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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Modulation of microglial immune responses by a novel thiourea derivative
Jyh-Haur Chern1, Pei-Chien Hsu, Li-Wen Wang
1Division of Biotechnology and Pharmaceutical Research, National Health Research Institutes, Zhunan, Taiwan, ROC.
Abstract:
Increasing evidence indicates that microglial activation plays an important role in the pathogenesis of Alzheimer's disease (AD). In AD, activated microglia may facilitate the clearance of beta-amyloid (Abeta), a neurotoxic component in AD pathogenesis. However, microglial activation comes at the cost of triggering neuro-inflammation, which contributes to cerebral dysfunction. Thus, pharmacological approaches that can achieve a favorable combination of a reduced microglia-mediated neuro-inflammation, and an enhanced Abeta clearance may be beneficial for preventing the progression of the disease. Here, we show that some newly synthesized compounds may exert such a combination of functions. Using mouse primary microglia and RAW264.7 cells, we found that some thiourea derivatives significantly enhanced microglial Abeta phagocytosis and suppressed microglial immune responses, as evidenced by the reduced expression of inducible nitric oxide synthase (iNOS) and cyclooxygenase 2 (COX-2). Of note, some commercially available inhibitors for iNOS and/or COX-2, such as ibuprofen, dextromethorphan, and N(G)-methyl-l-arginine (l-NMA), show negligible effects on microglial Abeta phagocytosis. Among the thiourea derivatives, our data show that a lead compound, designated as compound #326, (1-Naphthalen-1-yl-3-[5-(3-thioureido-phenoxy)-pentyl]-thiourea) appears to be the most potent in promoting Abeta phagocytosis and in inhibiting the LPS-induced expression of iNOS and COX-2 (when used at concentrations in the low muM range). The potency of compound #326 may have beneficial effects on modulating microglial activation in AD. The structure-activity relationship indicates that the thiourea group, alkyl linker, and the hydrophobic aryl group largely influence the dual functions of the compounds. These findings may indicate a structural basis for the improved design of future drug therapies for AD.
Insights
New thiourea derivatives show promise for Alzheimer's disease (AD) therapy by enhancing beta-amyloid (Abeta) clearance while reducing neuroinflammation. Compound #326 is particularly effective in modulating microglial activation for potential AD treatment.
Area of Science:
- Neuroscience
- Pharmacology
- Immunology
Background:
- Microglial activation is crucial in Alzheimer's disease (AD) pathogenesis.
- Activated microglia can clear beta-amyloid (Abeta) but also cause neuroinflammation.
- Targeting microglial activation for both Abeta clearance and reduced inflammation is a therapeutic goal.
Purpose of the Study:
- To identify novel compounds that can simultaneously enhance microglial Abeta phagocytosis and suppress neuroinflammation.
- To evaluate the efficacy of synthesized thiourea derivatives as potential AD therapeutics.
Main Methods:
- Utilized mouse primary microglia and RAW264.7 cells.
- Tested thiourea derivatives for their effects on Abeta phagocytosis and inflammatory markers (iNOS, COX-2).
- Compared novel compounds with existing iNOS/COX-2 inhibitors (e.g., ibuprofen).
Main Results:
- Several thiourea derivatives significantly enhanced Abeta phagocytosis and suppressed inflammatory responses.
- Compound #326 demonstrated potent dual activity, promoting Abeta clearance and inhibiting LPS-induced iNOS/COX-2 expression at low micromolar concentrations.
- Commercial inhibitors like ibuprofen showed minimal impact on microglial Abeta phagocytosis.
Conclusions:
- Thiourea derivatives, particularly compound #326, offer a promising dual-action approach for AD therapy.
- The thiourea group, alkyl linker, and aryl group are key structural components for dual function.
- These findings provide a structural basis for designing improved AD drug therapies targeting microglial modulation.

