References [ 9 ]
Chen C-Y, Yeh K-L, Aisyah R, Lee D-J & Chang J-S (2011) Cultivation, photobioreactor design and harvesting of microalgae for biodiesel production: A critical review. Bioresource Technology 102: 71-81.
Bale NJ, Llewellyn CA & Airs RL (2010) Atmospheric pressure chemical ionisation liquid chromatography/mass spectrometry of type II chlorophyll-α transformation products: Diagnostic fragmentation patterns. Organic Geochemistry 41: 473-481.
Brown MR & Jeffrey SW (1992) Biochemical composition of microalgae from the green algal classes Chlorophyceae and Prasinophyceae. 1. Amino acids, sugars and pigments. Journal of Experimental Marine Biology and Ecology 161: 91-113.
DOI: none
Van Wagenen J, Lovstad Holdt S, De Francisci D, Valverde-Perez B, Gy Plosz B & Angelidaki I (2014) Microplate-based method for high-throughput screening of microalgae growth potential. Bioresource Technology 169: 566-572.
Kiran B, Kumar R & Deshmukh D (2014) Perspectives of microalgal biofuels as a renewable source of energy. Energy Conversion and Management 88: 1228-1244.
Darienko T & Pröschold T (2015) Genetic variability and taxonomic revision of the genus Auxenochlorella (Shihira et Krauss) Kalina et Puncocharova (Trebouxiophyceae, Chlorophyta). Journal of Phycology 51: 394-400.
Illman AM, Scragg AH & Shales SW (2000) Increase in Chlorella strains calorific values when grown in low nitrogen medium. Enzyme and Microbial Technology 27: 631-635.
Ghimire A, Kumar G, Sigavuruanathan P, Shobana S, Saratale GD, Kim HW, Loungo V, Esposito G & Munoz R (2017) Bio-hythane production from microalgae biomass: Key challenges and potential opportunities for algal bio-refineries. Bioresource Technology 241: 525-536.
Gotovtsev PM, Komova AV, Gorin KV, Sergeeva YE, Konova IA & Vasilov RG (2019) Biotechnology for thermal power plants. A review of recent and perspective technologies Sustainable Energy Technologies and Assessments 31: 132-141.
Sequences [ 2 ]
EMBL/Genbank Links
(Bold text = submission by CCAP staff or collaborators)
18S-ITS2
Division/Phylum: Chlorophyta Class: Trebouxiophyceae Order: Chlorellales

Note: for strains where we have DNA barcodes we can be reasonably confident of identity, however for those not yet sequenced we rely on morphology and the original identification, usually made by the depositor. Although CCAP makes every effort to ensure the correct taxonomic identity of strains, we cannot guarantee that a strain is correctly identified at the species, genus or class levels. On this basis users are responsible for confirming the identity of the strain(s) they receive from us on arrival before starting experiments.
For strain taxonomy we generally use AlgaeBase for algae and Adl et al. (2019) for protists.

Culture media, purity and growth conditions:
Medium: EG:JM; Minimal or unobserved bacteria under normal growth conditions; maintained by serial subculture and cryopreserved;
Attributes
Authority(Krüger) Kalina & Puncochárová 1987
IsolatorPringsheim (1947)
Collection Site Cambridge, England, UK
Notes Images 1-3 by Tatyana Darienko; renamed after sequencing, June 2011
Axenicity Status Minimal or unobserved bacteria under normal growth conditions
Area Europe
Country UK
Environment Plant/Lichen
GMO No
In Scope of Nagoya Protocol No
ABS Note Collected pre Nagoya Protocol. No known Nagoya Protocol restrictions for this strain.
Collection Date c 1947
Pathogen Not pathogenic: Hazard Class 1
Strain Maintenance Sheet SM_GeneralFreshwaterGreens.pdf
Toxin Producer Not Toxic / No Data
Type Culture No
Taxonomy WoRMS ID 612111
Equivalent StrainsSAG 211-8d
Formerly Listed in CCAP asChlorella pyrenoidosa,Chlorella protothecoides

CCAP 211/8D

Auxenochlorella protothecoides


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