Effects of lactate, super-GDF9, and low oxygen tension during bi-phasic in vitro maturation on the bioenergetic profiles of mouse cumulus–oocyte complex

Author:

Akin Nazli1,Ates Gamze23,von Mengden Lucia45,Herta Anamaria-Cristina1,Meriggioli Cecilia1,Billooye Katy1,Stocker William A67,Ghesquiere Brecht8,Harrison Craig A67,Cools Wilfried9,Klamt Fabio45,Massie Ann23,Smitz Johan1,Anckaert Ellen1

Affiliation:

1. Follicle Biology Laboratory (FOBI), Vrije Universiteit Brussel (VUB) , Brussels , Belgium

2. Laboratory of Neuro-Aging and Viro-Immunotherapy , Center for Neurosciences (C4N), , Brussels , Belgium

3. Vrije Universiteit Brussel (VUB) , Center for Neurosciences (C4N), , Brussels , Belgium

4. Laboratory of Cellular Biochemistry , Department of Biochemistry, ICBS, , Porto Alegre , Brazil

5. Federal University of Rio Grande do Sul (UFRGS) , Department of Biochemistry, ICBS, , Porto Alegre , Brazil

6. Department of Physiology , Monash Biomedicine Discovery Institute, , Clayton, VIC , Australia

7. Monash University , Monash Biomedicine Discovery Institute, , Clayton, VIC , Australia

8. Research Group Reproduction and Genetics, Vrije Universiteit Brussel (VUB) , Brussels , Belgium

9. Support for Quantitative and Qualitative Research (SQUARE) Core Facility, Vrije Universiteit Brussel (VUB) , Brussels , Belgium

Abstract

Abstract In vitro maturation (IVM) is an alternative assisted reproductive technology with reduced hormone-related side effects and treatment burden compared to conventional IVF. Capacitation (CAPA)-IVM is a bi-phasic IVM system with improved clinical outcomes compared to standard monophasic IVM. Yet, CAPA-IVM efficiency compared to conventional IVF is still suboptimal in terms of producing utilizable blastocysts. Previously, we have shown that CAPA-IVM leads to a precocious increase in cumulus cell (CC) glycolytic activity during cytoplasmic maturation. In the current study, considering the fundamental importance of CCs for oocyte maturation and cumulus–oocyte complex (COC) microenvironment, we further analyzed the bioenergetic profiles of maturing CAPA-IVM COCs. Through a multi-step approach, we (i) explored mitochondrial function of the in vivo and CAPA-IVM matured COCs through real-time metabolic analysis with Seahorse analyzer, and to improve COC metabolism (ii) supplemented the culture media with lactate and/or super-GDF9 (an engineered form of growth differentiation factor 9) and (iii) reduced culture oxygen tension. Our results indicated that the pre-IVM step is delicate and prone to culture-related disruptions. Lactate and/or super-GDF9 supplementations failed to eliminate pre-IVM-induced stress on COC glucose metabolism and mitochondrial respiration. However, when performing pre-IVM culture under 5% oxygen tension, CAPA-IVM COCs showed similar bioenergetic profiles compared to in vivo matured counterparts. This is the first study providing real-time metabolic analysis of the COCs from a bi-phasic IVM system. The currently used analytical approach provides the quantitative measures and the rational basis to further improve IVM culture requirements.

Funder

Fonds voor Wetenschappelijk Onderzoek Vlaanderen

Excellence of Science

FWO medium-scale research infrastructure program

Vrije Universiteit Brussel

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,General Medicine,Reproductive Medicine

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