Biofilm polymers: relationship between carbohydrate biopolymers from estuarine mudflats and unialgal cultures of benthic diatoms

被引:70
作者
Bellinger, BJ
Abdullahi, AS
Gretz, MR
Underwood, GJC
机构
[1] Michigan Technol Univ, Dept Biol Sci, Houghton, MI 49931 USA
[2] Univ Essex, Dept Sci Biol, Colchester CO4 3SQ, Essex, England
关键词
diatoms; biofilms; microphytobenthos; EPS; monosaccharide distribution; uronic acids; biopolymers; fractionation;
D O I
10.3354/ame038169
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Benthic microalgae (microphytobenthos) are the dominant group of primary producers in many marine intertidal and subtidal habitats. Estuarine mudflat diatoms are thought to be major contributors of extracellular polymeric substances (EPS), which are important for sediment stabilization and in benthic food chains. Biofilms from 6 sites in the Colne estuary, UK, were fractionated to isolate biopolymers (colloidal, colloidal EPS [cEPS], low molecular weight [LMW] carbohydrates, hot water [HW] and hot bicarbonate [HB] soluble) and the same techniques were applied to diatoms cultured from these sediments. At sites dominated by benthic diatoms, colloidal carbohydrate concentration and chlorophyll a were closely related. With increasing biomass, the proportion of cEPS within the colloidal fraction decreased from 60 to 20%. Carbohydrate analysis revealed significant differences in monosaccharide and uronic acid composition of different carbohydrate fractions. Principal component analysis (PCA) of monosaccharide composition of HB polymers from both field and culture samples grouped closely along fucose and rhamnose vectors and formed 2 distinct clusters. HW and LMW fractions grouped along the glucose vector and cEPS polymers along the galactose and arabinose vectors. These data indicate that the simple relationship between colloidal carbohydrate concentration and microphytobenthic biomass in biofilms masks a high degree of potential complexity within the sediment carbohydrate pool and in the different proportions of polymeric and nonpolymeric material between different biofilms. Comparing monosaccharide composition of extracts generated using the same protocol, natural assemblages showed close relationships with unialgal cultures, confirming the important role of diatom-derived polymers in mudflat ecology.
引用
收藏
页码:169 / 180
页数:12
相关论文
共 50 条
[21]  
Paterson DM., 1986, Diatom Res, V1, P227, DOI [10.1080/0269249X.1986.9704971, DOI 10.1080/0269249X.1986.9704971]
[22]   Responses of microphytobenthos to light: primary production and carbohydrate allocation over an emersion period [J].
Perkins, RG ;
Underwood, GJC ;
Brotas, V ;
Snow, GC ;
Jesus, B ;
Ribeiro, L .
MARINE ECOLOGY PROGRESS SERIES, 2001, 223 :101-112
[23]   Chlorophyll α concentration as an index of sediment surface stabilisation by microphytobenthos? [J].
Riethmüller, R ;
Heineke, M ;
Kühl, H ;
Keuker-Rüdiger, R .
CONTINENTAL SHELF RESEARCH, 2000, 20 (10-11) :1351-1372
[24]  
Riethmuller R, 1998, GEOL SOC SPEC PUBL, V139, P283, DOI 10.1144/GSL.SP.1998.139.01.23
[25]  
Round F.E., 1990, The diatoms: morphology and Biology of the Genera
[26]   Exopolymer production by intertidal epipelic diatoms [J].
Smith, DJ ;
Underwood, GJC .
LIMNOLOGY AND OCEANOGRAPHY, 1998, 43 (07) :1578-1591
[27]   The production of extracellular carbohydrates by estuarine benthic diatoms: The effects of growth phase and light and dark treatment [J].
Smith, DJ ;
Underwood, GJC .
JOURNAL OF PHYCOLOGY, 2000, 36 (02) :321-333
[28]   Isolation and characterization of extracellular polysaccharides from the epipelic diatoms Cylindrotheca closterium and Navicula salinarum [J].
Staats, N ;
De Winder, B ;
Stal, LJ ;
Mur, LR .
EUROPEAN JOURNAL OF PHYCOLOGY, 1999, 34 (02) :161-169
[29]   Oxygenic photosynthesis as driving process in exopolysaccharide production of benthic diatoms [J].
Staats, N ;
Stal, LJ ;
de Winder, B ;
Mur, LR .
MARINE ECOLOGY PROGRESS SERIES, 2000, 193 :261-269
[30]   Microphytobenthos, their extracellular polymeric substances, and the morphogenesis of intertidal sediments [J].
Stal, LJ .
GEOMICROBIOLOGY JOURNAL, 2003, 20 (05) :463-478