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Updated: May 5, 2026

Using RNA-interference to Investigate the Innate Immune Response in Mouse Macrophages
Published on: November 3, 2014
Gene expression profiles of precursor cells identify compounds that reduce NRP1 surface expression in macrophages:
Akira Iwata1, Sarvesh Chelvanambi1, Takaharu Asano1
1Center for Interdisciplinary Cardiovascular Sciences, Cardiovascular Division, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, United States.
Abstract:
Coronavirus disease 2019 (COVID-19) is transitioning from a pandemic to an endemic phase through recurring mutations. Initial efforts focused on developing strategies to mitigate infection of lung epithelial cells which are the primary targets of the SARS-CoV-2 virus using the affinity of the spike protein to human ACE2 receptor. SARS-CoV-2, however, infects additional cell types present in the lung such as macrophages through the alternate entry receptor Neuropilin 1 (NRP1). Developing novel therapeutic strategies to prevent SARS-CoV-2 infection of cells crucial for immunosurveillance could thus be integral to treat post-acute sequelae of COVID-19 (PASC). Since traditional drug development process takes a long time, it is imperative to establish new strategies that can be rapidly deployed to combat the dynamic nature of COVID-19 evolution and to contribute to prevention of future pandemics. We obtained the gene expression profiles of THP-1 monocytes from L1000-based Connectivity Map using CLUE, cloud- based software platform for the analysis of perturbational datasets to identify compounds that could reduce the expression level of NRP1. Out of 33,590 compounds, we analyzed the profiles of 45 compounds for their ability to reduce NRP1 expression. We selected the top five small molecule inhibitors predicted to decrease the expression of NRP1 for validation studies. All five selected compounds showed low cytotoxicity at tested doses and their ability to reduce NRP1 surface expression was evaluated in THP-1 monocytes, THP-1-derived macrophage like cells and human peripheral blood mononuclear cell (PBMC)-derived primary macrophages. Five compounds with the largest predicted reduction of NRP1 expression decreased macrophage NRP1 surface expression measured using flow cytometry and fluorescent microscopy assays in both cell line and primary macrophages. Using our computational approach, we identified 45 compounds that could potentially decrease NRP1 surface expression in macrophages based on their effect on THP-1 monocytes. Validation studies showed that such an approach can help to identify compounds for drug repositioning in target cells that are absent in the L1000 database. Our proposed approach can be applicable for the rapid compound exploration to combat novel cell types that SARS-CoV-2 targets for infection and could provide molecular bases for the development of new drugs.
Insights
Researchers identified compounds to block SARS-CoV-2 entry into macrophages by targeting Neuropilin 1 (NRP1). This rapid drug discovery approach aids in treating COVID-19 and preventing future pandemics.
Area of Science:
- Virology and Immunology
- Computational Drug Discovery
- Molecular Biology
Background:
- SARS-CoV-2 infects lung macrophages via Neuropilin 1 (NRP1), impacting immunosurveillance and contributing to post-acute sequelae of COVID-19 (PASC).
- Traditional drug development is slow, necessitating rapid strategies to address evolving viral threats and potential future pandemics.
Purpose of the Study:
- To identify small molecule inhibitors capable of reducing NRP1 expression on macrophages.
- To establish a rapid computational approach for discovering drugs targeting novel SARS-CoV-2 cellular entry pathways.
Main Methods:
- Utilized the L1000-based Connectivity Map and CLUE software to analyze gene expression profiles of THP-1 monocytes.
- Screened 33,590 compounds to identify those potentially reducing NRP1 expression, selecting top candidates for validation.
- Validated compound efficacy in reducing NRP1 surface expression on THP-1 monocytes, derived macrophages, and primary macrophages using flow cytometry and microscopy.
Main Results:
- Identified 45 compounds predicted to decrease NRP1 expression in macrophages.
- Five selected small molecule inhibitors demonstrated low cytotoxicity and effectively reduced NRP1 surface expression in both cell lines and primary macrophages.
- The computational approach successfully identified compounds for drug repositioning targeting specific cell types.
Conclusions:
- A rapid computational screening method can identify compounds targeting novel SARS-CoV-2 entry receptors like NRP1.
- This approach facilitates rapid compound exploration for emerging infectious diseases and provides a basis for developing new therapeutics.
- Targeting macrophage NRP1 offers a potential strategy for treating COVID-19 and preventing future pandemic threats.

