Modelling the impact of decidual senescence on embryo implantation in human endometrial assembloids

Author:

Rawlings Thomas M12,Makwana Komal12,Taylor Deborah M123,Molè Matteo A4,Fishwick Katherine J1,Tryfonos Maria12,Odendaal Joshua15,Hawkes Amelia15,Zernicka-Goetz Magdalena46ORCID,Hartshorne Geraldine M123,Brosens Jan J125ORCID,Lucas Emma S12ORCID

Affiliation:

1. Division of Biomedical Sciences, Warwick Medical School, University of Warwick

2. Centre for Early Life, Warwick Medical School, University of Warwick

3. Centre for Reproductive Medicine, University Hospitals Coventry and Warwickshire NHS Trust

4. Department of Physiology, Development and Neuroscience, University of Cambridge

5. Tommy’s National Centre for Miscarriage Research, University Hospitals Coventry & Warwickshire NHS Trust

6. Synthetic Mouse and Human Embryology Group, California Institute of Technology (Caltech), Division of Biology and Biological Engineering

Abstract

Decidual remodelling of midluteal endometrium leads to a short implantation window after which the uterine mucosa either breaks down or is transformed into a robust matrix that accommodates the placenta throughout pregnancy. To gain insights into the underlying mechanisms, we established and characterized endometrial assembloids, consisting of gland-like organoids and primary stromal cells. Single-cell transcriptomics revealed that decidualized assembloids closely resemble midluteal endometrium, harbouring differentiated and senescent subpopulations in both glands and stroma. We show that acute senescence in glandular epithelium drives secretion of multiple canonical implantation factors, whereas in the stroma it calibrates the emergence of anti-inflammatory decidual cells and pro-inflammatory senescent decidual cells. Pharmacological inhibition of stress responses in pre-decidual cells accelerated decidualization by eliminating the emergence of senescent decidual cells. In co-culture experiments, accelerated decidualization resulted in entrapment of collapsed human blastocysts in a robust, static decidual matrix. By contrast, the presence of senescent decidual cells created a dynamic implantation environment, enabling embryo expansion and attachment, although their persistence led to gradual disintegration of assembloids. Our findings suggest that decidual senescence controls endometrial fate decisions at implantation and highlight how endometrial assembloids may accelerate the discovery of new treatments to prevent reproductive failure.

Funder

Wellcome Trust

MRC Doctoral Training Partnership

Warwick-Wellcome Trust Translational Partnership

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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