the Study:
- To design M2 macrophage-derived exosomes (Exos) as a targeted drug delivery system for berberine (Ber) to treat spinal cord injury (SCI).
- To leverage the natural ability of exosomes to cross the BBB for efficient drug delivery to the injured spinal cord.
- To evaluate the anti-inflammatory and neuroprotective effects of Exos-Ber in SCI models.
Main Methods:
- M2-type primary peritoneal macrophages were used to generate exosomes (Exos).
- Berberine (Ber) was loaded into exosomes using an ultrasonic method, achieving a drug loading of 17.13 ±1.64%.
- In vitro and in vivo studies assessed Exos-Ber's drug release, anti-inflammatory effects (M1/M2 marker modulation), anti-apoptotic activity, and impact on motor function recovery in SCI mice.
Main Results:
- Exosomes exhibited a particle size of 125±12 nm and demonstrated sustained berberine release over 48 hours (71.44±2.86% cumulative release).
- Exos-Ber treatment significantly reduced the M1 marker iNOS and increased the M2 marker CD206, indicating a shift in macrophage/microglia phenotype.
- Exos-Ber effectively decreased pro-inflammatory and apoptotic cytokines (TNF-α, IL-1β, IL-6, Caspase 9, Caspase 8) and significantly improved motor function in SCI mice.
Conclusions:
- M2 macrophage-derived exosomes loaded with berberine (Exos-Ber) represent a safe and effective targeted drug delivery system for SCI.
- Exos-Ber promotes M1 to M2 phenotype polarization, exhibiting potent anti-inflammatory and anti-apoptotic effects beneficial for SCI recovery.
- This novel therapeutic strategy shows significant potential for improving motor function and offers a promising avenue for future SCI treatment.
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