湖泊科学
湖泊科學
호박과학
JOURNAL OF LAKE SCIENCES
2015年
5期
873-879
,共7页
林莉%冯璁%李青云%吴敏%赵良元
林莉%馮璁%李青雲%吳敏%趙良元
림리%풍총%리청운%오민%조량원
电化学%铜绿微囊藻%叶绿素荧光%光合特性
電化學%銅綠微囊藻%葉綠素熒光%光閤特性
전화학%동록미낭조%협록소형광%광합특성
Electrochemistry%Microcystis aeruginosa%chlorophyll fluorescence%photosynthetic characteristics
研究微电流电解不同电流密度下铜绿微囊藻( Microcystis aeruginosa)的叶绿素荧光参数变化,从藻类生理生态特征方面揭示电解抑藻的作用机理。结果表明:对于体积一定而初始细胞密度不同的铜绿微囊藻藻液,微电流电解抑藻存在相应的临界电流密度阈值,当电流密度>阈值时,藻的生长得到完全抑制。当电流密度<阈值时,藻的光系统Ⅱ受损,但经过6d的培养其生理活性可恢复正常。若电流密度>临界值,电解胁迫将超过藻的耐受能力,从培养的第2d开始藻的光系统Ⅱ功能完全丧失。电解抑藻一方面是通过破坏光系统Ⅱ和捕光天线藻胆体之间的连接,使藻胆体无法继续向光系统Ⅱ传递光能;另一方面是通过破坏藻细胞光系统Ⅱ结构,使其无法进行光合作用,最终导致藻细胞的死亡。
研究微電流電解不同電流密度下銅綠微囊藻( Microcystis aeruginosa)的葉綠素熒光參數變化,從藻類生理生態特徵方麵揭示電解抑藻的作用機理。結果錶明:對于體積一定而初始細胞密度不同的銅綠微囊藻藻液,微電流電解抑藻存在相應的臨界電流密度閾值,噹電流密度>閾值時,藻的生長得到完全抑製。噹電流密度<閾值時,藻的光繫統Ⅱ受損,但經過6d的培養其生理活性可恢複正常。若電流密度>臨界值,電解脅迫將超過藻的耐受能力,從培養的第2d開始藻的光繫統Ⅱ功能完全喪失。電解抑藻一方麵是通過破壞光繫統Ⅱ和捕光天線藻膽體之間的連接,使藻膽體無法繼續嚮光繫統Ⅱ傳遞光能;另一方麵是通過破壞藻細胞光繫統Ⅱ結構,使其無法進行光閤作用,最終導緻藻細胞的死亡。
연구미전류전해불동전류밀도하동록미낭조( Microcystis aeruginosa)적협록소형광삼수변화,종조류생리생태특정방면게시전해억조적작용궤리。결과표명:대우체적일정이초시세포밀도불동적동록미낭조조액,미전류전해억조존재상응적림계전류밀도역치,당전류밀도>역치시,조적생장득도완전억제。당전류밀도<역치시,조적광계통Ⅱ수손,단경과6d적배양기생리활성가회복정상。약전류밀도>림계치,전해협박장초과조적내수능력,종배양적제2d개시조적광계통Ⅱ공능완전상실。전해억조일방면시통과파배광계통Ⅱ화포광천선조담체지간적련접,사조담체무법계속향광계통Ⅱ전체광능;령일방면시통과파배조세포광계통Ⅱ결구,사기무법진행광합작용,최종도치조세포적사망。
Effects of electrolysis by low-amperage electric current on the chlorophyll fluorescence of Microcystis aeruginosa were in-vestigated in order to reveal the mechanisms of electrolytic inhibition of M. aeruginosa. Thresholds of electric current density were found under a certain initial algae cell density. When the current density was higher than the threshold density, the growth of algae was inhibited completely by electrolytic treatment, and the algae lose its ability to survive and to grow. The changes of chlorophyll fluorescence parameters demonstrated that when the algal solution was treated by current densities lower than the threshold density, PS II of algae was damaged by electrolysis, but it still maintained relatively high activity. The activity of algae recovered completely after 6 days’ cultivation. Moreover, when algal solution was treated by current densities higher than the threshold density, the con-nection of phycobilisome and PS II core complexes were destroyed. PS II system of algae was damaged irreversibly, and algae could not survive thoroughly. The inactivation of M. aeruginosa by electrolysis can be attributed to irreversible separation of phycobili-some from PS II core complexes and the damage of PS II of M. aeruginosa.