Literature DB >> 27125691

Effect of heat stress on the survival and development of in vitro cultured bovine preantral follicles and on in vitro maturation of cumulus-oocyte complex.

V M Paes1, L A Vieira1, H H V Correia1, N A R Sa1, A A A Moura2, A D Sales1, A P R Rodrigues1, D M Magalhães-Padilha3, F W Santos4, G A Apgar5, C C Campello1, L S A Camargo6, J R Figueiredo7.   

Abstract

The deleterious effect of heat stress (HS) on competence of oocytes from antral follicles is well recognized, but there is a lack of data regarding its impact on the viability and growth of preantral follicles. In this study, we used in vitro preantral follicle cultures to investigate the effects of HS on the following parameters: survival and development of primordial follicles after in vitro culture of ovarian fragments (experiment I); growth and antrum formation of isolated advanced secondary follicles (experiment II); and maturation rates after in vitro maturation (IVM) of cumulus-oocyte complexes (COCs) from antral follicles (>2-6 mm) grown in vivo (experiment III). Furthermore, the following end points were evaluated in all experiments: follicle/oocyte survival, reactive oxygen species (ROS), estradiol (E2) and progesterone (P4) production, as well as mRNA expression for select genes related to stress (HSP70) and apoptosis (MCL1 and BAX). In all experiments, HS consisted of exposing the structures (ovarian fragments, isolated preantral follicles and COCs) to 41 °C for 12 hours and then to 38.5 °C until the end of the culture (7 days for experiments I and II and 24 hours for experiment III). The temperature for the control group was held at 38.5 °C for the entire culture period. Heat stress increased (P < 0.05) the percentage of developing follicles (intermediate, primary, and secondary follicles) at 12 hours and increased levels of ROS at all evaluated time points (12, 24 hours, and D7), when compared to the control (experiment I). Heat stress did not affect (P > 0.05) any identified end points when preantral follicles were cultured in their isolated form (experiment II). However, in experiment III, HS decreased (P < 0.05) both the rates of metaphase II after 24 hours and E2 production at 12 hours of IVM. Moreover, HS increased (P < 0.0001) levels of P4 after IVM and ROS production at every evaluated time point, compared with the control (12 and 24 hours). In conclusion, HS caused: (1) early activation of primordial follicles; (2) an increase in ROS production by early preantral follicles enclosed in ovarian tissue and by COCs; (3) a short-term reduction of E2 production by COCs; and (4) an increase in P4 secretion from COCs. However, HS did not affect in vitro culture of advanced isolated secondary follicles. Experimental evidence indicates that preantral follicles are less sensitive to HS than COC.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Bovine; Heat stress; In vitro culture; Oocyte; Preantral follicle

Mesh:

Year:  2016        PMID: 27125691     DOI: 10.1016/j.theriogenology.2016.03.027

Source DB:  PubMed          Journal:  Theriogenology        ISSN: 0093-691X            Impact factor:   2.740


  10 in total

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2.  Joint Transcriptome and Metabolome Analysis Prevails the Biological Mechanisms Underlying the Pro-Survival Fight in In Vitro Heat-Stressed Granulosa Cells.

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Review 4.  Review of the impact of heat stress on reproductive performance of sheep.

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Review 5.  Importance of Antioxidant Supplementation during In Vitro Maturation of Mammalian Oocytes.

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6.  Control of growth and development of preantral follicle: insights from in vitro culture.

Authors:  José Ricardo de Figueiredo; Laritza Ferreira de Lima; José Roberto Viana Silva; Regiane Rodrigues Santos
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Review 7.  Nutritional Physiology and Biochemistry of Dairy Cattle under the Influence of Heat Stress: Consequences and Opportunities.

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9.  Mitochondrial-related consequences of heat stress exposure during bovine oocyte maturation persist in early embryo development.

Authors:  Rebecca R Payton; Louisa A Rispoli; Kimberly A Nagle; Cedric Gondro; Arnold M Saxton; Brynn H Voy; J Lannett Edwards
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Authors:  Hui-Xian Xu; Shu-Xia Lin; Yuewen Gong; Zi-Xuan Huo; Cheng-Yun Zhao; Hong-Mei Zhu; Sheng-Yan Xi
Journal:  Front Pharmacol       Date:  2020-03-24       Impact factor: 5.810

  10 in total

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