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Published on: October 28, 2022
Sfxn5 Regulation of Actin Polymerization for Neutrophil Spreading Depends on a Citrate-Cholesterol-PI(4,5)P2 Pathway
Huan Zhang1, Ling Meng1, Yang Liu1
1Laboratory of Developmental Biology, Department of Cell Biology and Genetics, School of Basic Medical Sciences, Chongqing Medical University, Chongqing, China.
Abstract:
Cell spreading is an initial and critical step in neutrophil adhesion and migration, leading to neutrophil recruitment to inflammatory tissues. Sideroflexin (Sfxn) family proteins are metabolite transporters located in the mitochondrial membrane. Recombinant SFXN5 protein is a citrate transporter in vitro; however, whether Sfxn5 regulates any cellular behavior or function remains unknown. In this study, we found that small interfering RNA transfection or morpholino injection achieving Sfxn5 deficiency in neutrophils significantly decreased neutrophil recruitment in mice and zebrafish, respectively. Sfxn5 deficiency impaired neutrophil spreading and spreading-associated cellular phenotypes, such as cell adhesion, chemotaxis, and ROS production. Actin polymerization is critical for neutrophil spreading, and we found that actin polymerization in spreading neutrophils was partially inhibited by Sfxn5 deficiency. Mechanistically, we observed that the levels of cytosolic citrate and its downstream metabolic products, acetyl-CoA and cholesterol, were decreased in Sfxn5-deficient neutrophils. The levels of phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2), a mediator for the regulation of actin polymerization by cholesterol, were reduced in the plasma membrane of Sfxn5-deficient neutrophils. Exogenous supplementation with citrate or cholesterol partially reversed the reduction in PI(4,5)P2 levels, defective neutrophil actin polymerization, and cell spreading. Altogether, we demonstrated that Sfxn5 maintains cytosolic citrate levels and ensures the synthesis of sufficient cholesterol to promote actin polymerization in a PI(4,5)P2-dependent manner during neutrophil spreading, which is essential for the eventual inflammatory recruitment of neutrophils. Our study revealed the importance of Sfxn5 in neutrophil spreading and migration, thus identifying, to our knowledge, for the first time, the physiological cellular functions of the Sfxn5 gene.
Insights
Sideroflexin-5 (Sfxn5) deficiency impairs neutrophil spreading and migration by reducing cytosolic citrate and cholesterol, crucial for actin polymerization and inflammatory response. This study reveals Sfxn5
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Neutrophil spreading is vital for inflammatory tissue recruitment.
- Sideroflexin (Sfxn) proteins are mitochondrial metabolite transporters.
- The cellular functions of Sfxn5 remain largely unknown.
Purpose of the Study:
- To investigate the role of Sfxn5 in neutrophil function and inflammatory recruitment.
- To elucidate the molecular mechanisms by which Sfxn5 influences neutrophil behavior.
Main Methods:
- Utilized small interfering RNA and morpholino injection to create Sfxn5-deficient neutrophils in mice and zebrafish.
- Assessed neutrophil recruitment, spreading, adhesion, chemotaxis, and ROS production.
- Analyzed intracellular metabolite levels (citrate, acetyl-CoA, cholesterol) and plasma membrane PI(4,5)P2.
- Investigated the impact of exogenous citrate and cholesterol supplementation.
Main Results:
- Sfxn5 deficiency significantly reduced neutrophil recruitment, spreading, and associated cellular functions.
- Actin polymerization was impaired in Sfxn5-deficient neutrophils.
- Cytosolic citrate, acetyl-CoA, and cholesterol levels were decreased, alongside reduced plasma membrane PI(4,5)P2.
- Citrate or cholesterol supplementation partially restored PI(4,5)P2 levels, actin polymerization, and cell spreading.
Conclusions:
- Sfxn5 is essential for maintaining cytosolic citrate levels, supporting cholesterol synthesis.
- This process is critical for PI(4,5)P2-dependent actin polymerization during neutrophil spreading.
- Sfxn5 plays a key role in neutrophil migration and inflammatory response.
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