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CRISPR screening identifies DTX4 governing alveolar macrophage cholesterol efflux in pulmonary alveolar proteinosis
Zimu Wang, Jingwei Shi, Xu Ye, Xinye Xia, Huihui Zhu, Qi Li, Min Chen, Yichao Zhao, Yingwei Zhang, Mengshu Cao, Yonglong Xiao, Xinmei Huang
Zimu Wang, Jingwei Shi, Xu Ye, Xinye Xia, Huihui Zhu, Qi Li, Min Chen, Yichao Zhao, Yingwei Zhang, Mengshu Cao, Yonglong Xiao, Xinmei Huang
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Research Article Metabolism Pulmonology

CRISPR screening identifies DTX4 governing alveolar macrophage cholesterol efflux in pulmonary alveolar proteinosis

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Abstract

Pulmonary alveolar proteinosis (PAP) is a rare pulmonary syndrome characterized by impaired surfactant clearance, driven by dysfunctional cholesterol efflux in alveolar macrophages (AMs). However, the molecular determinants governing AM cholesterol homeostasis remain incompletely defined. Here, through a genome-wide CRISPR screen in foamy macrophages and bulk RNA sequencing of AMs from PAP patients, we identify DTX4 as a pivotal regulator of cholesterol efflux in AMs. In mice, AAV-mediated silencing of DTX4 led to excessive AM lipid accumulation, exacerbated proteinosis, increased lung opacities, and deteriorated pulmonary function. Similarly, DTX4 depletion in primary AMs impaired cholesterol efflux and promoted intracellular lipid deposition. Conversely, AM-specific overexpression of DTX4 in the Csf2ra–/– PAP model markedly alleviated lipid accumulation, mitigated alveolar proteinosis, restored lung densities, and rescued pulmonary function. Mechanistically, DTX4 stabilizes the GM-CSF receptor via an E3-independent interaction to sustain JAK2/STAT5 signaling, which reciprocally maintains DTX4 transcription. This positive-feedback loop drives PPARγ expression, and its disruption in PAP impairs cholesterol efflux, a defect partially reversible by ectopic PPARγ expression. Collectively, our findings identify DTX4 as a central orchestrator of AM cholesterol efflux and surfactant homeostasis, positioning it as a promising therapeutic target for PAP.

Authors

Zimu Wang, Jingwei Shi, Xu Ye, Xinye Xia, Huihui Zhu, Qi Li, Min Chen, Yichao Zhao, Yingwei Zhang, Mengshu Cao, Yonglong Xiao, Xinmei Huang

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Figure 6

DTX4 stabilizes CSF2RB as an E3-independent scaffold within a positive-feedback loop.

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DTX4 stabilizes CSF2RB as an E3-independent scaffold within a positive-f...
(A) Endogenous co-immunoprecipitation (co-IP) of DTX4 and CSF2RB in THP-1 cells. IgG served as an isotype control. (B) Schematic representation of wild-type DTX4 and the RING domain deletion mutant (DTX4-Δ). (C and D) Co-IP analysis in HEK293T cells cotransfected with HA-CSF2RB and FLAG–DTX4-WT or FLAG–DTX4-Δ. Interactions were assessed by immunoprecipitation with anti-FLAG (C) or anti-HA (D) antibodies followed by immunoblotting. (E and F) Western blot analysis of signaling proteins (E) and RT-PCR quantification (F) of indicated protein or genes in DTX4-knockdown (DTX4-KD) THP-1 cells (n = 3 biological replicates). (G) Cycloheximide (CHX) chase assay showing CSF2RB protein turnover in control and DTX4-KD THP-1 cells. Representative blots (top) and quantification of half-life (bottom) are shown (n = 3 biological replicates). (H and I) Western blot analysis of indicated proteins in DTX4-KD THP-1 cells following treatment with chloroquine (CQ; 50 μM) or MG132 (20 μM) (H), or upon re-expression of DTX4-WT or DTX4-Δ (I). (J–L) Regulation of DTX4 by GM-CSF signaling. Western blot analysis of DTX4 expression in THP-1 cells following recombinant GM-CSF stimulation (J) or anti–GM-CSF neutralizing antibody treatment (K). RT-qPCR analysis of DTX4 mRNA upon GM-CSF neutralization (L) (n = 3 biological replicates). (M) Sequence logo of the high-confidence STAT5 binding motif within the DTX4 promoter predicted by JASPAR. (N) Schematic model: DTX4 acts as an E3-independent scaffold to stabilize CSF2RB, sustaining JAK2/STAT5 signaling, which reciprocally drives DTX4 transcription, forming a positive-feedback loop. Statistical comparisons were made using 1-way ANOVA followed by Tukey’s post hoc test for multiple comparisons, or unpaired 2-tailed Student’s t test for comparisons between 2 groups (*P < 0.05, **P < 0.01, ***P < 0.001).

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