Biodiversity and distribution of epibiontic communities on Caridina ensifera (Crustacea, Decapoda, Atyidae) from Lake Poso: comparison with another ancient lake system of Sulawesi (Indonesia)

被引:6
作者
Fernandez-Leborans, Gregorio [1 ]
von Rintelen, Kristina [2 ]
机构
[1] Univ Complutense, Dept Zool, Fac Biol, E-28040 Madrid, Spain
[2] Humboldt Univ, Museum Nat Kunde, D-10115 Berlin, Germany
关键词
Caridina ensifera; epibiontic communities; distribution; colonization patterns; Lake Poso; lakes of the Malili system; comparison; Sulawesi; PROTOZOAN EPIBIONTS; MALILI LAKES; MORPHOLOGY; PATTERNS;
D O I
10.1111/j.1463-6395.2009.00395.x
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
Fernandez-Leborans, G. and von Rintelen, K. 2010. Biodiversity and distribution of epibiontic communities on Caridina ensifera (Crustacea, Decapoda, Atyidae) from Lake Poso: comparison with another ancient lake system of Sulawesi (Indonesia). - Acta Zoologica (Stockholm) 91: 163-175 The epibiont communities of the shrimp Caridina ensifera, endemic to Lake Poso (Sulawesi, Indonesia), were analysed. Most of the epibiont species were ciliated protozoa belonging to three suctorian genera (Acineta, Podophrya and Spelaeophrya), three peritrich genera (Zoothamnium, Vorticella and Cothurnia), and a haptorid genus (Amphileptus). There was also a rotifer epibiont of the genus Embata. Epibionts were identified to species level. There were 14 to 1114 epibionts per shrimp. The distribution of the epibiont species on the surface of the basibiont was recorded, calculating the number on the different colonized individuals of C. ensifera. The most abundant species, Zoothamnium intermedium and Acineta sulawesiensis, were also the most widely distributed. There was a significant difference between the spatial distributions of the different epibiont species. The analysis of the number of the epibiont species throughout the anteroposterior axis of the shrimp showed a gradient from the anterior to the posterior end of the body. Data from Lake Poso were compared with those of the Malili lake system (Sulawesi), obtained from its endemic shrimp, Caridina lanceolata. Lake Poso had the highest mean diversity, while Lake Mahalona showed the highest maximum diversity. All lakes were correlated with respect to the mean number of epibionts on the anatomical units of the shrimp, which showed a similar general distribution. The distributions of the different epibiont species were compared between the lakes. The possible adaptations of the epibionts as well as the colonization patterns were discussed. From the statistical results and the analysis of the distributions, we propose that in these communities epibiont species have a pattern of colonization in which they follow a behaviour as a whole; each species has a differential distribution, with the species occupying the available substratum with the particular requirements of each functional group, but there is a trend towards maintaining an equilibrium among species and groups, compensating for diversity and number of individuals. In all lakes there was an epibiont distribution model comprising the maintenance of an anteroposterior axis gradient, which was supported by the fluctuation in diversity and number of individuals of the different functional groups of epibiont species. The functional role of the different groups of species seems to tend towards sustainability with little global variation among the lakes.
引用
收藏
页码:163 / 175
页数:13
相关论文
共 55 条
[1]   EPIBIOSIS AND RHIZOCEPHALAN INFESTATION PATTERNS IN RELATION TO THE REPRODUCTIVE-BIOLOGY OF LITHODES-FEROX (FILHOL, 1885) (ANOMURA, LITHODIDAE) [J].
ABELLO, P ;
MACPHERSON, E .
JOURNAL OF CRUSTACEAN BIOLOGY, 1992, 12 (04) :561-570
[2]   EPIBIOSIS IN DEEP-SEA CRAB POPULATIONS AS INDICATOR OF BIOLOGICAL AND BEHAVIORAL-CHARACTERISTICS OF THE HOST [J].
ABELLO, P ;
VILLANUEVA, R ;
GILI, JM .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 1990, 70 (04) :687-695
[3]   THE ROLE OF CILIATED PROTOZOA IN PELAGIC FRESH-WATER ECOSYSTEMS [J].
BEAVER, JR ;
CRISMAN, TL .
MICROBIAL ECOLOGY, 1989, 17 (02) :111-136
[4]  
BOTTON M L, 1988, Journal of Shellfish Research, V7, P407
[5]  
CARLIN B, 1939, MEDDELUNDEN LUNDS U, V2, P3
[6]   GROWTH AND PRODUCTION OF PLANKTONIC PROTOZOA IN LAKE-MICHIGAN - INSITU VERSUS INVITRO COMPARISONS AND IMPORTANCE TO FOOD WEB DYNAMICS [J].
CARRICK, HJ ;
FAHNENSTIEL, GL ;
TAYLOR, WD .
LIMNOLOGY AND OCEANOGRAPHY, 1992, 37 (06) :1221-1235
[7]  
Chace FA., 1997, SMITHSONIAN CONTRIBU, V57, P1, DOI [DOI 10.5479/SI.19436696.391.1, 10.5479/si.00810282.381.1, DOI 10.5479/SI.00810282.381.1]
[8]  
Corliss JO., 1961, INT SERIES MONOGRAPH
[9]  
Daday E. von, 1910, Zoologica, V23, P1, DOI [10.5962/bhl.title.11655, DOI 10.5962/BHL.TITLE.11655]
[10]   BALANUS FOULING OF SHRIMP [J].
DAWSON, CE .
SCIENCE, 1957, 126 (3282) :1068-1068