H2020Individual fellowship2019–2022

GERMINOID · Development of human primordial germ cells towards the onset of sperm and egg differentiation in a novel model culture system

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-06-01 → 2022-01-29
EU contribution
€212,934
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Development of human primordial germ cells towards the onset of sperm and egg differentiation in a novel model culture system

What is the problem/issue being addressed? The precise mechanisms regulating the origin and early development of human primordial germ cells (hPGCs) are not well understood, mainly because of technical reasons and the inaccessibility to early human post-implantation embryos (weeks 2–4 after conception). This lack of basic knowledge leads to protocols for hPGC-like cell (hPGCLC) specification and progression with low efficiencies. To advance the knowledge in this key stage of human development, we proposed to combine efforts and create a robust in vitro system to model hPGC specification and development. This strategy was designed to benefit from the cell culture capabilities of the three-layer gradient system (3-LGS), a three-dimensional (3D) cell culture methodology that I invented during my PhD, as well as from the expertise of the Surani lab in creating artificial early stage hPGCs (hPGCLCs) from human pluripotent stem cells (hPSCs). We proposed to generate human gonadal organoids from embryonic primary cells, which we call “germinoids”, to explore support for developing hPGCLCs beyond the in vivo equivalent 2-wk stage. Why is it important for society? Understanding exactly how hPGCs are specified and how these cells progress is critical to recognize developmental issues and disease associated with the cell line responsible to carry genetic and epigenetic information to the next generations. Fertility preservation: An increasing number of women and men are affected by fertility related problems. Among these, young boys and girls undergoing chemotherapy and radiotherapy treatments have a high risk to lose their germline and their chance to become biological parents. The use of hPSCs brings the opportunity to generate patient-tailored derived tissues, including hPGCLCs. Livestock and endangered species: On the other hand, the application of similar principles to other animal species will contribute to design experimental pipelines for in vitro gametogenesis from species-specific PSCs. This will be of special relevance in reproductive assisted techniques for livestock and endangered species. What are the overall objectives? The objectives of this proposal were (1) to develop an in vitro embryonic gonadal organoid system (germinoid) to maintain hPGCs and support its maturation in long-term cultures and (2) to overcome the 2-week stage barrier and extend hPGCLC development to ~ week 5–9 supported by germinoid cultures. This would modelling the period after the hPGCs enter into the developing gonads. Finally conclusion points During this project, we reformulated and adjusted some of the initially proposed technics to achieve our main goals. From our findings we concluded that: 1. The hPGCLCs specified from the new protocols (developed during this project) have a higher propensity to progress beyond the nascently specified stage, at a tempo similar to that observed in vivo. 2. The germinoid co-culture demonstrated a beneficial role for hPGCLC progression in vitro. Therefore, our in vitro co-culture system has physiological relevance and shown to benefit hPGCLC progression in vitro.

Data: CORDIS, © European Union

Project objective

Human primordial germ cells (hPGCs), the precursors of sperm and eggs, originate in early pre-gastrulation post-implantation embryos (~wk2). Thereafter, hPGCs undergo wide epigenetic reprogramming during their migration to the primitive gonads (~wk3–7). While technical and ethical constraints preclude direct studies on early human embryos, recent development of 2D models using human pluripotent stem cells (hPSC), which simulate early post-implantation development, have been used to investigate the specification of hPGC-like cells (PGCLCs) equivalent to wk2 hPGCs. These models however cannot support extended maturation of hPGCLCs beyond this early stage. Here, we propose a novel 3D in vitro system to advance development of hPGCLCs up to the onset of gametogenesis, extending our knowledge of the key events of early human germline development. This project will benefit from the cell culture capabilities of the three-layer gradient system (3-LGS), a 3D cell culture method that I invented during my PhD, combined with the expertise of Prof. Surani’s lab in generating hPGCLCs from hPSCs. The 3-LGS will be used to create gonadal organoids from human fetal primary cells, which we call “germinoids”, in order to support further development of hPGCLCs beyond the in vivo equivalent 2-wk stage. During this innovative project, we intend to achieve our objectives to create firstly, the novel co-culture germinoid conditions, and secondly to use the model to advance hPGCLCs differentiation. The generation and characterization of germinoids will be conducted in a collaborative team of experienced scientists and students, under renowned supervision and within a supportive and available work environment and infrastructure. This project will extend my expertise and contribute to the host’s work on early human germ cell development. The outcome will be a breakthrough in the field of human germ cell biology, which will contribute to my ambition to progress my independent research career.

Original text from CORDIS.

Participants

  • THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union