Al-Yamani F, Madhusoodhanan R, Skryabin V, Al-Said T (2019) The response of microzooplankton (tintinnid) community to salinity related environmental changes in a hypersaline marine system in the northwestern Arabian Gulf. Deep-Sea Res II Top Stud Oceanogr. https://doi.org/10.1016/j.dsr2.2019.02.005
Amblard C, Sime-Ngando T, Rachiq S, Bourdier G (1993) Importance of ciliated protozoa in relation to the bacterial and phytoplanktonic biomass in an oligo-mesotrophic lake, during the spring diatom bloom. Aquat Sci 55(1):1–9
Google Scholar
Anderson MJ (2001) Permutation tests for univariate or multivariate analysis of variance and regression. Can J Fish Aquat Sci 58(3):626–639
Google Scholar
Anderson M, Gorley RNRN, Clarke K, Anderson MJ, Gorley RN, Clarke KR, Andersom MJ (2008) PERMANOVA+ for PRIMER. Guide to software and statistical methods. Primer-E, Plymouth, p 214
Anjusha A, Jyothibabu R, Jagadeesan L (2018) Response of microzooplankton community to the hydrographical transformations in the coastal waters off Kochi, along the southwest coast of India. Cont Shelf Res 167:111–124
Google Scholar
Azam F, Fenchel T, Field J, Gray J, Meyer-Reil L, Thingstad F (1983) The ecological role of water-column microbes in the sea. Mar Ecol Prog Ser 10(3):257–263
Google Scholar
Balkis N (2004) Tintinnids (Protozoa: Ciliophora) of the Büyükçekmece Bay in the Sea of Marmara. Sci Mar 68(1):33–44
Google Scholar
Biswas SN, Godhantaraman N, Rakshit D, Sarkar SK (2013) Community composition, abundance, biomass and production rates of Tintinnids (Ciliata: Protozoa) in the coastal regions of Sundarban Mangrove wetland, India. Indian J Geo-Mar Sci 42(2):163–173
CAS
Google Scholar
Brown S, Landry M, Christensen S, Garrison D, Gowing M, Bidigare R, Campbell L (2002) Microbial community dynamics and taxon-specific phytoplankton production in the Arabian Sea during the 1995 monsoon seasons. Deep-Sea Res II Top Stud Oceanogr 49(12):2345–2376
Google Scholar
Clarke K, Gorley R (2006) PRIMER v6: user manual/tutorial. Primer-E, Plymouth, p 192
Clarke KR, Green RH (1988) Statistical design and analysis for a “biological effects” study. Mar Ecol Prog Ser 46(1):213–226
Google Scholar
Clark KR, Warwick RM (2001) Change in marine communities: an approach to statistical and interpretation. Plymouth Marine Laboratory, Plymouth
Corliss JO (1973) Protozoan ecology: a note on its current status. Am Zool 13(1):145–148
Google Scholar
Corliss JO (1979) The ciliated protozoa. Characterization, classification and guide to literature, 2nd edn. Pergamon Press. ISBN: 9781483154176, Oxford, p 472
Coulthard S (2008) Adapting to environmental change in artisanal fisheries—insights from a South Indian lagoon. Glob Environ Chang 18(3):479–489
Google Scholar
Curds CR (1982) British and other freshwater ciliate protozoa. Published for The Linnean Society of London and The Estuarine and Brackish Water-Sciences Association, Cambridge University Press, Cambridge
Dhinamala K, Pushpalatha M, Samuel T, Raveen R (2015) Spatial and temporal variations in the water quality parameters of Pulicat Lake, Tamil Nadu, India. Int J Fish Aquat Stud 3(2):255–259
Google Scholar
Elloumi J, Carrias J-F, Ayadi H, Sime-Ngando T, Boukhris M, Bouaïn A (2006) Composition and distribution of planktonic ciliates from ponds of different salinity in the solar saltwork of Sfax, Tunisia. Estuar Coast Shelf Sci 67(1–2):21–29
Google Scholar
Esteban GF, Finlay BJ (2003) Cryptic freshwater ciliates in a hypersaline lagoon. Protist 154(3–4):411–418
Google Scholar
Fenchel TOM (1980) Relation between particle size selection and clearance in suspension-feeding ciliates. Limnol Oceanogr 25(4):733–738
Google Scholar
Fenchel T, Jørgensen BB (1977) Detritus food chains of aquatic ecosystems: the role of bacteria. In: Advances in microbial ecology. Springer, Boston, MA, pp 1–58
Finlay BJ, Curds CR, Bamforth SS, Bafort JM (1987) Ciliated protozoa and other microorganisms from two African soda lakes (Lake Nakuru and Lake Simbi, Kenya). Arch Protistenkd 133(1–2):81–91
Google Scholar
Ganguly D, Patra S, Muduli PR, Vardhan KV, Abhilash K, Robin R, Subramanian B (2015) Influence of nutrient input on the trophic state of a tropical brackish water lagoon. J Earth Syst Sci 124(5):1005–1017
CAS
Google Scholar
Gao F, Warren A, Zhang Q, Gong J, Miao M, Sun P, Xu D, Huang J, Yi Z, Song W (2016) The all-data-based evolutionary hypothesis of ciliated protists with a revised classification of the phylum Ciliophora (Eukaryota, Alveolata). Sci Rep 6:24874
Google Scholar
Giordano M, Davis JS, Bowes G (1994) Organic carbon release by Dunaliella Salina (Chlorophyta) under different growth conditions of CO2, nitrogen, and salinity 1. J Phycol 30(2):249–257
CAS
Google Scholar
Grasshoff K, Kremling K, Ehrhardt M (1999) Methods of seawater analysis. John Wiley & Sons, New York, p 600
Google Scholar
Hu X (2014) Ciliates in extreme environments. J Eukaryot Microbiol 61(4):410–418
CAS
Google Scholar
Jackson ST, Blois JL (2015) Community ecology in a changing environment: perspectives from the Quaternary. Proc Natl Acad Sci 112(16):4915–4921
CAS
Google Scholar
Jiang Y, Xu H, Hu X, Zhu M, Al-Rasheid KA, Warren A (2011) An approach to analyzing spatial patterns of planktonic ciliate communities for monitoring water quality in Jiaozhou Bay, northern China. Mar Pollut Bull 62(2):227–235
CAS
Google Scholar
Jiang Y, Zhang W, Zhu M, Al-Rasheid KA, Xu H (2012) Are non-loricate ciliates a primary contributor to ecological pattern of planktonic ciliate communities? A case study in Jiaozhou Bay, northern China. J Mar Biol Assoc U K 92(6):1301–1308
Google Scholar
Jiang Y, Xu H, Hu X, Warren A, Song W (2013) Functional groups of marine ciliated protozoa and their relationships to water quality. Environ Sci Pollut Res 20:5272–5280
CAS
Google Scholar
Johansson M, Gorokhova E, Larsson U (2004) Annual variability in ciliate community structure, potential prey and predators in the open northern Baltic Sea proper. J Plankton Res 26(1):67–80
Google Scholar
Jyothibabu R, Madhu N, Jayalakshmi K, Balachandran K, Shiyas C, Martin G, Nair K (2006) Impact of freshwater influx on microzooplankton mediated food web in a tropical estuary (Cochin backwaters–India). Estuar Coast Shelf Sci 69(3–4):505–518
Google Scholar
Kahan D (1969) The fauna of hot springs: With 1 table in the text. Internationale Vereinigung für theoretische und angewandte Limnologie. Verhandlungen 17(2):811–816
Kahan D (1972) Cyclidium citrullus Cohn, a ciliate from the hot springs of Tiberias (Israel). J Protozool 19(4):593–597
Kanuri VV, Muduli PR, Robin R, Kumar BC, Lovaraju A, Ganguly D, Patra S, Rao GN, Raman A, Subramanian B (2013) Plankton metabolic processes and its significance on dissolved organic carbon pool in a tropical brackish water lagoon. Cont Shelf Res 61:52–61
Google Scholar
Kchaou N, Elloumi J, Drira Z, Hamza A, Ayadi H, Bouain A, Aleya L (2009) Distribution of ciliates in relation to environmental factors along the coastline of the Gulf of Gabes, Tunisia. Estuar Coast Shelf Sci 83(4):414–424
CAS
Google Scholar
Kofoid C, Campbell A (1929) A conspectus of the marine and fresh-water Ciliata belonging to the suborder Tintinnoinea, with description of the suborder Tintinnoinea, with description of new species principally from Agassiz expedition to the eastern tropical Pacific, 1904–1905. Univ Calif Publ Zool 34:1–403
Google Scholar
Koleff P, Gaston KJ, Lennon JJ (2003) Measuring beta diversity for presence–absence data. J Anim Ecol 72(3):367–382
Google Scholar
Landry MR, Calbet A (2004) Microzooplankton production in the oceans. ICES J Mar Sci 61(4):501–507
Google Scholar
Lei Y, Xu K, Choi JK, Hong HP, Wickham SA (2009) Community structure and seasonal dynamics of planktonic ciliates along salinity gradients. Eur J Protistol 45(4):305–319
Google Scholar
Liu H, Chen M, Shen P, Huang H, Dai M, Qi Z (2016) A first description of ciliate assemblages in a subtropical, eutrophic bay, South China Sea: species assemblage and environmental correlates-ciliate variation in a subtropical bay. Aquat Living Resour 29(3):304
Google Scholar
Lynn D (2008) The ciliated protozoa: characterization, classification, and guide to the literature. Springer Science and Business Media, New York, pp 1–605
Mieczan T (2008) Diversity and vertical distribution of planktonic ciliates in a stratified mesotrophic lake: relationship to environmental conditions. Oceanol Hydrobiol Stud 37(1):83–95
Google Scholar
Modassir Y, Ansari A (2011) Plankton community of the hypersaline salterns of Goa, India. In Biol Forum 3:78–81
Modenutti BE, Balseiro EG, Queimalinos CP (2000) Ciliate community structure in two South Andean lakes: the effect of lake water on Ophrydium naumanni distribution. Aquat Microb Ecol 21(3):299–307
Google Scholar
Muduli PR, Kanuri VV, Robin R, Kumar BC, Patra S, Raman A, Rao GN, Subramanian B (2013) Distribution of dissolved inorganic carbon and net ecosystem production in a tropical brackish water lagoon, India. Cont Shelf Res 64:75–87
Google Scholar
Muñoz-Barbosa A, Gaxiola-Castro G, Segovia-Zavala J (1991) Temporal variability of primary productivity, chlorophyll and seston in Bahía de los Ángeles, Gulf of California. Cienc Mar 17(4):47–68
Google Scholar
Nche-Fambo FA, Tirok K, Scharler UM (2016) Hypersaline conditions cause distinct ciliate community structure in a South African estuarine lake system. J Plankton Res 38(4):878–887
Google Scholar
Noland LE, Gojdics M (1967) Ecology of free-living protozoa. Res Protozool 2:215–266
Google Scholar
Padma S, Periakali P (1999) Physico-chemical and geochemical studies in Pulicat lake, east coast of India. Indian J Mar Sci 28:434–439
Google Scholar
Pandey BD, Yeragi SG, Reddy AK, Hadiwara A (2008) Life strategies and aquacultural usabilities of a hypersaline ciliate, Fabrea salina. Curr Sci 97(3):307–309
Google Scholar
Pedrós-Alió C, Calderón-Paz JI, MacLean MH, Medina G, Marrasé C, Gasol JM, Guixa-Boixereu N (2000) The microbial food web along salinity gradients. FEMS Microbiol Ecol 32(2):143–155
Google Scholar
Pérez-Ruzafa A, De Pascalis F, Ghezzo M, Quispe-Becerra JI, Hernández-García R, Muñoz I, Vergara C, Pérez-Ruzafa IM, Umgiesser G, Marcos C (2019) Connectivity between coastal lagoons and sea: asymmetrical effects on assemblages’ and populations’ structure. Estuar Coast Shelf Sci 216:171–186
Google Scholar
Pineda A, Peláez Ó, Dias JD, Segovia BT, Bonecker CC, Machado Velho LF, Rodrigues LC (2019) The El Niño Southern Oscillation (ENSO) is the main source of variation for the gamma diversity of plankton communities in subtropical shallow lakes. Aquat Sci 81:49–15. https://doi.org/10.1007/s00027-019-0646-z
CAS
Article
Google Scholar
Putt M, Stoecker DK (1989) An experimentally determined carbon: volume ratio for marine “oligotrichous” ciliates from estuarine and coastal waters. Limnol Oceanogr 34(6):1097–1103
Google Scholar
Queimaliños CP, Modenutti BE, Balseiro EG (1999) Symbiotic association of the ciliate Ophrydium naumanni with Chlorella causing a deep chlorophyll a maximum in an oligotrophic South Andes lake. J Plankton Res 21(1):167–178
Google Scholar
Radhakrishnan S (1976) Some aspects of the distribution and seasonal abundance of macrophytic flora in the brackish lake Pulicat, India. Aquatic weeds in south-east Asia. W. Junk, The Hague, pp 107–117
Rakhesh M, Madhavirani KSVKS, Kumar BC, Raman AV, Kalavati C, Rao YP, Subramanian BR (2015) Trophic–salinity gradients and environmental redundancy resolve mesozooplankton dynamics in a large tropical coastal lagoon. Reg Stud Mar Sci 1:72–84
Google Scholar
Sahu BK, Srichandan S, Panigrahy R (2016) A preliminary study on the microzooplankton of Chilika Lake, a brackish water lagoon on the east coast of India. Environ Monit Assess 188(1):69. https://doi.org/10.1007/s10661-015-5062-9
CAS
Article
Google Scholar
Sanders RW, Wickham SA (1993) Planktonic protozoa and metazoa: predation, food quality and population control. Mar Microbial Food Webs 7(2):197–223
Google Scholar
Santoferrara LF, Alder VA (2009) Morphological variability, spatial distribution and abundance of Helicostomella species (Ciliophora: Tintinnina) in relation to environmental factors (Argentine shelf; 40-55 S). Sci Mar 73(4):701–716
Google Scholar
Schmoker C, Hernández-León S, Calbet A (2013) Microzooplankton grazing in the oceans: impacts, data variability, knowledge gaps and future directions. J Plankton Res 35(4):691–706
Google Scholar
Shadrin N, Anufriieva E (2018) Ecosystems of hypersaline waters: structure and trophic relations. Zh Obshch Biol 79(6):418–427
Google Scholar
Sikder MNA, Al MA, Xu G, Hu G, Xu H (2019) Spatial variations in trophic-functional patterns of periphytic ciliates and indications to water quality in coastal waters of the Yellow Sea. Environ Sci Pollut Res 26(3):2592–2602
CAS
Google Scholar
Sima S, Ahmadalipour A, Tajrishy M (2013) Mapping surface temperature in a hyper-saline lake and investigating the effect of temperature distribution on the lake evaporation. Remote Sens Environ 136:374–385
Google Scholar
Sivasankar R, Ezhilarasan P, Kumar PS, Naidu S, Rao G, Kanuri VV, Rao VR, Ramu K (2018) Loricate ciliates as an indicator of eutrophication status in the estuarine and coastal waters. Mar Pollut Bull 129(1):207–211
CAS
Google Scholar
Strickland JD, Parsons TR (1972) A practical handbook of seawater analysis. 2nd ed. Bull Fish Res Bd Can 167:1–310
Google Scholar
Ter Braak CJ (1986) Canonical correspondence analysis: a new eigenvector technique for multivariate direct gradient analysis. Ecology 67(5):1167–1179
Ter Braak CJF, Smilauer P (2002) CANOCO Reference manual and CanoDraw for Windows User’s guide: Software for canonical community ordination (version 4.5). Microcomputer Power, Ithaca
Ter Braak CJ, Verdonschot FM (1995) Canonical correspondence analysis and related multivariate methods in aquatic ecology. Aquat Sci 57(3):255–289
Google Scholar
Unesco TD (1978) Intergovernmental conference on environmental education. Final report. UNESCO ED/MD/49, Paris
Google Scholar
Urrutxurt I, Orive E, de la Sota A (2003) Seasonal dynamics of ciliated protozoa and their potential food in an eutrophic estuary (Bay of Biscay). Estuar Coast Shelf Sci 57:1169–1182
Google Scholar
Utermöhl H (1958) Zur vervollkommnung der quantitativen phytoplankton-methodik: Mit 1 Tabelle und 15 abbildungen im Text und auf 1 Tafel. Verh Int Ver Theor Angew Limnol Mitt 9(1):1–38
Google Scholar
Vadrucci M, Cabrini M, Basset A (2007) Biovolume determination of phytoplankton guilds in transitional water ecosystems of Mediterranean Ecoregion. Transit Waters Bull 1(2):83–102
Google Scholar
Venice System (1959) Final resolution. The Venice System for the classification of marine waters according to salinity. 8-14 April 1958 Venice, Italy. In: Ancona, D. (Ed.), Symposium on the classification of brackish waters. Archives oceanography and limnology 11: 243–248
Verity PG, Langdon C (1984) Relationships between lorica volume, carbon, nitrogen, and ATP content of tintinnids in Narragansett Bay. J Plankton Res 6:859–868
CAS
Google Scholar
Wang Q, Xu H (2015) Colonization dynamics in the tropical-functional patterns of biofilm-dwelling ciliates using two methods in coastal waters. J Mar Biol Assoc UK 95:681–689
CAS
Google Scholar
Whittaker RH (1960) Vegetation of the Siskiyou mountains, Oregon and California. Ecol Monogr 30(3):279–338
Google Scholar
Whittaker RH (1972) Evolution and measurement of species diversity. Taxon 21(2–3):213–251
Google Scholar
Wilson MV, Shmida A (1984) Measuring beta diversity with presence-absence data. J Ecol 72(3):1055–1064
Wu F, Huang J, Dai M, Liu H, Huang H (2016) Using ciliates to monitor different aquatic environments in Daya Bay, South China Sea. Can J Zool 94(4):265–273
CAS
Google Scholar
Xu H, Jiang Y, Al-Rasheid KA, Al-Farraj SA, Song W (2011) Application of an indicator based on taxonomic relatedness of ciliated protozoan assemblages for marine environmental assessment. Environ Sci Pollut Res 18(7):1213–1221
CAS
Google Scholar
Zhang W, Xu H, Jiang Y, Zhu M, Al-Reshaid KAS (2012) Colonization dynamics in trophic-functional structure of periphytic protist communities in coastal waters. Mar Biol 159:735–748
Google Scholar