Department of Veterinary Medical Sciences, Alma Mater Studiorum-University of Bologna, Bologna, Italy.
Department of Veterinary Medical Sciences, Alma Mater Studiorum-University of Bologna, Bologna, Italy.
Anim Reprod Sci. 2024 Dec;271:107633. doi: 10.1016/j.anireprosci.2024.107633. Epub 2024 Nov 3.
Sperm metabolism consists of a sophisticated network of biochemical reactions and varies between species, resulting in different metabolic strategies for ATP production to maintain sperm functionality. ATP can be produced through glycolysis or in the mitochondria by oxidative phosphorylation (OXPHOS). Since OXPHOS is the predominant metabolic pathway in horses spermatozoa, various assessments of mitochondrial activity are used to evaluate fertility, utilizing techniques such as fluorescent probes analysed via microscopy or flow cytometry, and polarographic electrode assays to measure current flow in response to an applied voltage. Though, these methods are limited by low throughput, as they assess mitochondrial activity at a single time point under a specific treatment condition. This study explores, for the first time, the application of the Agilent Seahorse XFp Technology to evaluate metabolism in stallion spermatozoa. This method enables real-time measurement of cellular metabolism across multiple samples or experimental conditions simultaneously. Ejaculates from eight different stallions were collected, and pools were prepared from three of them. Sperm viability and mitochondrial activity were evaluated by fluorescence microscopy, sperm motility by a computer-assisted sperm analysis system, and sperm metabolism was analysed via the Seahorse XFp analyser. Results confirmed a preference for OXPHOS over glycolysis in ATP production in stallion sperm, with mitochondria contributing significantly to total ATP generation. The Seahorse XFp Technology proved effective in evaluating equine sperm bioenergetics, offering insights into metabolic pathways critical for sperm function. In conclusion, this technology grants a new method for high-throughput analysis of sperm metabolism and quality, which could be applied to future reproductive studies in male equine fertility.
精子代谢由一系列复杂的生化反应组成,因物种而异,导致产生 ATP 的代谢策略也不同,以维持精子功能。ATP 可以通过糖酵解或线粒体中的氧化磷酸化(OXPHOS)产生。由于 OXPHOS 是马精子中主要的代谢途径,因此使用各种评估线粒体活性的方法来评估生育能力,例如通过显微镜或流式细胞术分析荧光探针,以及通过测量电流对施加电压的响应来测量极谱电极测定法的电流。尽管如此,这些方法受到低通量的限制,因为它们在特定处理条件下仅评估单个时间点的线粒体活性。本研究首次探索了安捷伦 Seahorse XFp 技术在评估种马精子代谢中的应用。该方法能够同时实时测量多个样本或实验条件下的细胞代谢。从 8 头不同的种马中收集精液,并从其中 3 头制备混合液。通过荧光显微镜评估精子活力和线粒体活性,通过计算机辅助精子分析系统评估精子运动能力,通过 Seahorse XFp 分析仪分析精子代谢。结果证实了种马精子中 OXPHOS 对糖酵解产生 ATP 的偏好,线粒体对总 ATP 生成有重要贡献。Seahorse XFp 技术被证明可有效评估马精子的生物能量学,深入了解对精子功能至关重要的代谢途径。总之,该技术为精子代谢和质量的高通量分析提供了一种新方法,可应用于未来对雄性马种生育能力的生殖研究。