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Published on: February 18, 2020
Distinct regulatory networks control the development of macrophages of different origins in zebrafish
Tao Yu1, Weilin Guo1, Ye Tian1
1Division of Life Science, State Key Laboratory of Molecular Neuroscience and Center of Systems Biology and Human Health, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, People's Republic of China.
Abstract:
Macrophages are key components of the innate immune system and play pivotal roles in immune response, organ development, and tissue homeostasis. Studies in mice and zebrafish have shown that tissue-resident macrophages derived from different hematopoietic origins manifest distinct developmental kinetics and colonization potential, yet the genetic programs controlling the development of macrophages of different origins remain incompletely defined. In this study, we use zebrafish, where tissue-resident macrophages arise from the rostral blood island (RBI) and ventral wall of dorsal aorta (VDA), the zebrafish hematopoietic tissue equivalents to the mouse yolk sac and aorta-gonad-mesonephros for myelopoiesis, to address this issue. We show that RBI- and VDA-born macrophages are orchestrated by distinctive regulatory networks formed by the E-twenty-six (Ets) transcription factors Pu.1 and Spi-b, the zebrafish ortholog of mouse spleen focus forming virus proviral integration oncogene B (SPI-B), and the helix-turn-helix DNA-binding domain containing protein Irf8. Epistatic studies document that during RBI macrophage development, Pu.1 acts upstream of Spi-b, which, upon induction by Pu.1, partially compensates the function of Pu.1. In contrast, Pu.1 and Spi-b act in parallel and cooperatively to regulate the development of VDA-derived macrophages. Interestingly, these two distinct regulatory networks orchestrate the RBI- and VDA-born macrophage development largely by regulating a common downstream gene, Irf8. Our study indicates that macrophages derived from different origins are governed by distinct genetic networks formed by the same repertoire of myeloid-specific transcription factors.
Insights
Zebrafish macrophages from different origins (rostral blood island and ventral aorta) develop via distinct genetic networks. These networks utilize the same transcription factors, Pu.1, Spi-b, and Irf8, to control macrophage development.
Area of Science:
- Immunology
- Developmental Biology
- Genetics
Background:
- Macrophages are crucial for innate immunity, organ development, and tissue homeostasis.
- Tissue-resident macrophages originate from diverse hematopoietic sources, exhibiting unique developmental paths.
- Genetic control over macrophages from different origins is not fully understood.
Purpose of the Study:
- To elucidate the distinct genetic programs governing the development of zebrafish macrophages from the rostral blood island (RBI) and ventral wall of the dorsal aorta (VDA).
- To compare the regulatory networks controlling RBI- and VDA-derived macrophage development using zebrafish models.
Main Methods:
- Utilized zebrafish as a model organism, with RBI and VDA serving as hematopoietic origins.
- Employed epistatic studies to define the functional relationships between transcription factors Pu.1, Spi-b, and Irf8.
- Analyzed the distinct regulatory networks controlling RBI- and VDA-born macrophage development.
Main Results:
- RBI- and VDA-born macrophages are regulated by distinct genetic networks involving Pu.1, Spi-b, and Irf8.
- In RBI macrophage development, Pu.1 acts upstream of Spi-b, with Spi-b partially compensating for Pu.1.
- For VDA-derived macrophages, Pu.1 and Spi-b function in parallel and cooperatively.
- Both networks converge on regulating the downstream gene Irf8.
Conclusions:
- Macrophages from different developmental origins are governed by distinct genetic networks.
- These distinct networks are formed by the same set of myeloid-specific transcription factors (Pu.1, Spi-b, Irf8).
- Highlights the combinatorial action of transcription factors in generating macrophage diversity.

