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Updated: Jul 23, 2025

Macrophage Differentiation and Polarization into an M2-Like Phenotype using a Human Monocyte-Like THP-1 Leukemia Cell Line
Published on: August 2, 2021
Optimization of differentiation and transcriptomic profile of THP-1 cells into macrophage by PMA
Tiezhu Liu1, Tao Huang1, Jiajia Li2
1National Health Commission Key Laboratory for Medical Virology, National Institute for Viral Disease Control and Prevention, Chinese Center for Disease Control and Prevention, Beijing, China.
Abstract:
THP-1 monocyte, which can be differentiated into macrophages by PMA, is widely used in researches on pathogen infection and host innate immunity, but reports on the induction methods of PMA are different and lack a unified standard, and the transcriptome characteristics of macrophage compared with THP-1 cells remains unclear. In this research, we examined the differentiation effect of three factors including induction time, cell seeding density and PMA concentration by detecting the positive rate of CD14 expression. The concentration of 80ng/ml of PMA, the induction time of 24h, and the cell seeding density of 5×105 cells/ml, could respectively facilitates a relatively higher CD14 positive rate in THP-1 cells. Under this optimized conditions, the CD14 positive rate of THP-1 cells can reach 66.52%. Transcriptome sequencing showed that after the above induction, the mRNA expression of 3113 genes which were closely related to cell communication, signal transduction, cell response to stimulus, signaling receptor binding and cytokine activity were up-regulated, and the top 10 genes were RGS1, SPP1, GDF15, IL-1B, HAVCR2, SGK1, EGR2, TRAC, IL-8 and EBI3. While the mRNA expression of 2772 genes which were associated with cell cycle process, DNA binding and replication and cell division, were down-regulated, and the top genes were SERPINB10, TRGC2, SERPINB2, TRGC1, MS4A3, MS4A4E, TRGJP1, MS4A6A, TRGJP2, MS4A4A. This research optimized the induction method on THP-1 cell differentiation from three aspects and delineated the transcriptomic profile of PMA-induced THP-1 cells, laying a foundation for the construction method of cell model and for the functional study of macrophage.
Insights
This study optimized phorbol 12-myristate 13-acetate (PMA) induction for differentiating THP-1 monocytes into macrophages. Optimized conditions enhance CD14 expression and reveal key gene expression changes for macrophage function research.
Area of Science:
- Immunology
- Cell Biology
- Genomics
Background:
- THP-1 monocytes differentiated into macrophages are crucial for studying pathogen infection and innate immunity.
- Existing methods for phorbol 12-myristate 13-acetate (PMA) induction lack standardization, hindering reproducible research.
- The transcriptomic differences between THP-1 cells and PMA-induced macrophages are not fully understood.
Purpose of the Study:
- To optimize the induction method for differentiating THP-1 monocytes into macrophages using PMA.
- To characterize the transcriptomic profile of PMA-induced THP-1 derived macrophages.
- To establish a reliable cell model for macrophage functional studies.
Main Methods:
- Optimized induction parameters including PMA concentration (80ng/ml), induction time (24h), and cell seeding density (5×10^5 cells/ml).
- Assessed differentiation efficiency via CD14 expression.
- Performed transcriptome sequencing to analyze gene expression changes.
Main Results:
- Optimized conditions yielded a 66.52% CD14 positive rate in THP-1 cells.
- Transcriptome analysis revealed 3113 upregulated genes related to cell communication, signaling, and immune response (e.g., IL-1B, IL-8).
- 2772 downregulated genes were associated with cell cycle and DNA replication (e.g., SERPINB10, MS4A genes).
Conclusions:
- A standardized and optimized method for PMA-induced THP-1 macrophage differentiation was established.
- The study provides a comprehensive transcriptomic landscape of PMA-induced macrophages.
- This research facilitates the development of cell models and enhances functional studies of macrophages in immunity and disease.

