低氧胁迫对青海湖裸鲤肌肉线粒体呼吸链复合体酶及抗氧化酶活性的影响Effects of Hypoxia Stress on Activities of Mitochondrial Respiratory Chain Complexes and Antioxidant Enzyme in Muscle of Lake Qinghai Scaleless Carp
陈付菊,付生云,令小东,常兰,李雪源
摘要(Abstract):
【目的】研究青海湖裸鲤在低氧胁迫下肌肉组织线粒体呼吸链复合体酶活性及抗氧化酶活性的变化规律,探讨其对低氧的应答机制。【方法】取体质量为(97.68±0.12)g的青海湖裸鲤,分别于中、重度低氧[溶解氧分别为(3.0±0.1)、(0.7±0.1) mg/L]条件下胁迫8、24 h,观察肌肉组织线粒体形态结构,检测线粒体呼吸链复合体Ⅰ-Ⅳ酶活性及抗氧化酶活性。【结果】1)重度低氧胁迫使肌肉组织线粒体长径较常氧对照组大(P <0.05),短径在胁迫8 h时显著增大(P <0.05),胁迫24 h与对照组无显著差异(P> 0.05);部分线粒体嵴溶解,线粒体出现空泡化。中度低氧胁迫组长径和短径与常氧组无显著差异(P> 0.05),未见空泡形成。2)线粒体呼吸链复合体Ⅰ和Ⅲ活性在重度低氧胁迫8 h时显著增加(P <0.05),24 h时降至常氧水平,二者在中度低氧胁迫24 h时显著增加(P <0.05);复合体Ⅱ在各组之间均无显著变化(P> 0.05);复合体Ⅳ在重度低氧胁迫后与常氧组之间无显著差异,而在中度低氧胁迫24 h时显著增加(P <0.05)。3)过氧化氢(H2O2)含量在重度低氧胁迫8 h时显著增加(P <0.05),24 h时降至常氧水平,中度低氧胁迫24 h时与常氧组之间无显著差异(P> 0.05);丙二醛(MDA)含量在重度和中度低氧胁迫后显著增加(P <0.05);超氧化物歧化酶(SOD)活性在重度低氧胁迫后与常氧组之间无显著差异,而在中度低氧胁迫24 h时显著增加(P <0.05);总抗氧化能力(T-AOC)和谷胱甘肽过氧化物酶(GPX)活性在重度和中度低氧胁迫后显著增加(P <0.05)。【结论】青海湖裸鲤肌肉组织对溶氧骤变产生应答反应,通过调整线粒体体积、形状结构、呼吸链复合体酶活性及相关抗氧化酶活性提高其低氧适应能力。
关键词(KeyWords): 青海湖裸鲤;低氧胁迫;肌肉组织;线粒体呼吸链复合体活性;抗氧化酶活性
基金项目(Foundation): 青海省科技厅应用基础研究项目(2018-ZJ-729)
作者(Author): 陈付菊,付生云,令小东,常兰,李雪源
参考文献(References):
- [1] MAGNONI L J, EDING E, LEGUEN I, et al. Hypoxia, but not an electrolyte-imbalanced diet, reduces feed intake,growth and oxygen consumption in rainbow trout(Oncorhynchus mykiss)[J]. Scientific Reports, 2018, 8(1):4965.
- [2] LAI K P, WANG S Y, LI J W, et al. Hypoxia causes transgenerational impairment of ovarian development and hatching success in fish[J]. Environmental Science&Technology, 2019, 53(7):3917-3928.
- [3]郭志雄,曾泽乾,黄建盛,等.急性低氧胁迫对大规格军曹鱼幼鱼肝脏氧化应激、能量利用及糖代谢的影响[J].广东海洋大学学报, 2020, 40(3):134-140.
- [4] RICHARDS J G. Physiological and biochemical adaptations of intertidal fishes to hypoxia[J]. Journal of Experimental Biology, 2011, 214(2):191-199.
- [5] CADENAS S. Mitochondrial uncoupling, ROS generation and cardioprotection[J]. Biochimica et Biophysica Acta(BBA)-Bioenergetics, 2018, 1859(9):940-950.
- [6] DAN D J, ALVAREZ L A, ZHANG X, et al. Reactive oxygen species and mitochondria:A nexus of cellular homeostasis[J]. Redox Biology, 2015, 6:472-485..
- [7] SINHA N, DABLA P K. Oxidative stress and antioxidants in hypertension-a current review[J]. Current Hypertension Reviews, 2015, 11(2):132-142.
- [8] ZOROV D B, JUHASZOVA M, SOLLOTT S J.Mitochondrial reactive oxygen species(ROS)and ROS-induced ROS release[J]. Physiological Reviews, 2014,94(3):909-950.
- [9] DI MEO S, REED T T, VENDITTI P, et al. Role of ROS and RNS sources in physiological and pathological conditions[J]. Oxidative Medicine and Cellular Longevity,2016, 2016:1245049.
- [10] DIAZ J M, PLUMMER S. Production of extracellular reactive oxygen species by phytoplankton:past and future directions[J]. Journal of Plankton Research, 2018, 40(6):655-666.
- [11] MATEY V, RICHARDS J G, WANG Y X, et al. The effect of hypoxia on gill morphology and ionoregulatory status in the Lake Qinghai scaleless carp, Gymnocypris przewalskii[J]. The Journal of Experimental Biology, 2008,211(Pt 7):1063-1074.
- [12]陈付菊,赵宇田,付生云,等.溶解氧水平对青海湖裸鲤体肾组织结构及抗氧化酶活性的影响[J/OL].水生生物学报:1-12[2021-10-26]. http://kns.cnki.net/kcms/detail/42.1230.Q.20210429.1329.002.html.
- [13]陈付菊,多杰当智,付生云,等.不同溶解氧水平对青海湖裸鲤肝组织结构及抗氧化酶活性的影响[J].淡水渔业, 2021, 51(5):13-20.
- [14]魏琳,邱立国,李玉虎,等.低氧胁迫下不同品种凡纳滨对虾线粒体超微结构的比较[J].热带生物学报, 2016,7(1):17-22.
- [15] RASMUSSEN U F, KRUSTRUP P, BANGSBO J, et al.The effect of high-intensity exhaustive exercise studied in isolated mitochondria from human skeletal muscle[J].Pflügers Archiv, 2001, 443(2):180-187.
- [16]陈世喜,王鹏飞,区又君,等.急性和慢性低氧胁迫对卵形鲳鲹幼鱼肝组织损伤和抗氧化的影响[J].动物学杂志, 2016, 51(6):1049-1058.
- [17]徐文,罗芳,周林,等. CLA对急性缺氧大鼠肝脏线粒体呼吸链酶活性及氧化应激的影响[J].现代生物医学进展, 2010, 10(24):4630-4633.
- [18]杨明,孙盛明,傅洪拓,等.低氧和复氧对日本沼虾抗氧化酶活力及组织结构的影响[J].中国水产科学, 2019,26(3):493-503.
- [19]王维政,曾泽乾,黄建盛,等.低氧胁迫对军曹鱼幼鱼抗氧化、免疫能力及能量代谢的影响[J].广东海洋大学学报, 2020, 40(5):12-18.
- [20] SHEN Z B, YIN Y Q, TANG C P, et al. Pharmacodynamic screening and simulation study of anti-hypoxia active fraction of Xiangdan injection[J]. Journal of Ethnopharmacology, 2010, 127(1):103-107.
- [21]常志成,温海深,张美昭,等.溶解氧水平对花鲈幼鱼氧化应激与能量利用的影响及生理机制[J].中国海洋大学学报(自然科学版), 2018, 48(7):20-28.
- [22] SNEZHKINA A V, KUDRYAVTSEVA A V,KARDYMON O L, et al. ROS generation and antioxidant defense systems in normal and malignant cells[J].Oxidative Medicine and Cellular Longevity, 2019, 2019:1-17.
- [23]孙俊霄,韩广坤,刘娅,等.杂交黄颡鱼与普通黄颡鱼幼鱼生长性能及耐低氧能力的比较[J].水生生物学报,2019, 43(6):1271-1279.