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Updated: Jun 22, 2026

Quantitative Analysis and Characterization of Atherosclerotic Lesions in the Murine Aortic Sinus
Published on: December 7, 2013
Srsf3-Dependent APA Drives Macrophage Maturation and Limits Atherosclerosis
Xian Yang1, Xin Zhang1, Yaru Tian1
1Department of Immunology, School of Basic Medical Sciences, and Department of Rheumatology, Zhongshan Hospital (X.Y., X.Z., Y.T., J.Y., Y.J., Y.X., L.C., S.C., L.W., Y.Q., Y.W.), Fudan University, Shanghai, China.
Background:
Circulating monocytes largely contribute to macrophage buildup in atheromata, which is crucial for clearing subendothelial LDLs (low-density lipoproteins) and dead cells; however, the transitional trajectory from monocytes to macrophages in atherosclerotic plaques and the underlying regulatory mechanism remain unclear. Moreover, the role of alternative polyadenylation, a posttranscriptional regulator of cell fate, in monocyte/macrophage fate decisions during atherogenesis is not entirely understood.
Methods:
To identify monocyte/macrophage subtypes in atherosclerotic lesions and the effect of alternative polyadenylation on these subtypes and atherogenesis, single-cell RNA sequencing, 3'-end sequencing, flow cytometric, and histopathologic analyses were performed on plaques obtained from Apoe mouse arteries with or without myeloid deletion of Srsf3 (serine/arginine-rich splicing factor 3). Cell fractionation, polysome profiling, L-azidohomoalanine metabolic labeling assay, and metabolomic profiling were conducted to disclose the underlying mechanisms. Reprogramming of widespread alternative polyadenylation patterns was estimated in human plaques via bulk RNA sequencing.
Results:
We identified a subset of lesional cells in a monocyte-to-macrophage transitional state, which exhibited high expression of chemokines in mice. Srsf3 deletion caused a maturation delay of these transitional cells and phagocytic impairment of lesional macrophages, aggravating atherosclerosis. Mechanistically, Srsf3 deficiency shortened 3' untranslated regions of mitochondria-associated Aars2 (alanyl-tRNA synthetase 2), disrupting its translation. The resultant impairment of protein synthesis in mitochondria led to mitochondrial dysfunction with declined NAD+ (nicotinamide adenine dinucleotide, oxidized form) levels, activation of the integrated stress response, and metabolic reprogramming in macrophages. Administering an NAD+ precursor nicotinamide mononucleotide or the integrated stress response inhibitor partially restored Srsf3-deficient macrophage maturation, and nicotinamide mononucleotide treatment mitigated the proatherosclerotic effects of Srsf3 deficiency. Consistently, Srsf3 downregulation, global 3' untranslated region shortening, and accumulation of these transitional macrophages were associated with atherosclerosis progression in humans.
Conclusions:
Our study reveals that Srsf3-dependent generation of long 3' untranslated region is required for efficient mitochondrial translation, which promotes mature phagocytic macrophage formation, thereby playing a protective role in atherosclerosis.
Insights
Serine/arginine-rich splicing factor 3 (Srsf3) promotes macrophage maturation and function in atherosclerosis. Srsf3 deficiency impairs mitochondrial translation, leading to delayed maturation and aggravated atherosclerosis, but NAD+ precursors can help.
Area of Science:
- Molecular Biology
- Immunology
- Cardiovascular Research
Background:
- Circulating monocytes differentiate into macrophages within atherosclerotic plaques, crucial for clearing lipids and cellular debris.
- The precise mechanisms governing monocyte-to-macrophage transition and the role of alternative polyadenylation in atherogenesis are not fully understood.
Purpose of the Study:
- To investigate monocyte/macrophage subtypes in atherosclerosis.
- To determine the impact of alternative polyadenylation, specifically regulated by serine/arginine-rich splicing factor 3 (Srsf3), on these cell types and disease progression.
Main Methods:
- Single-cell RNA sequencing, 3'-end sequencing, and flow cytometry were used on mouse atherosclerotic plaques with or without myeloid Srsf3 deletion.
- Cellular and molecular assays, including polysome profiling and metabolomics, elucidated underlying mechanisms.
- Human plaques were analyzed for alternative polyadenylation patterns and macrophage populations.
Main Results:
- A subset of transitional monocyte-macrophages was identified in lesions.
- Srsf3 deletion delayed transitional cell maturation, impaired macrophage phagocytosis, and worsened atherosclerosis.
- Srsf3 deficiency led to shortened 3' UTRs of Aars2, disrupting mitochondrial translation, NAD+ levels, and activating stress responses.
- NAD+ precursor or stress response inhibitor partially restored Srsf3-deficient macrophage function and mitigated atherosclerosis.
Conclusions:
- Srsf3-dependent long 3' UTRs are essential for mitochondrial translation and mature phagocytic macrophage development.
- This process plays a protective role in atherosclerosis by promoting functional macrophage differentiation.
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