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Impairment of adenosine signaling disrupts early embryo development: unveiling the underlying mechanisms
Talita Glaser1, Patrícia Martins1, Renata Beco1
1Department of Biochemistry, Institute of Chemistry, University of São Paulo, SãoPaulo, Brazil.
Abstract:
Purinergic signaling has been implicated in many biological functions, including development. In this study, we investigate the functions of extracellular adenosine and adenosine receptors using a mouse embryonic stem cell (ESC) line and morula stages isolated from mouse embryos. Feeder-free mouse ESC was investigated in the absence and presence of the leukemia inhibitory factor (LIF), configuring undifferentiated cells and cells undergoing spontaneous differentiation. High alkaline phosphatase (ALPL) and low CD73 levels resulting in low adenosine (eADO) levels were characteristic for pluripotent cells in the presence of the LIF, while LIF deprivation resulted in augmented adenosine levels and reduced pluripotency marker expression, which indicated differentiation. Tracing ESC proliferation by BrdU labeling revealed that the inhibition of ALPL by levamisole resulted in a decrease in proliferation due to less eADO accumulation. Furthermore, caffeine and levamisole treatment, inhibiting adenosine receptor and eADO accumulation, respectively, reduced ESC migration, similar to that observed in the absence of the LIF. Pharmacological approaches of selective adenosine receptor subtype inhibition triggered specific adenosine receptor activities, thus triggering calcium or MAP kinase pathways leading to differentiation. In line with the in vitro data, mouse embryos at the morula stage were sensitive to treatments with A1 and A3 receptor antagonists, leading to the conclusion that A1 receptor and A3 receptor inhibition impairs proliferation and self-renewal and triggers inappropriate differentiation, respectively. The findings herein define the functions of eADO signaling in early development with implications for developmental disorders, in which adenosine receptors or ectonucleotidase dysfunctions are involved, and which could lead to malformations and miscarriages, due to exposure to caffeine.
Insights
Extracellular adenosine (eADO) signaling regulates mouse embryonic stem cell (ESC) pluripotency and differentiation. Inhibiting adenosine receptors or eADO accumulation impairs proliferation and self-renewal, impacting early development.
Area of Science:
- Developmental Biology
- Cell Signaling
- Stem Cell Biology
Background:
- Purinergic signaling, particularly extracellular adenosine (eADO), plays a role in various biological functions, including embryonic development.
- Understanding the precise mechanisms of eADO signaling in early development is crucial for addressing developmental disorders.
Purpose of the Study:
- To investigate the functions of extracellular adenosine and adenosine receptors in mouse embryonic stem cells (ESCs) and early mouse embryos.
- To elucidate the role of eADO signaling in maintaining pluripotency, proliferation, and differentiation during early development.
Main Methods:
- Utilized feeder-free mouse ESCs cultured with or without leukemia inhibitory factor (LIF).
- Assessed pluripotency markers, adenosine levels, proliferation (BrdU labeling), and migration.
- Employed pharmacological inhibitors for alkaline phosphatase (ALPL), adenosine receptors, and ectonucleotidases (e.g., levamisole, caffeine).
- Examined the effects of receptor antagonists on mouse embryos at the morula stage.
Main Results:
- Pluripotent ESCs (with LIF) exhibited high ALPL and low CD73, resulting in low eADO levels.
- LIF deprivation led to increased adenosine levels, reduced pluripotency, and induced differentiation.
- Inhibition of ALPL or adenosine receptors (A1, A3) decreased ESC proliferation, migration, and self-renewal, while promoting differentiation.
- Morula stage embryos were sensitive to A1 and A3 receptor antagonists, confirming in vitro findings.
Conclusions:
- Extracellular adenosine signaling is critical for maintaining ESC pluripotency, proliferation, and self-renewal.
- Dysregulation of adenosine receptors or ectonucleotidases during early development can lead to impaired development and potential malformations.
- Caffeine exposure during critical developmental windows may pose risks due to its effects on adenosine signaling.

