盐度对蛋白核小球藻生长、叶绿素荧光参数及代谢酶的影响
PDF下载 (520)江灵芝,孙 雪,王玮蔚,徐年军.盐度对蛋白核小球藻生长、叶绿素荧光参数及代谢酶的影响[J].宁波大学学报(理工版),2013,26(03):6-10.DOI:
JIANG Ling-zhi,SUN Xue,WANG Wei-wei,XU Nian-jun.Effect of Salinity on the Growth, Chlorophyll Fluorescence Characteristics and Enzymes of Chlorella pyrenoidosa[J].Journal of Ningbo University(Natural Science & Engineering Edition),2013,26(03):6-10.DOI:
| Title: | Effect of Salinity on the Growth, Chlorophyll Fluorescence Characteristics and Enzymes of Chlorella pyrenoidosa |
| 作者: | 江灵芝, 孙 雪, 王玮蔚, 徐年军 |
| Author(s): | JIANG Ling-zhi, SUN Xue, WANG Wei-wei, XU Nian-jun |
| 关键词: | 蛋白核小球藻; 盐度; 叶绿素荧光; 超氧化物歧化酶; 碳酸酐酶 |
| Keywords: | Chlorella pyrenoidosa; salinity; chlorophyll fluorescence; superoxide dismutase; carbonic anhydrase |
| 分类号: | Q513 |
| 文献标识码: | A |
| 摘要: | 以蛋白核小球藻820为实验材料, 研究了3种盐度(15、30、45)对其生长、叶绿素荧光参数和两种代谢酶活性的影响, 以了解该小球藻对盐度的适应能力. 结果表明, 蛋白核小球藻820的生长随盐度增加而变慢; 而油脂含量随盐度增加而升高. 叶绿素荧光参数中的PSII最大光能转化效率(Fv/Fm)、PSII实际光能转化效率(?PSII)、光化学淬灭系数(qP)随盐度升高下降, 而非光化学淬灭系数(NPQ)随盐度升高而上升. 超氧化物歧化酶(SOD)活性变化大致趋势是低盐和高盐下活性较高, 碳酸酐酶(CA)活性则随盐度升高而降低, 第5d时45盐度是30盐度培养的0.43倍. 因此, 认为高盐一定程度地抑制了蛋白核小球藻的生长、叶绿素荧光参数和CA活性, 但是促进了总脂含量和抗氧化酶SOD活性的提高. |
| Abstract: | Chlorella pyrenoidosa is a kind of important economic microalgae. In this paper, the effects of different salinity (15, 30 and 45) on the growth, total lipid content, chlorophyll fluorescence parameters and enzymic activities of C. pyrenoidosa 820 are investigated in order to understand how the alga responds to salinity. Results show that, with the increase of salinity, the growth speed of C. pyrenoidosa 820 decreases, but the lipid contents keep increasing. The chlorophyll fluorescence parameters of the maximal photochemical efficiency of PSII (Fv/Fm), actual photochemical efficiency of PSII (?PSII) and photochemical quenching (qP) declinee with the increasing salinity, whereas the non-photochemical quenching (NPQ) is enhanced with the increasing salinity. The superoxide dismutase (SOD) activities are higher under the 15 and 45 salinity than that of 30. The carbonic anhydrase (CA) activities are reversely propotional to the salinity increase, and CA activity of 45 is 43% of that of 30 salinity on the fifth day. These results suggest that the growth, chlorophyll fluorescence parameters and CA activity of C. pyrenoidosa are inhibited to a certain extent by the increased salinity, but the lipid content and SOD activity are enhanced to adapt the adverse salt environment. |
| 参考文献 /References: | [1] 胡开辉, 汪世华. 小球藻的研究开发进展[J]. 武汉工业学院学报, 2005, 24(3):27-30. [2] 杨鹭生, 李国平, 陈林水. 蛋白核小球藻粉的蛋白质、氨基酸含量及营养价值评价[J]. 亚热带植物科学, 2003, 32(1):36-38. [3] Xia J R, Li Y J, Zou D H. Effect of salinity stress on PSII in Ulva lactuca as probed by chlorophyll fluorescence measurements[J]. Aqua Bot, 2004, 80:129-137. [4] 王培磊, 袁子懿. 盐度对盐生杜氏藻生长及其色素积累的影响[J]. 水产科学, 2009, 28(2):71-74. [5] McCord J M, Fridovich I. Superoxide dismutase: An enzymic function for erythrocuprein (hemocuprein)[J]. J Biol Chem, 1969, 224:6049-6055. [6] 郭金耀, 杨晓玲. 盐藻超氧化物歧化酶分子类型鉴定[J]. 水产科学, 2011, 30(5): 298-300. [7] Jahnke L S, White A L. Long-term hyposaline and hypersaline stresses produce distinct antioxidant responses in the marine alga Dunaliella tertiolecta[J]. J Plant Physiol, 2003, 160:1193-1202. [8] Henry R E. Multiple roles of carbonic anhydrase in cellular transport and metabolism[J]. Annu Rev Physiol, 1996, 58:523-538. [9] Badger M R, Price G D. The role of carbonic anhydrase in photosynthesis[J]. Annu Rev Plant Physiol Plant Mol Biol, 1994, 45:369-392. [10] Liu W, Ming Y, Li P, et al. Inhibitory effects of hypo- osmotic stress on extracellular carbonic anhydrase and photosynthetic efficiency of green alga Dunaliella salina possibly through reactive oxygen species formation[J]. Plant Physiol Biochem, 2012, 54:43-48. [11] 丛峰, 孙雪, 徐年军. 几种小球藻油脂含量检测方法的比较及优化[J]. 宁波大学学报: 理工版, 2012, 25(1): 20-23. [12] 朱广廉, 钟海文, 张爱琴. 植物生理学试验[M]. 北京: 北京大学出版社, 1990:37-40. [13] Wilbur K M, Anderson N G. Electrometric and colorimetric determination of carbonic anhydrase[J]. J Biol Chem, 1948, 176:147-154. [14] Harwati T U, Willke T, Vorlop K D. Characterization of the lipid accumulation in a tropical freshwater microalgae Chlorococcum sp.[J]. Bioresource Technology, 2012, 121: 54-60. [15] 黄冠华, 陈锋. 环境因子对异养小球藻脂肪酸组分含量和脂肪总酸产量的影响[J]. 可再生能源, 2009, 27(3): 65-69. [16] 张桂艳, 温小斌, 梁芳, 等. 重要理化因子对小球藻生长和油脂产量的影响[J]. 生态学报, 2011, 31(8):2076-2085. [17] Takagi M, Karseno, Yoshida T. Effect of salt concentration on intracellular accumulation of lipids and triacylglyceride in marine microalgae Dunaliella cells[J]. J Biosci Bioeng, 2006, 101(3):223-226. [18] 赵会杰, 邹奇, 余振文. 叶绿素荧光分析技术及其在植物光合机理研究中的应用[J]. 河南农业大学学报, 2000, 34(3): 248-251. [19] 梁英, 冯力霞, 尹翠玲, 等. 叶绿素荧光技术在微藻环境胁迫研究中的应用现状及前景[J]. 海洋科学, 2007, 31(1):71-77. [20] 梁英, 冯力霞, 田传远, 等. 盐胁迫对塔胞藻生长及叶绿素荧光动力学的影响[J]. 中国海洋大学学报, 2006, 36(5):726-732. [21] 余锦兰, 夏建荣, 邹永东. 小新月菱形藻碳酸酐酶活性和光合作用对高盐度胁迫的响应[J]. 水产学报, 2011, 35(4):515-523. [22] 张守仁. 叶绿素荧光动力学参数的意义与讨论[J]. 植物学通报, 1999, 16(4):444-448. |
| 备注/Memo: | 收稿日期: 2013?01?16. 基金项目: 浙江省科技厅公益性研究项目(2010C33066); 浙江省创新团队项目(2009R50012-6, 2010R50025); 宁波市科技攻关项目(2010C10022); 宁波市国际合作项目(2010D10012) 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |