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Updated: Oct 5, 2025

Production and Characterization of Human Macrophages from Pluripotent Stem Cells
Published on: April 16, 2020
Macrophage self-renewal is regulated by transient expression of PDGF- and VEGF-related factor 2
Daniel Bakopoulos1, James C Whisstock2,3, Coral G Warr1,4
1School of Biological Sciences, Monash University, Clayton, Vic., Australia.
Abstract:
Macrophages are an ancient blood cell lineage critical for homeostasis and defence against pathogens. Although their numbers were long thought to be sustained solely by haematopoietic organs, it has recently become clear that their proliferation, or self-renewal, also plays a major role. In the Drosophila larva, macrophages undergo a phase of rapid self-renewal, making this an attractive model for elucidating the signals and regulatory mechanisms involved. However, a central self-renewal pathway has not been identified in this system. Here, we show that the PDGF- and VEGF-receptor related (Pvr) pathway fulfils this role. Our data show that two of the three known Pvr ligands, PDGF- and VEGF-related factor 2 (Pvf2) and Pvf3, are major determinants of overall macrophage numbers, yet they each act in a temporally independent manner and via distinct mechanisms. While Pvf3 is needed prior to the self-renewal period, we find that Pvf2 is critical specifically for expanding the larval macrophage population. We further show that Pvf2 is a potent macrophage mitogen that is kept at limiting quantities by its transient expression in a remarkably small number of blood cells. Together, these data support a novel mechanism for the regulation of macrophage self-renewal rates by the dynamic transcriptional control of Pvf2. Given the strong parallels that exist between Drosophila and vertebrate macrophage systems, it is likely that a similar self-renewal control mechanism is at play across animal phyla.
Insights
The PDGF- and VEGF-receptor related (Pvr) pathway is crucial for macrophage self-renewal in Drosophila larvae. Pvf2 specifically drives macrophage population expansion through transient expression, revealing a novel regulatory mechanism.
Area of Science:
- Immunology
- Developmental Biology
- Cell Biology
Background:
- Macrophages are vital immune cells involved in homeostasis and pathogen defense.
- Cell proliferation, or self-renewal, is increasingly recognized as a key factor in maintaining macrophage populations.
- The Drosophila larva provides a tractable model for studying macrophage self-renewal mechanisms.
Purpose of the Study:
- To identify the central self-renewal pathway regulating macrophage numbers in Drosophila larvae.
- To elucidate the specific roles of PDGF- and VEGF-receptor related (Pvr) pathway ligands in macrophage proliferation.
Main Methods:
- Utilized Drosophila melanogaster as a model organism.
- Investigated the function of the Pvr pathway and its ligands (Pvf2, Pvf3) in larval macrophages.
- Analyzed macrophage proliferation and population dynamics.
Main Results:
- The Pvr pathway is identified as a central regulator of macrophage self-renewal in Drosophila larvae.
- Pvf3 is required before the self-renewal phase, while Pvf2 is critical for larval macrophage expansion.
- Pvf2 acts as a potent macrophage mitogen, with its expression dynamically controlled at the transcriptional level.
Conclusions:
- The Pvf2 ligand's transient and limited expression represents a novel mechanism for regulating macrophage self-renewal rates.
- Findings in Drosophila suggest conserved self-renewal control mechanisms may exist across animal phyla, including vertebrates.
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