Strain number NIES-329  
Phylum Streptophyta  
Class Klebsormidiophyceae  
Scientific name Klebsormidium sp.  
Synonym  
Former name Formerly identified as Ulothrix variabilisg, re-identified by DNA analysis[2016 May]  
Common name  
Locality (Date of collection) Takatori River, Ibaraki, Japan (1984-12-11)  
Latitude / Longitude  
Habitat (Isolation source) Freshwater (Lake water)  
History < Suda, Shoichiro  
Isolator (Date of isolation) Suda, Shoichiro (1984-12-12)  
Identified by Kamikawa, Ryoma (Reidentify)  
State of strain Cryopreservation; Unialgal; Clonal; Non-axenic  
Culture condition
(Preculture condition)
Medium:  C  
Temperature:  20 C
Light intensity:  11 µmol photons/m2/sec, L/D cycle:  10L:14D
Duration:  4 M  
Gene information  
Cell size (min - max) - 6 μm  
Organization Filamentous 
Characteristics  
Other strain no.  
Remarks Cryopreserved 
Movie  
Related strain information
(Large number of orders and same genus or species)
Related strain information
(Used in same reference)
Strain number Scientific name Common name Habitat (Isolation source) Characteristics
NIES-21
Nostoc sp. Blue-green alga ; Cyanobacteria   Genome decoded strain  
NIES-686
Chlorella vulgaris Green alga   Authentic strain  
NIES-102
Microcystis aeruginosa Blue-green alga ; Cyanobacteria   Freshwater (Lake water) Cyanobacterial water bloom (aoko) ; Toxicity ; microcystin (+) (Tanabe et al. 2009b) ; Genome decoded strain (Yamaguchi et al. 2020) ; ST10 (Tanabe et al. 2007)  
NIES-27
Spirulina subsalsa Blue-green alga ; Cyanobacteria    
NIES-188
Closterium spinosporum Desmid   Freshwater (Paddy soil) Heterothallic: Mating type (+)  
Reference
Mori, F., Erata, M., Watanabe, M. M. 2002 Cryopreservation of cyanobacteria and green algae in the NIES-Collection. Microbiol. Cult. Coll., 18, 45-55.
Keywords: cryopreservation; cyanobacteria; green algae; FDA staining method; NIES-Collection
Strain(s): 192122232425262728293031323334353637383940414445465051525354555658596061626364656667686970737475767778798081878990919293949596979899100101102103104105106107108109110111112119120122123125127128129130131132133134135137138139144147151152153154155156157158159160162163164165166167168170171172173174175176177178179180181182183185186187188189191192193194197198199200201202203204205206207208209210211212213214215216217224226227228229230231232241242243244245246248257259261263266267268287288289290294295297298299300301302303305306308309310312313329334337338339340341342349351359360361362375378379380382384385390394396397398415416418419421422423424425426427428429430431432433434436437438439440446447448449450451452453454455456457458459460464468469474478479480481503504505506507509510512514515522523524527528529530531532536537538539540541542543544545546564565566567568569570571572573574575576577578579580581582583584585592593594595596597598604610628630631632633634635636637638639640641642643644645646647648649650651652653654655656657658659660661662663664665666667672685686687688689690691692693694717718719720721722723724725726727728729 

Takamura, N., Kasai, F., Watanabe, M. M. 1988 Differences in the tolerant level of benthic algae to heavy metal - The effects of Cu, Cd, and Zn on the photosynthesis. Res. Rep. Natl. Inst. Environ. Stud., No. 114, 223-232 (in Japanese with English summary).
Strain(s): 71305329411412413434504531538641642662 

Takamura, N., Kasai, F., Watanabe, M. M. 1989 Effects of Cu, Cd and Zn on photosynthesis of freshwater benthic algae. J. Appl. Phycol., 1, 39-52.
Keywords: heavy metal; photosynthesis; algae; tolerance
Strain(s): 71305329407408409410411412413414416433434454461465466467479481487503504505506507509510515529530531532536537538539540620639640641642659660661662 

Hamana, K., Aizaki T., Arai, E., Saito, A., Uchikata, K., Ohnishi, H. 2004 Distribution of norspermidine s a cellular polyamine within micro green algae including non-photosynthetic achlorophyllous Polytoma, Polytomella, Prototheca and Helicosporidium. J. Gen. Appl. Microbiol., 50, 289-295.
Keywords: Chlorophyta; green alga; Helicosporidium; norspermidine; polyamine; Polytoma; Polytomella; Prototheca
Strain(s): 18251254255296329483486536 

Ueda, H., Otsuka, S., Senoo, K. 2009 Community composition of bacteria co-cultivated with microalgae in non-axenic algal cultures. Microbiol. Cult. Coll., 25, 21-25.
Keywords: algal-bacterial association; bacteria; community composition; culture collection; microalgae
Strain(s): 329640864 

Fukuda, S., Iwamoto, K., Atsumi, M., Yokoyama, A., Nakayama, T., Ishida, K-I., Inouye, I., Shiraiwa, Y. 2014 Global searches for microalgae and aquatic plants that can eliminate radioactive cesium, iodine and strontium from the radio-polluted aquatic environment: a bioremediation strategy. J. Plant Res., 127, 79-89.
Keywords: Algal phytoremediation; Bioaccumulation; Radiopollution; Radionuclide elimination; Radioactive cesium; The Fukushima 1 Nuclear Power Plant accident
Strain(s): 24367115516020323324632933339140541744048750352953153854855358759767872780584385993199510031012101510171031104410451259132613311377138213881411143514391440144114421458172818261831183318401846186218651956213121442146214721502175217621852268232523412352237724122437285428552856285828592860 
PubMed: 24346654
DOI: 10.1007/s10265-013-0596-9

Iwamoto, K. & Shiraiwa, Y. 2017 Accumulation of cesium by aquatic plants and algae. In Impact of Cesium on Plants and the Environment, Eds. by Gupta, D. & Walther, C., Springer International Publishing, pp. 171-185.
Keywords: Eustigmatophycean alga; Vacuoliviride crystalliferum; Fukushima 1st Nuclear Power Plant Accident; High cesium-accumulating microalgae; Phytoremediation; Radioactive cesium
Strain(s): 329145821312352 
DOI: 10.1007/978-3-319-41525-3_10

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