A big image opens when the thumbnail is clicked.(nies-1383.jpg)
Strain number NIES-1383  
Phylum Heterokontophyta  
Class Bacillariophyceae  
Scientific name Pseudo-nitzschia sp.  
Synonym  
Former name  
Common name Pennate diatom  
Locality (Date of collection) Hachijo Isl., Hachijojima, Tokyo, Japan (2002-12-13)  
Latitude / Longitude 33.10641 / 139.797885 
Habitat (Isolation source) Marine (Sand)  
History < TKB;  
Isolator (Date of isolation) Yoshida, Masaki (2002-12-**)  
Identified by Yoshida, Masaki  
State of strain Cryopreservation; Unialgal; Clonal; Non-axenic  
Culture condition
(Preculture condition)
Medium:  mIMRf/2  
Temperature:  15 C
Light intensity:  24 µmol photons/m2/sec, L/D cycle:  10L:14D
Duration:  42 D  
Gene information  
Cell size (min - max) - 11 μm  
Organization Unicellular 
Characteristics Prey for Rubratella sp. NIES-1445  
Other strain no. Other strain no. : TKB-101 (ym-09)  
Remarks Cryopreserved 
Movie  
Related strain information
(Used in same reference)
Strain number Scientific name Common name Habitat (Isolation source) Characteristics
NIES-766
Cryptomonas paramaecium   Brackish water (Lake water) Heterotrophic ; Osmotrophic  
NIES-560
Fibrocapsa japonica   Marine (Seawater) Red tide  
NIES-697
Rhodomonas acuta   Marine Authentic strain of Cryptomonas acuta Butcher  
NIES-466
Gomphonema parvulum Pennate diatom   Freshwater (River water)  
NIES-586
Chaetoceros didymus Centric diatom   Marine (Seawater) Red tide ; Test strain (Kohira, M.., et al. 2016)  
Reference
Mitani, E., Nakayama, F., Matsuwaki, I., Ichi, I., Kawabata, A., Kawachi, M., Kato, M. 2017 Fatty acid composition profiles of 235 strains of three microalgal divisions within the NIES Microbial Culture Collection. Microb. Resour. Syst., 33, 19-29.
Keywords: Cryptophyta; docosahexaenoic acid; eicosapentaenoic acid; fatty acid; Haptophyta; Heterokontophyta; microalgae
Strain(s): 189141517711152232252332342652742752762772782792802812822842933233243303333453473483503533723773883913954074084094134144174614624664875345485535565575585595605625875885895906036056226236956966976986997007017027037047057067077087107117127137147157167417657668058379971001100210031004100510061007100910111016101710441045104610471302130313241330133913401349135313701375137613791383138413851386138713911392139313951398139914001401169917001730181318151816182618271831186218631864186518741963196419651974197519762142214321442145214721482300233123322351236323642365236923702376250625332534253525362537259026332668268926902691269326942696269727072716271727182720272227232725272627292730273127322770277127722773283928402841284228432844285928722878289028993391368936903691 
DOI: 10.60369/microresys.33.1_19

Tsuchiya, M. & Nomaki, H. 2021 Rapid response of the giant protist xenophyophores (Foraminifera, Rhizaria) to organic matter supply at abyssal depths revealed by an in situ dual stable isotope labeling experiment. Deep-Sea Research, 176, 103608 (article ID).
Keywords: Xenophyophore; In situ isotope labeling experiment; Abyssal plain; Feeding habit
Strain(s): 1383 
DOI: 10.1016/j.dsr.2021.103608

Zhou, G.-J., Lai, R. W. S., Yang, Y., Kim, M.-S., Lee, Y. H., Lee, J.-S., Leung, K. M. Y. 2026 Retinoic acids can hinder molting and development of the marine copepod Tigriopus japonicus in the coastal environment. J. Hazard. Mater., 513, 142521 (article ID).
Keywords: Retinoids; Algae; Chronic toxicity; Copepod; Molting; Ecdysteroid
Strain(s): 151222323732337753458660167568213831396183423272590 
PubMed: 42208294
DOI: 10.1016/j.jhazmat.2026.142521

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