Hao Yu, Lu Shuailing, Chu Guangyu, Gao Mengchun
North China Sea Data & Information Service, State Oceanic Administration, Qingdao, 266101, China; Key Lab of Marine Environment and Ecology, Ministry of Education, Ocean University of China, Qingdao, 266100, China.
Key Lab of Marine Environment and Ecology, Ministry of Education, Ocean University of China, Qingdao, 266100, China.
Environ Res. 2025 Jan 15;265:120405. doi: 10.1016/j.envres.2024.120405. Epub 2024 Nov 22.
The nitrogen removal performance, enzymatic activity, antioxidant response and metabolic pathway of Chlorella pyrenoidosa (C. pyrenoidosa) under different salinities have been investigated during the treatment of aquaculture wastewater. The growth, chlorophyll content and photosynthetic activity of C. pyrenoidosa were negatively correlated with the salinity from 1% to 3%. The removal performance of chemical oxygen demand (COD) and nitrogen compounds for C. pyrenoidosa decreased with the increase of salinity from 1% to 3%, which was due to the decrease of their corresponding metabolism enzymatic activities. The equilibrium between the reactive oxygen species production and antioxidant defensive system in C. pyrenoidosa was destroyed under high salinity stress and then caused an irreversible damage, which decreased the nitrogen assimilation of C. pyrenoidosa. The metabolic pathway of C. pyrenoidosa under 3% salinity had some obvious variation by comparison with 1% salinity, which led to the discrepancy in the microalgae activity and nitrogen transformation performance. Additionally, high salinity could inhibit the expression of gene associated with the chlorophyll synthesis and damaged the photosystem II reaction center. This study can provide an insight into the effect of salinity on the nitrogen removal from aquaculture wastewater by microalgae.
在处理水产养殖废水过程中,研究了不同盐度下小球藻(Chlorella pyrenoidosa,C. pyrenoidosa)的脱氮性能、酶活性、抗氧化反应和代谢途径。小球藻的生长、叶绿素含量和光合活性与1%至3%的盐度呈负相关。小球藻对化学需氧量(COD)和含氮化合物的去除性能随着盐度从1%增加到3%而降低,这是由于其相应代谢酶活性的降低。在高盐度胁迫下,小球藻中活性氧产生与抗氧化防御系统之间的平衡被破坏,进而造成不可逆损伤,降低了小球藻的氮同化作用。与1%盐度相比,3%盐度下小球藻的代谢途径有一些明显变化,这导致了微藻活性和氮转化性能的差异。此外,高盐度会抑制与叶绿素合成相关基因的表达,并破坏光系统II反应中心。本研究可为深入了解盐度对微藻去除水产养殖废水中氮的影响提供依据。