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Items: 1 to 20 of 127

1.

Microbial genetic diversity and ciliate community structure along an environmental gradient in coastal soil.

Zhao F, Xu K.

Eur J Protistol. 2013 Nov;49(4):516-25. doi: 10.1016/j.ejop.2013.01.002. Epub 2013 Apr 30.

PMID:
23639872
2.

Biodiversity patterns of soil ciliates along salinity gradients.

Zhao F, Xu K.

Eur J Protistol. 2016 Apr;53:1-10. doi: 10.1016/j.ejop.2015.12.006. Epub 2015 Dec 25.

PMID:
26773903
3.

Spatio-temporal variations in the molecular diversity of microeukaryotes in particular ciliates in soil of the Yellow River delta, China.

Zhao F, Xu K, Zhang D.

J Eukaryot Microbiol. 2013 May-Jun;60(3):282-90. doi: 10.1111/jeu.12035. Epub 2013 Mar 26.

PMID:
23531052
4.
5.

Changes in community structure of sediment bacteria along the Florida coastal everglades marsh-mangrove-seagrass salinity gradient.

Ikenaga M, Guevara R, Dean AL, Pisani C, Boyer JN.

Microb Ecol. 2010 Feb;59(2):284-95. doi: 10.1007/s00248-009-9572-2. Epub 2009 Aug 26.

PMID:
19705193
6.

[Ciliate diversity and spatiotemporal variation in surface sediments of Yangtze River estuary hypoxic zone].

Feng Z, Kui-Dong X, Zhao-Cui M.

Ying Yong Sheng Tai Xue Bao. 2012 Dec;23(12):3441-8. Chinese.

PMID:
23479889
7.

Assessment of bacterial community structure in soil by polymerase chain reaction and denaturing gradient gel electrophoresis.

Gelsomino A, Keijzer-Wolters AC, Cacco G, van Elsas JD.

J Microbiol Methods. 1999 Oct;38(1-2):1-15.

PMID:
10520580
8.

Effects of site and plant species on rhizosphere community structure as revealed by molecular analysis of microbial guilds.

Costa R, Götz M, Mrotzek N, Lottmann J, Berg G, Smalla K.

FEMS Microbiol Ecol. 2006 May;56(2):236-49.

9.

Prokaryotic genetic diversity throughout the salinity gradient of a coastal solar saltern.

Benlloch S, López-López A, Casamayor EO, Øvreås L, Goddard V, Daae FL, Smerdon G, Massana R, Joint I, Thingstad F, Pedrós-Alió C, Rodríguez-Valera F.

Environ Microbiol. 2002 Jun;4(6):349-60.

PMID:
12071980
10.

Prevalent ciliate symbiosis on copepods: high genetic diversity and wide distribution detected using small subunit ribosomal RNA gene.

Guo Z, Liu S, Hu S, Li T, Huang Y, Liu G, Zhang H, Lin S.

PLoS One. 2012;7(9):e44847. Epub 2012 Sep 14.

12.

Carbon/nitrogen ratio as a major factor for predicting the effects of organic wastes on soil bacterial communities assessed by DNA-based molecular techniques.

Ge Y, Chen C, Xu Z, Eldridge SM, Chan KY, He Y, He JZ.

Environ Sci Pollut Res Int. 2010 Mar;17(3):807-15. doi: 10.1007/s11356-009-0185-6. Epub 2009 Jun 5.

PMID:
19499260
13.

Acinetobacter diversity in environmental samples assessed by 16S rRNA gene PCR-DGGE fingerprinting.

Vanbroekhoven K, Ryngaert A, Wattiau P, Mot R, Springael D.

FEMS Microbiol Ecol. 2004 Oct 1;50(1):37-50. doi: 10.1016/j.femsec.2004.05.007.

14.

Diversity and dynamics of Antarctic marine microbial eukaryotes under manipulated environmental UV radiation.

Piquet AM, Bolhuis H, Davidson AT, Thomson PG, Buma AG.

FEMS Microbiol Ecol. 2008 Nov;66(2):352-66. doi: 10.1111/j.1574-6941.2008.00588.x. Epub 2008 Sep 15.

15.

Do conventionally and biologically cultivated soils differ in bacterial diversity and community structure?

Seghers D, Reheul D, Bulcke R, Verstraete W, Top EM.

Meded Rijksuniv Gent Fak Landbouwkd Toegep Biol Wet. 2001;66(3b):381-8.

PMID:
15954622
16.

16S rRNA-based PCR-DGGE analysis of actinomycete communities in fields with continuous cotton cropping in Xinjiang, China.

Zhang W, Long X, Huo X, Chen Y, Lou K.

Microb Ecol. 2013 Aug;66(2):385-93. doi: 10.1007/s00248-012-0160-5. Epub 2013 Jan 9.

PMID:
23299346
17.

Archaeal diversity along a soil salinity gradient prone to disturbance.

Walsh DA, Papke RT, Doolittle WF.

Environ Microbiol. 2005 Oct;7(10):1655-66.

PMID:
16156738
18.
19.

Cultivation-independent analysis reveals a shift in ciliate 18S rRNA gene diversity in a polycyclic aromatic hydrocarbon-polluted soil.

Lara E, Berney C, Harms H, Chatzinotas A.

FEMS Microbiol Ecol. 2007 Dec;62(3):365-73. Epub 2007 Oct 19.

20.

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