# Cyclotella

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{{short description|Genus of diatoms}}
{{Automatic taxobox
| image = Cyclotellameneghiniana.jpg
| image_caption = ''Cyclotella meneghiniana''
| taxon = Cyclotella
| authority = ([Kützing](/source/Friedrich_Traugott_K%C3%BCtzing)) [Brébisson](/source/Louis_Alphonse_de_Br%C3%A9bisson)
| type_species = Cyclotella tecta
| type_species_authority = Håkansson & R.Ross
}}

'''''Cyclotella''''' /ˌsaɪkloʊˈtɛlə/ is a genus of [diatom](/source/diatom)s often found in [oligotroph](/source/oligotroph)ic environments, both marine and fresh water. It is in the family Stephanodiscaceae and the order [Thalassiosirales](/source/Thalassiosirales).<ref>{{cite WoRMS |author=Kociolek, J.P. |author2=Balasubramanian, K. |author3=Blanco, S. |author4=Coste, M. |author5=Ector, L. |author6=Liu, Y. |author7=Kulikovskiy, M. |author8=Lundholm, N. |author9=Ludwig, T. |author10=Potapova, M. |author11=Rimet, F. |author12=Sabbe, K. |author13=Sala, S. |author14=Sar, E. |author15=Taylor, J. |author16=Van de Vijver, B. |author17=Wetzel, C.E. |author18=Williams, D.M. |author19=Witkowski, A. |author20=Witkowski, J. |year= 2020|title= Cyclotella (F.T. Kützing) A. de Brébisson, 1838|id= 148905|access-date=11 May 2020}}</ref> The genus was first discovered in the mid-1800s and since then has become an umbrella genus for over 100 different species, the most well-studied and the best known being ''[Cyclotella meneghiniana](/source/Cyclotella_meneghiniana)''. Despite being among the most dominant genera in low-productivity environments, it is relatively understudied.<ref name="biolrevcambphilossoc2015">Saros, J.E., Anderson, N.J. (2015). The ecology of the planktonic diatom Cyclotella and its implications for global environmental change studies. Biol Rev Camb Philos Soc. 90(2). 522-41.</ref>

''Cyclotella''{{'s}} habitat has traditionally been described as low-productivity [mesotrophic](/source/Mesotrophic_lake) or [oligotrophic](/source/oligotrophic) freshwater environments. However, it is unclear whether there is an archetypal aquatic setting for this genus as some species are more cosmopolitan, such as ''C. meneghiniana,'' which occurs in warm, nutrient-rich environments as well as low-productivity environments.<ref>{{Cite book |last=Tanaka |first=Hiroyuki |url=https://books.google.com/books?id=Z1cVAQAAIAAJ&q=Cyclotella+is+a+genus |title=Taxonomic Studies of the Genera Cyclotella (Kützing) Brébisson, Discostella Houk Et Klee, and Puncticulata Håkansson in the Family Sephanodiscaceae Glezer Et Makarova (Bacillariophyta) in Japan |date=2007 |publisher=J. Cramer |isbn=978-3-443-57044-6 |language=en}}</ref>

== Etymology ==
The name ''Cyclotella'' is derived from the [Greek](/source/Greek_language) term ''kyklos'', meaning "circle." While "circle" can be used to describe many diatoms, ''Cyclotella'' spp. are all circular and have a girdle band arrangement that makes the structure of the organism resemble a wheel.<ref name="meilhac1838">Brébisson, [L.] A. de (1838). Considérations sur les diatomées et essai d'une classification des genres et des espèces appartenant à cette famille, par A. de Brébisson, auteur de la Flore de Normandie, etc. pp. [i], [1]-20, [4, err.]. Falaise & Paris: Brée l'Ainée Imprimeur-Libraire; Meilhac.</ref>

== History ==
The genus ''Cyclotella'' was described in 1838 by [Louis Alphonse de Brébisson](/source/Louis_Alphonse_de_Br%C3%A9bisson), a French botanist and photographer.<ref name="diatomresearch2002">Håkansson H. (2002). A compilation and evaluation of species in the genera Stephanodiscus, Cyclostephanos and Cyclotella with a new genus in the family Stephanodiscaceae. Diatom Research. 17(1): 1-139.</ref> Brébisson shares the credit of discovering the genus with [Friedrich Traugott Kützing](/source/Friedrich_Traugott_K%C3%BCtzing), a German pharmacist, botanist, and phycologist. This is in spite of the fact that neither one of these scientists ever worked together or even came in contact with one another.{{Citation needed|date=October 2024}} In 1849, Kützing published a comprehensive work describing 6000 different [algae](/source/algae) species, including the most known species of ''Cyclotella'' today, ''C. meneghiniana''.<ref name="nordhausen1844">Kützing, F.T. (1844). Die kieselschaligen Bacillarien oder Diatomeen. Nordhausen. 30. 1-152</ref>

Brébisson describes in the 1838 publication ''Flore de Normandie,'' ''Cyclotella'' "has a more or less elongated ovoid shape, it is swollen from both sides, and when its center is diaphanous, it resembles two tubular frustules united by their vertices ( translated from French )."<ref name="nordhausen1844" /> Upon distinguishing ''Cyclotella'' from other diatom species, there have been over 100 different species of the genus described and taxonomically accepted.<ref>{{Cite book |last1=Round |first1=Frank E. |title=The diatoms: biology & morphology of the genera |last2=Crawford |first2=Richard M. |last3=Mann |first3=David G. |date=2007 |publisher=Cambridge University Press |isbn=978-0-521-36318-1 |edition=Digitally printed version |location=Cambridge}}</ref>

Recent study has separated multiple genera from within ''Cyclotella'', including ''[Cyclostephanos](/source/Cyclostephanos)'', ''[Discostella](/source/Discostella)'' and ''[Lindavia](/source/Lindavia)''. Currently, there are 129 recognized species of ''Cyclotella'' and 72 species with [uncertain status](/source/Incertae_sedis), but currently placed in ''Cyclotella.''<ref>{{AlgaeBase genus|name=Cyclotella|id=43757}}</ref> ''Cyclotella'' may still be an unnatural group (i.e. polyphyletic or paraphyletic).<ref>{{Cite web |title=Cyclotella {{!}} Genera - Diatoms of North America |url=https://diatoms.org/genera/cyclotella |access-date=2024-10-08 |website=diatoms.org |language=en-US}}</ref><ref>{{Cite journal |last1=Nakov |first1=Teofil |last2=Guillory |first2=Wilson |last3=Julius |first3=Matthew |last4=Theriot |first4=Edward |last5=Alverson |first5=Andrew |date=2015-06-25 |title=Towards a phylogenetic classification of species belonging to the diatom genus Cyclotella (Bacillariophyceae): Transfer of species formerly placed in Puncticulata, Handmannia, Pliocaenicus and Cyclotella to the genus Lindavia |url=http://publication.plazi.org/id/FFBED16FE530FFB0C93AFFA4FFEEFFA8 |journal=Phytotaxa |language=en |volume=217 |issue=3 |pages=249–264 |doi=10.11646/phytotaxa.217.3.2 |issn=1179-3163|url-access= }}</ref>

== Habitat and ecology ==
Species of ''Cyclotella'' are most often found in [oligotrophic](/source/oligotrophic) (nutrient poor) environments. They are most
often found in freshwater environments, but can also be found in [brackish](/source/Brackish_water) and marine habitats as well. Many of the freshwater species have been found throughout the United States in stagnant waters.<ref name="academicpress1997">Hasle, G.R., and E.E. Syvertsen. (1997). Marine Diatoms. In: Tomas, C.R. (Ed.) Identifying Marine Phytoplankton. Academic Press.</ref> Species that are most commonly found in marine environments are ''C. caspia'', ''C. litoralis'', ''C. meneghiniana'', ''C. striata'', and ''C. stylorwn''.

In a study performed in 1974, it was determined that the optimal [osmolar](/source/osmolar) concentration for growth in ''C. meneghiniana'' in a medium of 0.5 Osm/L.<ref name="zeitschriftfürpflanzenphysiologie1974">Schobert, B. (1974). The influence of water stress on the metabolism of diatoms I. Osmotic resistance and proline accumulation in Cyclotella meneghiniana. Zeitschrift für Pflanzenphysiologie. 74(2). 106-120.</ref> For references, the osmolarity of seawater is on average, 1 Osm/L.<ref name="meilhac1838" /> Marine diatoms and algae in general tend to flourish in higher [osmolar](/source/osmolar) concentrations due to the increased presence of [carbon dioxide](/source/carbon_dioxide) and nutrients to be utilized as sustenance, but the low-solute environment Schobert found to be most optimal for the growth of ''C. meneghiana'' is consistent with most ''Cyclotella'' being found in low-productivity mesotrophic to oligotrophic environments. Species of cyclotella have been
found in harsh aquatic environments such as coldwater regions in northern regions of the world.<ref name="academicpress1997" />

Another study by Van de Vijver and Dessein found a new species of ''Cyclotella,'' ''C. deceusteriana'', in the [sub-antarctic](/source/Subantarctic) region.<ref name="phytotaxa2018">Van de Vijver, Bart & Dessein, Steven. (2018). Cyclotella deceusteriana, a new centric diatom species (Bacillariophyta) from the sub-Antarctic Region. Phytotaxa. 333(1).</ref> One of the only ecological characteristics of Cyclotella that is consistent among most of its species is the fact that they are found in stagnant or near-stagnant waters and are immobile. Beyond that, there is a great deal of variation. Many of the ''Cyclotella'' species that have been studied have been shown to be found in aquatic environments that are either slightly or highly [alkali](/source/alkali)ne. ''C. distinguenda'' is known to prefer alkaline waters, and C. gamma has been found in lakes that have a pH range of 7.2 to 7.8. Nutrient concentration in the habitats of ''Cyclotella'' spp. varies. ''C. sensulato'' has been described as a dominant member of both mesotrophic and oligotrophic environments,<ref name="biolrevcambphilossoc2015" /> as many are, but both C. atomus and C. meneghiniana are found to prefer nutrient-rich environments. Temperature ranges vary between species as well; it was mentioned earlier that ''C. deceusteriana'' was discovered in sub-antarctic regions, and C. gamma and C.quillensis have been found in the Northern United States and [Saskatchewan](/source/Saskatchewan), respectively. ''C. atomus'', on the other hand, has been found in warmer lake sediments in California. [Colonization](/source/Colony_(biology)) patterns of ''Cyclotella'' spp. are relatively uniform, in the sense that most of them are solitary organisms. ''C. meneghiniana'', however, has been described to occasionally live in colonies.<ref name="journalofphycology1975">Lowe, R.L. (1975). Comparative ultrastructure of the valves of some Cyclotella species (Bacillariophyceae) Journal of Phycology. 11(4): 415-424.</ref> Of course, the preference of nutrient rich environments of ''C. meneghiniana'' conflicts the findings
mentioned earlier.

== Morphology ==
The size of ''Cyclotella'' varies by species. ''C. atomus'' has a diameter of 5-7 μm, whereas C.
quillensis can have a diameter up to 24-54 μm.<ref name="contributionstocanadianbiology1922">Bailey, L.W. (1922). Diatoms from the Quill Lakes, Saskatchewan, and from Airdrie, Alberta.Contributions to Canadian Biology 11(1): 157-165.</ref> The most studied species of the genus, C. meneghiniana, has a diameter of 6-18 μm. Like all other diatoms, ''Cyclotella'' spp. have transparent cell walls. They form biosilica shells using dissolved [silicon](/source/silicon) and [carbon](/source/carbon) acquired from various carbon partitioning pathways.

Other materials ''Cyclotella'' spp. use for cell wall biosynthesis are semiconductor [metal oxides](/source/Oxide) and extracellular fibers made of [chitin](/source/chitin). The primary [allomorph](/source/allomorph) of chitin that is found most often in diatoms is α-chitin, but ''Cyclotella'' and ''[Thalassiosira](/source/Thalassiosira)'' contain the β-chitin allomorph. Poly N-acetyl [glucosamine](/source/glucosamine) chains are oriented in a parallel manner and contain intermolecular [hydrogen bond](/source/hydrogen_bond)s.

The bond chains and hydrogen bonds between molecules form a [paracrystalline](/source/paracrystalline) matrix of β-chitin. This matrix contains pores large enough for whatever [solvent](/source/solvent) is available in the aquatic ecosystem in which ''Cyclotella'' spp. reside in to enter the matrix and swell the structure.<ref name="journalofappliedphycology2019">LeDuff, P., & Rorrer, G. L. (2019). Formation of extracellular β-chitin nanofibers during batch cultivation of marine diatom Cyclotella sp. at silicon limitation. Journal of Applied Phycology, 31(6), 3479–3490.</ref>

Diatoms are unique in the sense that they have valves, created by the two halves of a diatom's test. ''Cyclotella'' spp. are no exception, as they form the upper and lower portions of the wall. The girdle bands that support the valves are thin strips of silica and ultimately circumscribe the cell. Each valve has two central tubes traversing its surface, meeting in the middle at the central nodule. The [morphology](/source/Morphology_(biology)) of the ''Cyclotella'' cell wall and its valves are important traits that distinguish species from each other. Each species has tangentially undulated valves all throughout their cell wall, regardless of their length, width, and concentration.<ref name="journalofstructuralbiology2010">Tesson, B., Hildebrand, M. (2010). Dynamics of silica cell wall morphogenesis in the diatom Cyclotella cryptica: Substructure formation and the role of microfilaments. Journal of Structural Biology. 169(1). 62-74.</ref> [Frustule](/source/Frustule)s contain areolas, that is orifices that mediate the passage of nutrients and [exudate](/source/exudate)s across the cell wall for sustenance. The characteristics of these areolas are thought to cause differences in mechanical strength and metabolism among different cells.<ref name="proceedingsoftheroyalsocietyb2016">Shirokawa, Y., Shimada, M. (2016). Cytoplasmic inheritance of parent–offspring cell structure in the clonal diatom Cyclotella meneghiniana. Proceedings of the Royal Society B. 283(1842).</ref>

Like other monoraphid diatoms, ''Cyclotella'' frustules can be characterized as heterovalvar. The cell wall and cell membrane are what are known to this point as what distinguishes ''Cyclotella'' from other diatom genera. The [cytoplasm](/source/cytoplasm)ic components are assumed to be similar to what other diatoms have. In ''C. meneghiniana'', there are granules scattered and attached at the [chromatophore](/source/chromatophore) all throughout the cytoplasm. The genus is [photosynthetic](/source/Photosynthesis) like all other diatoms, so all species contain one or many [pyrenoid](/source/pyrenoid)s traversed by a [thylakoid](/source/thylakoid) membrane and a [chloroplast](/source/chloroplast) within the [endoplasmic reticulum](/source/endoplasmic_reticulum).

[Dictyosome](/source/Dictyosome)s are also present in the cytoplasm, being in close proximity to the nucleus and making up the [golgi complex.](/source/Golgi_Complex) The nucleus has been found to change locations in ''C. meneghiniana'' throughout generations as a result of the cell diameter gradually decreasing.<ref name="phycologia1979">Hoops, H.J., Floyd, G.L. (1979). Ultrastructure of the centric diatom, Cyclotella meneghiniana: vegetative cell and auxospore development. Phycologia. 18(4). 424-435.</ref>

== Life cycle ==
''Cyclotella meneghiniana'' divide into two daughter cells during [asexual reproduction](/source/asexual_reproduction). The halves are separated by the distinction between the two valves for each cell. Each of the two offspring that arise as a result of cell division have one of the two valves from the parent cell. During the separation of the parent cell, the cytoplasm forms the two offspring valves that will end up complementing the inherited parent valves in the offspring once reproduction is complete.

The offspring valves are formed within a silica deposition vesicle that gradually grows larger and separates into two different offspring valves. The parent valves become a template for the offspring valves being formed, with patterns of striae and the central cell area also being inherited. However, perfect complementation does not occur every generation, which can lead to consecutive generations inheriting a deformed parental valve that was initially a deformed offspring valve in a previous generation. The likeness of the offspring valves to the parental valves is determined by the flexibility of the girdle bands; the other factors are unknown.<ref name="proceedingsoftheroyalsocietyb2016" /> Vegetative cell division occurs over hundreds of generations for ''C. meneghiniana'', with the cell diameters of the offspring organisms becoming gradually smaller. Regardless of the flexibility of the girdle bands and functionality of [vegetative cell](/source/vegetative_cell) division, there is a point where the diameter of ''C. meneghiniana'' offspring dips below a certain threshold diameter. It has been observed that at this point, species-specific environmental stimuli induces the change from [asexual reproduction](/source/asexual_reproduction) to [sexual reproduction](/source/sexual_reproduction).

Sexual reproduction occurs with [gamete](/source/gamete)s being formed upon reaching the threshold. During the process of meiosis, male ''Cyclotella'' cells release [sperm](/source/sperm) and the female ''Cyclotella'' cells develop and egg from within the two valves. Following fertilization of the egg, a [zygote](/source/zygote) is formed from the union of the two gametes. The zygote then develops into an auxophore (2n). Once sexual reproduction is complete, the diameter of the offspring is larger and beyond the threshold once again, allowing for the production of another few hundred generations through the asexual division of auxophores.

== Biochemistry ==
Despite there being very little known about the internal morphology of ''Cyclotella'', there have been a sizable number of studies done on the genus' [molecular biology](/source/molecular_biology) and genome. ''C. cryptica'' has been identified to be an oleaginous diatom, with a great deal of [triacylglycerols](/source/Triglyceride). Its [genome](/source/genome) has been identified to contain many [methylated](/source/DNA_methylation) repetitive sequences, which are supposed to function as a way of limiting the occurrences of [DNA transposition](/source/DNA_transposon). ''C. cryptica'' was discovered to have a very efficient lipid metabolism, which is needed for its high triacylglycerol production.<ref name="biotechnolbiofuels2016">Traller, J.C., Cokus, S.J., Lopez, D.A. et al. (2016). Genome and methylome of the oleaginous diatom Cyclotella cryptica reveal genetic flexibility toward a high lipid phenotype. Biotechnol Biofuels. 9(258).</ref>

Another study conducted in 1992 indicates that ''C. meninghiana'' has the largest chloroplast genome and abundance of sequence repeats of any diatom species up to this specific study.<ref name="proquestdissertationspublishing1992">Bourne, C.E.M. (1992). Chloroplast DNA structure, variation and phylogeny in closely related species of Cyclotella. ProQuest Dissertations Publishing.</ref> The ''C. meninghiana'' chloroplast genome alone has a vast amount of [equimolar](/source/equimolar) inversion isomers. Many of these isomers differ in their orientation to their single copy sequence counterparts. The species, according to the findings, still has some [prokaryotic](/source/Prokaryote) and land plant gene clusters as well as [operon](/source/operon)s. In comparison to many other diatoms and plant chloroplast studies, ''C. meninghiana'' has a diversely rearranged gene order for single copy regions in its genome.{{Citation needed|date=May 2020}}

The draft nuclear genome of ''Cyclotella cryptica'' strain CCMP332 is 171 [Mb](/source/Megabases) long.<ref>{{Cite journal |last1=Roberts |first1=Wade R. |last2=Downey |first2=Kala M. |last3=Ruck |first3=Elizabeth C. |last4=Traller |first4=Jesse C. |last5=Alverson |first5=Andrew J. |date=2020-09-02 |title=Improved Reference Genome for Cyclotella cryptica CCMP332, a Model for Cell Wall Morphogenesis, Salinity Adaptation, and Lipid Production in Diatoms (Bacillariophyta) |journal=G3 (Bethesda) |volume=10 |issue=9 |pages=2965–2974 |doi=10.1534/g3.120.401408 |issn=2160-1836 |pmc=7466962 |pmid=32709619}}</ref>

== Fossil records ==
[Fossil](/source/Fossil)s of ''Cyclotella'' are not commonly discovered, however there have been a few species found fossilized in freshwater ecosystems. Fossil assemblages have been found in glacial and interglacial segments in [oligotrophic](/source/oligotrophic) and mesotrophic rivers in Europe and [Mediterranean regions](/source/Mediterranean_Basin).

A sample of ''C. distinguenda'' was found at the [Agios Floros](/source/Agios_Floros) fen, in Southwest [Peloponnese](/source/Peloponnese), Greece. The fossilized sample was dated to 5700 to 5300 years ago. Support for the recognition of a new diatom species, ''C. paradistinguenda'', was proposed after looking through the sample of ''C. distinguenda''. ''C. paradistinguenda'' was dated back to 4600 years ago. Distinctions between the two species can also be described in the differences in [stratigraphic](/source/Stratigraphy) distributions between the two, as ''C. paradistinguenda'' was found in an upper organic sequence of the sample compared to ''C. distinguenda''.<ref>{{Cite journal |last1=Katrantsiotis |first1=Christos |last2=Risberg |first2=Jan |last3=Norström |first3=Elin |last4=Holmgren |first4=Karin |date=2016-07-02 |title=Morphological study of Cyclotella distinguenda with a description of a new fossil species Cyclotella paradistinguenda sp. nov. from the Agios Floros fen, SW Peloponnese, Greece in relation to other Cyclotella species |url=https://www.tandfonline.com/doi/full/10.1080/0269249X.2016.1211178 |journal=Diatom Research |language=en |volume=31 |issue=3 |pages=243–267 |doi=10.1080/0269249X.2016.1211178 |issn=0269-249X|url-access=subscription }}</ref>

Another sample of Cyclotella was found at [Lake Petén-Itzá](/source/Lake_Pet%C3%A9n_Itz%C3%A1), lowland [Guatemala](/source/Guatemala). The newfound diatom species were found fossilized morphologically distinct from other ''Cyclotella'' species ''C. petenensis and'' ''C. cassandrae.'' The age of the samples these species came from were dated to 17,000 to 60,000 years ago.<ref>Paillès, C., Sylvestre, F., Escobar, J., Tonetto, A., Rustig, S., & Mazur, J. C. (2018). Cyclotella petenensis and Cyclotella cassandrae, two new fossil diatoms from Pleistocene sediments of Lake Petén-Itzá, Guatemala, Central America. ''Phytotaxa'', ''351''(4), 247-263. https://doi.org/10.11646/phytotaxa.351.4.1</ref>

== References ==
<references />
{{Taxonbar|from=Q1147628}}

Category:Diatom genera
Category:Thalassiosirales

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Adapted from the Wikipedia article [Cyclotella](https://en.wikipedia.org/wiki/Cyclotella) by Wikipedia contributors ([contributor history](https://en.wikipedia.org/wiki/Cyclotella?action=history)). Available under [Creative Commons Attribution-ShareAlike 4.0 International](https://creativecommons.org/licenses/by-sa/4.0/). Changes may have been made.
