| Literature DB >> 27708774 |
Jieyun Li1, Hui Gao2, Zhen Tian1, Yi Wu1, Yingzheng Wang2, Yuan Fang1, Lu Lin1, Ying Han1, Shuaishuai Wu1, IhteshamUl Haq1, Shenming Zeng1.
Abstract
BACKGROUND: Heat stress is known to alter follicular dynamics and granulosa cell function and may contribute to the diminished reproductive efficiency commonly observed in mammals during the summer. Although several investigators have studied heat-induced ovarian injury, few reports have focused on the effects of chronic heat stress on ovarian function and the molecular mechanisms through which it induces ovarian injury.Entities:
Keywords: Apoptosis; Atresia; Follicle; Granulosa cells; Heat stress; Mice
Year: 2016 PMID: 27708774 PMCID: PMC5043540 DOI: 10.1186/s40104-016-0116-6
Source DB: PubMed Journal: J Anim Sci Biotechnol ISSN: 1674-9782
Fig. 1a Effects of chronic heat stress on body weights, ovarian HSP70 level and serum estradiol concentration. Effects of heat stress on body weights of control and heat-stressed female mice. b and c Expression of HSP70 in ovaries of control (Con) and heat-stressed (HS) mice. HSP70 was detected in the lysates of ovaries of mice after each wk of treatment by Western Blot. β-actin was used as a reference. d Concentrations of estradiol in serum of heat-stressed mice from d 7 to 28 of treatment. *, indicates P <0.05 compared with the control
Fig. 2Effects of chronic heat stress on granulosa cells apoptosis and follicular atresia in the ovaries of mice. a TUNEL signals intensities in the follicles of ovaries from control (Con) and heat-stressed (HS) mice after 21 d of treatment: (a, d) follicles with weak apoptotic signals, (b, e) follicles with intermediate apoptotic signals, (c, f) follicles with strong apoptotic signals. Bar = 50 μm. b Effects of heat stress on the number of antral follicles with different apoptosis signal intensities after 21 d of heat treatment. c Morphology of follicles stained with haematoxylin and eosin from ovaries of control and heat-stressed mice. Panels (a-c) Follicles from ovaries of control mice after 21 d of treatment. Panels (d-f) follicles from ovaries of heat-stressed mice after 21 d of treatment. The red triangle indicates healthy antral follicles; the red rectangle indicates healthy pre-antral follicles; the red asterisk indicates atretic follicles. Bar = 50 μm. d The percentage of atretic follicles in the total population of antral follicles on the ovaries after 4 wk of treatment. *indicates P <0.05 compared with the control
Fig. 3Effects of heat stress on expression of HSP70 and aromatase in cultured antral follicles obtained from mice. a Effect of heat stress on the expression of HSP70 and aromatase in cultured antral follicles. Antral follicles were cultured at 37 (Con) or 42 °C (HS) for 24 h. HSP70 and aromatase proteins were analyzed by Western Blotting. b Relative abundance of HSP70 and aromatase proteins in antral follicles cultured at 37 (Con) or 42 °C (HS) for 24 h. Proteins were normalized with β-actin. *indicates P < 0.05 compared with the control
Fig. 4a Effects of heat stress on apoptosis in ovarian granulosa cells. Representative photomicrographs of Hoechst and TUNEL-stained granulosa cells from ovaries of control and heat-stressed mice. Ovarian heat treatment was carried out in a 37 (Con) or 41 °C (HS) water bath for 2 h. After heat stress, granulosa cells were collected from the ovaries and cultured for another 24 h. b The percentage of trypan blue-positive granulosa cells from the ovaries of mice in the control (Con) and heat stress (HS) treatments. c The ovaries were exposed to a 37 (Con) or 41 °C (HS) water bath for 2 h and then the granulosa cells were collected and cultured for either 0 or 24 h. Thereafter, the cells were collected and the expression of HSP70, Bim, caspase-3 and cleaved caspase-3 were detected in the cell lysates. d Relative protein levels of granulosa cells before heat treatment. e Relative protein levels of granulosa cells 24 h after heat treatment. *indicates P < 0.05 compared with the control