Uterine-specific SIRT1 deficiency confers premature uterine aging and impairs invasion and spacing of blastocyst, and stromal cell decidualization, in mice

Author:

Cummings Magdalina J12,Yu Hongyao3,Paudel Sudikshya12,Hu Guang3,Li Xiaoling4ORCID,Hemberger Myriam567ORCID,Wang Xiaoqiu12ORCID

Affiliation:

1. Department of Animal Science, North Carolina State University , Raleigh, NC, USA

2. The Comparative Medicine Institute, North Carolina State University , Raleigh, NC, USA

3. Epigenetics and Stem Cell Biology Laboratory, National Institute of Environmental Health Sciences , Research Triangle Park, NC, USA

4. Signal Transduction Laboratory, National Institute of Environmental Health Sciences , Research Triangle Park, NC, USA

5. Department of Biochemistry & Molecular Biology, Cumming School of Medicine, University of Calgary , Calgary, AB, Canada

6. Department of Medical Genetics, Cumming School of Medicine, University of Calgary , Calgary, AB, Canada

7. Alberta Children's Hospital Research Institute, University of Calgary, Calgary, AB, Canada

Abstract

Abstract A distinct age-related alteration in the uterine environment has recently been identified as a prevalent cause of the reproductive decline in older female mice. However, the molecular mechanisms that underlie age-associated uterine adaptability to pregnancy are not known. Sirtuin 1 (SIRT1), a multifunctional NAD+-dependent deacetylase that regulates cell viability, senescence and inflammation during aging, is reduced in aged decidua. Thus, we hypothesize that SIRT1 plays a critical role in uterine adaptability to pregnancy and that uterine-specific ablation of Sirt1 gene accelerates premature uterine aging. Female mice with uterine ablation of Sirt1 gene using progesterone receptor Cre (PgrCre) exhibit subfertility and signs of premature uterine aging. These Sirt1-deficient mothers showed decreases in litter size from their 1st pregnancy and became sterile (25.1 ± 2.5 weeks of age) after giving birth to the third litter. We report that uterine-specific Sirt1 deficiency impairs invasion and spacing of blastocysts, and stromal cell decidualization, leading to abnormal placentation. We found that these problems traced back to the very early stages of hormonal priming of the uterus. During the window of receptivity, Sirt1 deficiency compromises uterine epithelial–stromal crosstalk, whereby estrogen, progesterone and Indian hedgehog signaling pathways are dysregulated, hampering stromal cell priming for decidualization. Uterine transcriptomic analyses also link these causes to perturbations of histone proteins and epigenetic modifiers, as well as adrenomedullin signaling, hyaluronic acid metabolism, and cell senescence. Strikingly, our results also identified genes with significant overlaps with the transcriptome of uteri from aged mice and transcriptomes related to master regulators of decidualization (e.g. Foxo1, Wnt4, Sox17, Bmp2, Egfr and Nr2f2). Our results also implicate accelerated deposition of aging-related fibrillar Type I and III collagens in Sirt1-deficient uteri. Collectively, SIRT1 is an important age-related regulator of invasion and spacing of blastocysts, as well as decidualization of stromal cells.

Funder

North Carolina State University

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Obstetrics and Gynecology,Genetics,Molecular Biology,Embryology,Reproductive Medicine

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