帮助 关于我们

返回检索结果

微丝菌(Microthrix parvicella)原位荧光杂交(FISH)定量过程的条件优化
Optimization for Microthrix parvicella Quantitative Processing of Fluorescence in situ Hybridization (FISH)

查看参考文献30篇

王润芳 1   张红 1   王琴 2   王娟 1   顾剑 3   齐嵘 1 *   杨敏 1  
文摘 微丝菌(Microthrix parvicella)是世界范围内诱发活性污泥膨胀现象的主要丝状菌之一,它在活性污泥中准确的原位定量解析对污泥膨胀现象及控制策略研究具有非常重要的意义. 由于微丝菌自身的特殊生理生化性质(如表面高疏水性及较厚细胞壁)易导致常规荧光原位杂交(FISH)过程中定量结果偏低. 本研究针对FISH过程中存在的探针渗透率低、 荧光信号偏弱等现象, 从活性污泥样品前处理、 杂交过程条件等方面对Microthrix parvicella的FISH定量过程进行了优化. 结果表明,在前处理使用溶菌酶(浓度为36000 U·mL~(-1)),探针浓度为4.5 ng·μL~(-1),杂交时间延长至4 h的条件下,Microthrix parvicella的FISH定量结果可从1.12%提高至96.70%,并与定量PCR(q-PCR)结果和Eikelboom & Jenkins法(镜检观察)定量结果更为趋近一致.
其他语种文摘 Precise quantification of Microthrix parvicella, which is identified as a dominated filamentous bacterium of bulking sludge in the worldwide, is essential for bulking investigation and related control strategies. However, quantitative processing based on fluorescence in situ hybridization (FISH) is prone to interference due to the specific characteristics of Microthrix parvicella (hydrophobic surface with thick cell wall). Our study focused on pretreatment and process optimization to show that the proportion of Microthrix parvicella was increased from 1.12% to 96.70% benefited by lysozyme (36000 U·mL~(-1)), high probe concentration (4.5 ng·μL~(-1)) and longer hybridization time (4 h) employed, mapping with the results of q-PCR method and Eikelboom & Jenkins Observation.
来源 环境科学 ,2016,37(6):2266-2270 【核心库】
DOI 10.13227/j.hjkx.2016.06.033
关键词 污泥膨胀 ; 微丝菌 ; FISH技术 ; 优化 ; 定量
地址

1. 中国科学院生态环境研究中心, 北京, 100085  

2. 河北大学化学与环境科学学院, 保定, 071002  

3. 北京北排水环境发展有限公司水质检测中心, 北京, 100022

语种 中文
文献类型 研究性论文
ISSN 0250-3301
学科 环境科学基础理论
基金 国家自然科学基金项目
文献收藏号 CSCD:5727963

参考文献 共 30 共2页

1.  Zheng S K. Effect of dissolved oxygen changes on activated sludge fungal bulking during lab-scale treatment of acidic industrial wastewater. Environmental Science & Technology,2011,45(20):8928-8934 被引 4    
2.  Mielczarek A T. Population dynamics of filamentous bacteria in Danish wastewater treatment plants with nutrient removal. Water Research,2012,46(12):3781-3795 被引 11    
3.  Graveleau L. Bulking and foaming in France: the 1999-2001 survey. Acta Hydrochimica et Hydrobiologica,2005,33(3):223-231 被引 6    
4.  王萍. 丝状细菌污泥膨胀的FISH探针研究进展. 应用与环境生物学报,2012,18(4):705-712 被引 15    
5.  Noutsopoulos C. A hypothesis on Microthrix parvicella proliferation in biological nutrient removal activated sludge systems with selector tanks. FEMS Microbiology Ecology,2012,80(2):380-389 被引 5    
6.  Hamit-Eminovski J. Change in surface properties of Microthrix parvicella upon addition of polyaluminium chloride as characterized by atomic force microscopy. Biofouling,2010,26(3):323-331 被引 2    
7.  Noutsopoulos C. Long chain fatty acids removal in selector tanks: evidence for insufficient Microthrix parvicella control. Desalination and Water Treatment,2010,23(1/3):20-25 被引 2    
8.  Xie B. Cause and pre-alarm control of bulking and foaming by Microthrix parvicella-a case study in triple oxidation ditch at a wastewater treatment plant. Journal of Hazardous Materials,2007,143(1/2):184-191 被引 13    
9.  Rossetti S. "Microthrix parvicella", a filamentous bacterium causing bulking and foaming in activated sludge systems: a review of current knowledge. FEMS Microbiology Reviews,2005,29(1):49-64 被引 22    
10.  Andreasen K. Growth of Microthrix parvicella in nutrient removal activated sludge plants: studies of in situ physiology. Water Research,2000,34(5):1559-1569 被引 14    
11.  Eikelboom D H. Filamentous organisms observed in activated sludge. Water Research,1975,9(4):365-388 被引 18    
12.  Jenkins D. Manual on the causes and control of activated sludge bulking, foaming, and other solids separation separation problems (3rd ed),2003:17 被引 1    
13.  Vanysacker L. Development and evaluation of a TaqMan duplex real-time PCR quantification method for reliable enumeration of Candidatus Microthrix. Journal of Microbiological Methods,2014,97:6-14 被引 3    
14.  Oerther D B. Quantifying filamentous microorganisms in activated sludge before, during, and after an incident of foaming by oligonucleotide probe hybridizations and antibody staining. Water Research,2001,35(14):3325-3336 被引 5    
15.  Bradford D. Molecular biological methods to detect "Microthrix parvicella" and to determine its abundance in activated sludge. Water Science and Technology,1998,37(4/5):37-45 被引 3    
16.  Nielsen P H. FISH handbook for biological wastewater treatment: identification and quantification of microorganisms in activated sludge and biofilms by FISH,2009:74-84 被引 1    
17.  Daims H. The domain-specific probe EUB338 is insufficient for the detection of all bacteria: development and evaluation of a more comprehensive probe set. Systematic and Applied Microbiology,1999,22(3):434-444 被引 65    
18.  Marneri M. Microthrix parvicella and Gordona amarae in mesophilic and thermophilic anaerobic digestion systems. Environmental Technology,2009,30(5):437-444 被引 3    
19.  Erhart R. Development and use of fluorescent in situ hybridization probes for the detection and identification of "Microthrix parvicella" in Activated Sludge. Systematic and Applied Microbiology,1997,20(2):310-318 被引 9    
20.  张星. FISH技术定量解析亚硝酸盐氧化菌的条件优化. 环境科学学报,2009,29(4):716-722 被引 3    
引证文献 2

1 张振宇 微丝菌培养分离、特性标记及调控研究进展 工业水处理,2017,37(10):1-5
被引 1

2 李松亚 污泥膨胀关键菌-微丝菌的研究进展 水处理技术,2018,44(3):11-16
被引 4

显示所有2篇文献

论文科学数据集
PlumX Metrics
相关文献

 作者相关
 关键词相关
 参考文献相关

版权所有 ©2008 中国科学院文献情报中心 制作维护:中国科学院文献情报中心
地址:北京中关村北四环西路33号 邮政编码:100190 联系电话:(010)82627496 E-mail:cscd@mail.las.ac.cn 京ICP备05002861号-4 | 京公网安备11010802043238号