CD38-activated macrophages drive age-related placental senescence by depleting NAD+ in decidual stromal cells

As delayed childbearing becomes increasingly common, elucidating the mechanisms of age-related placental senescence is critical for the development of effective therapeutic strategies. Here, we integrate metabolomics, single-cell RNA sequencing, and spatial transcriptomics to uncover conserved features of aged placentas in humans, mice, and pigs, namely, increased macrophage CD38 expression and NAD⁺ deficiency. Through pharmacological and genetic approaches, we demonstrate that macrophage CD38 depletes NAD⁺ in decidual stromal cells, thereby promoting placental senescence. Mechanistically, early-onset inflammation and senescence-associated secretory phenotype activity drive CD38 expression in macrophages via the IRF5 pathway. Importantly, treatment with NAD⁺ precursors or CD38 inhibitors attenuates age-related placental senescence, rescues intrauterine growth restriction, and improves long-term metabolic outcomes in offspring. These findings reveal a critical role for macrophage-driven metabolic dysregulation in reproductive aging and establish CD38 as a potential therapeutic target for age-associated pregnancy complications. The authors show that CD38-activated macrophages deplete NAD+ in decidual stromal cells, driving placental senescence and fetal growth restriction during aging. NAD+ restoration in animal models improves pregnancy outcomes and offspring health.

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Publication Details

Journal
Nature Communications
Published
2026-08-27
DOI
https://doi.org/10.1038/s41467-026-77217-5
Primary Topic
Calcium signaling and nucleotide metabolism
Type
article
Field-Weighted Citation Impact
0.00

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article

CD38-activated macrophages drive age-related placental senescence by depleting NAD+ in decidual stromal cells

Ting Luo, Xintong Yang, Mingzhou Li, Bin Feng et al.
Nature Communications
Calcium signaling and nucleotide metabolism
article

CD38-activated macrophages drive age-related placental senescence by depleting NAD+ in decidual stromal cells

Ting Luo, Xintong Yang, Mingzhou Li, Bin Feng, Long Jin, Guangmang Liu, De Wu, Dengfeng Gao, Lulu Ma, Yanni Wu, Yan Lin, Xuemei Jiang, Xianyang Jin, Zhaoli Shen, Wenting Liu, Zhengfeng Fang, Chao Jin, Luting Liu, Litong Li, Xingfa Han, Lianqiang Che, Xiaohan Yang, Yi Yang, Lun Hua, Yan Lin, Jing Li, Chunli Zhu, Shengyu Xu
article en

Abstract

As delayed childbearing becomes increasingly common, elucidating the mechanisms of age-related placental senescence is critical for the development of effective therapeutic strategies. Here, we integrate metabolomics, single-cell RNA sequencing, and spatial transcriptomics to uncover conserved features of aged placentas in humans, mice, and pigs, namely, increased macrophage CD38 expression and NAD⁺ deficiency. Through pharmacological and genetic approaches, we demonstrate that macrophage CD38 depletes NAD⁺ in decidual stromal cells, thereby promoting placental senescence. Mechanistically, early-onset inflammation and senescence-associated secretory phenotype activity drive CD38 expression in macrophages via the IRF5 pathway. Importantly, treatment with NAD⁺ precursors or CD38 inhibitors attenuates age-related placental senescence, rescues intrauterine growth restriction, and improves long-term metabolic outcomes in offspring. These findings reveal a critical role for macrophage-driven metabolic dysregulation in reproductive aging and establish CD38 as a potential therapeutic target for age-associated pregnancy complications. The authors show that CD38-activated macrophages deplete NAD+ in decidual stromal cells, driving placental senescence and fetal growth restriction during aging. NAD+ restoration in animal models improves pregnancy outcomes and offspring health.

Nature Communications
Nanchang University (CN), Sichuan Agricultural University (CN), Second Affiliated Hospital of Nanchang University (CN), State Key Laboratory of Food Science and Technology (CN)
National Natural Science Foundation of China, Nanchang University, Earmarked Fund for China Agriculture Research System
Zero hunger
Openalex Percentile: Top 14%
Calcium signaling and nucleotide metabolism
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