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Updated: Jun 30, 2026

Detection of MicroRNAs in Microglia by Real-time PCR in Normal CNS and During Neuroinflammation
Published on: July 23, 2012
Optimization and characterization of miRNA-129-5p-encapsulated poly (lactic-co-glycolic acid) nanoparticles to
Irina Kalashnikova1, Heather Cambell1, Daniel Kolpek1
1Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky 789 S. Limestone Lexington KY 40506 USA jonghyuck.park@uky.edu +1-859-257-1850.
Abstract:
Microglia have become a therapeutic target of many inflammation-mediated diseases in the central nervous system (CNS). Recently, microRNA (miRNA) has been proposed as an important regulator of immune responses. Specifically, miRNA-129-5p has been shown to play critical roles in the regulation of microglia activation. We have demonstrated that biodegradable poly (lactic-co-glycolic acid) (PLGA)-based nanoparticles (NPs) modulated innate immune cells and limited neuroinflammation after injury to the CNS. In this study, we optimized and characterized PLGA-based NPs for miRNA-129-5p delivery to utilize their synergistic immunomodulatory features for activated microglia modulation. A series of nanoformulations employing multiple excipients including epigallocatechin gallate (EGCG), spermidine (Sp), or polyethyleneimine (PEI) for miRNA-129-5p complexation and miRNA-129-5p conjugation to PLGA (PLGA-miR) were utilized. We characterized a total of six nanoformulations through physicochemical, biochemical, and molecular biological methods. In addition, we investigated the immunomodulatory effects of multiple nanoformulations. The data indicated that the immunomodulatory effects of nanoformulation, PLGA-miR with the excipient Sp (PLGA-miR+Sp) and PEI (PLGA-miR+PEI) were significant compared to other nanoformulations including naked PLGA-based NP. These nanoformulations promoted a sustained release of miRNA-129-5p and polarization of activated microglia into a more pro-regenerative phenotype. Moreover, they enhanced the expression of multiple regeneration-associated factors, while alleviating the expression of pro-inflammatory factors. Collectively, the proposed nanoformulations in this study highlight the promising therapeutic tools for synergistic immunomodulatory effects between PLGA-based NPs and miRNA-129-5p to modulate activated microglia which will have numerous applications for inflammation-derived diseases.
Insights
Biodegradable nanoparticles delivering microRNA-129-5p modulate microglia activation, promoting CNS regeneration. These PLGA-based nanoformulations show promise for treating neuroinflammatory diseases.
Area of Science:
- Neuroscience
- Biomaterials Science
- Immunology
Background:
- Microglia are key therapeutic targets for central nervous system (CNS) inflammatory diseases.
- MicroRNAs (miRNAs) regulate immune responses, with miRNA-129-5p critical for microglia activation.
- Poly (lactic-co-glycolic acid) (PLGA)-based nanoparticles (NPs) can modulate innate immune cells and reduce neuroinflammation.
Purpose of the Study:
- To optimize and characterize PLGA-based NPs for delivering miRNA-129-5p.
- To investigate synergistic immunomodulatory effects of nanoformulations for activated microglia modulation.
- To explore therapeutic potential for inflammation-derived CNS diseases.
Main Methods:
- Developed six nanoformulations using PLGA NPs with various excipients (EGCG, Sp, PEI) for miRNA-129-5p delivery.
- Characterized nanoformulations using physicochemical, biochemical, and molecular biological methods.
- Assessed immunomodulatory effects and miRNA-129-5p release kinetics.
Main Results:
- PLGA-based NPs with spermidine (PLGA-miR+Sp) and PEI (PLGA-miR+PEI) showed significant immunomodulatory effects.
- These nanoformulations facilitated sustained miRNA-129-5p release.
- Activated microglia were polarized towards a pro-regenerative phenotype, with enhanced regeneration-associated factors and reduced pro-inflammatory factors.
Conclusions:
- PLGA-based NPs effectively deliver miRNA-129-5p for microglia modulation.
- Synergistic effects between PLGA NPs and miRNA-129-5p offer therapeutic potential.
- These nanoformulations are promising for treating CNS inflammation-derived diseases.
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