载香芹酚磷脂小体对提高水牛精液低温保存后的耐寒性的有益影响。

IF 3.9 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Wael A Khalil, Salwa A Elkhamy, Mohamed M Hegazy, Mahmoud A E Hassan, Ahmed Mowafy Tafish, Sameh A Abdelnour, Mostafa A El-Harairy
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引用次数: 0

摘要

精子冷冻保存技术是动物育种遗传进步的基础,正在进行的研究旨在最大限度地减少冷冻损伤。本研究旨在开发装载香芹酚的植物体(CLNPs),以提高香芹酚在水低温保存扩展剂中的物理化学性质。收集5头水牛的精液样本,延长并冷冻保存不同浓度的CLNPs(0、2.5、5、10和20µg/mL)。新制备的CLNPs平均粒径为286.7±11.27 nm,多分散性指数为0.189±0.05,zeta电位为- 11.4±0.26 mV。在冷冻培养基中添加CLNPs,在平衡(5°C 4小时)和解冻后,精子的进行性、活力和质膜完整性都得到了显著提高。此外,CLNPs处理组的精子运动参数(p2o2和MDA)显著升高,CLNPs处理组的精子运动参数(p2o2和MDA)显著降低
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Beneficial effects of carvacrol loaded phytosomes on enhancing cryotolerance of Buffalo semen following cryopreservation.

Beneficial effects of carvacrol loaded phytosomes on enhancing cryotolerance of Buffalo semen following cryopreservation.

Beneficial effects of carvacrol loaded phytosomes on enhancing cryotolerance of Buffalo semen following cryopreservation.

Beneficial effects of carvacrol loaded phytosomes on enhancing cryotolerance of Buffalo semen following cryopreservation.

Sperm cryopreservation technology underpins genetic advancement in animal breeding and ongoing research aims to minimize cryoinjuries. This study aimed to develop carvacrol-loaded phytosomes (CLNPs) to enhance the physicochemical properties of carvacrol in aqueous cryopreservation extenders. Semen samples from five buffalo bulls were collected, extended and cryopreserved with varying CLNPs concentrations (0, 2.5, 5, 10, and 20 µg/mL). The freshly prepared CLNPs exhibited an average particle size of 286.7 ± 11.27 nm, a polydispersity index of 0.189 ± 0.05, and a zeta potential of - 11.4 ± 0.26 mV. Supplementing the freezing media with CLNPs significantly enhanced sperm progressive motility, viability, and plasma membrane integrity after both equilibration (5 °C for 4 h) and thawing. Furthermore, sperm kinematic parameters were significantly higher in all CLNPs-treated groups (P < 0.05). Compared to the CLNPs-free extender, CLNPs supplementation significantly reduced the percentage of dead sperm with intact acrosomes and increased the percentage of live sperm with intact acrosomes (P < 0.001). Post-thaw oxidative stress markers, including H2O2 and MDA, were significantly lower in all CLNPs groups (P < 0.001). Notably, the addition of 10 or 20 µg/mL of CLNPs increased TAC and significantly decreased nitric oxide levels compared to the control. Mitochondrial membrane potential and viable sperm counts were significantly higher in the CLNPs-treated groups (P < 0.001). CLNPs also significantly decreased the total bacterial count, spore-forming bacteria, and coliform bacteria in the post-thawed semen microbiota (P < 0.001). Higher CLNPs concentrations (10 or 20 µg/mL) appeared to provide superior protection, as evidenced by a greater proportion of sperm cells displaying normal nuclear, plasma membrane, mitochondrial, and acrosomal morphology. The pregnancy rate in the 20 µg/mL CLNPs group (86%, n = 43/50) was higher than in the control group (72%, n = 36/50). Molecular docking analysis revealed binding energies of - 6.22, - 4.93, - 4.44, and - 5.36 kcal/mol for Cox7c, Hsp70, PrxIII, and ATP1B1, respectively. This study introduces a novel nanotechnology-based approach using CLNPs to enhance buffalo semen cryopreservation, potentially significantly advancing assisted reproductive technologies in buffalo.

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来源期刊
Scientific Reports
Scientific Reports Natural Science Disciplines-
CiteScore
7.50
自引率
4.30%
发文量
19567
审稿时长
3.9 months
期刊介绍: We publish original research from all areas of the natural sciences, psychology, medicine and engineering. You can learn more about what we publish by browsing our specific scientific subject areas below or explore Scientific Reports by browsing all articles and collections. Scientific Reports has a 2-year impact factor: 4.380 (2021), and is the 6th most-cited journal in the world, with more than 540,000 citations in 2020 (Clarivate Analytics, 2021). •Engineering Engineering covers all aspects of engineering, technology, and applied science. It plays a crucial role in the development of technologies to address some of the world''s biggest challenges, helping to save lives and improve the way we live. •Physical sciences Physical sciences are those academic disciplines that aim to uncover the underlying laws of nature — often written in the language of mathematics. It is a collective term for areas of study including astronomy, chemistry, materials science and physics. •Earth and environmental sciences Earth and environmental sciences cover all aspects of Earth and planetary science and broadly encompass solid Earth processes, surface and atmospheric dynamics, Earth system history, climate and climate change, marine and freshwater systems, and ecology. It also considers the interactions between humans and these systems. •Biological sciences Biological sciences encompass all the divisions of natural sciences examining various aspects of vital processes. The concept includes anatomy, physiology, cell biology, biochemistry and biophysics, and covers all organisms from microorganisms, animals to plants. •Health sciences The health sciences study health, disease and healthcare. This field of study aims to develop knowledge, interventions and technology for use in healthcare to improve the treatment of patients.
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