Artificial neural network (ANN) approach to optimize cultivation conditions of microalga Chlorella vulgaris in view of biodiesel production DOI
Vinoj Chamilka Liyanaarachchi, Gannoru Kankanamalage Sanuji Hasara Nishshanka, Myrsini Sakarika

et al.

Biochemical Engineering Journal, Journal Year: 2021, Volume and Issue: 173, P. 108072 - 108072

Published: May 25, 2021

Language: Английский

Role of microalgae in achieving sustainable development goals and circular economy DOI
A.G. Olabi, Nabila Shehata, Enas Taha Sayed

et al.

The Science of The Total Environment, Journal Year: 2022, Volume and Issue: 854, P. 158689 - 158689

Published: Sept. 13, 2022

Language: Английский

Citations

140

Carotenoid Production from Microalgae: Biosynthesis, Salinity Responses and Novel Biotechnologies DOI Creative Commons
Yuanyuan Ren, Han Sun,

Jinquan Deng

et al.

Marine Drugs, Journal Year: 2021, Volume and Issue: 19(12), P. 713 - 713

Published: Dec. 20, 2021

Microalgae are excellent biological factories for high-value products and contain biofunctional carotenoids. Carotenoids a group of natural pigments with high value in social production human health. They have been widely used food additives, pharmaceutics cosmetics. Astaxanthin, β-carotene lutein currently the three carotenoids largest market share. Meanwhile, other less studied pigments, such as fucoxanthin zeaxanthin, also exist microalgae great potentials. Since carotenoid accumulation is related to environments cultivation seawater difficult biotechnological problem, contributions salt stress on need be revealed large-scale production. This review comprehensively summarizes biosynthesis salinity responses microalgae. Applications induce accumulation, potentials Internet Things future aspects discussed. As global share still ascending, large-scale, economical intelligent biotechnologies play vital roles microalgal economy.

Language: Английский

Citations

116

Large-scale production of Spirulina-based proteins and c-phycocyanin: A biorefinery approach DOI
Bavatharny Thevarajah, Gannoru Kankanamalage Sanuji Hasara Nishshanka,

Malith Premaratne

et al.

Biochemical Engineering Journal, Journal Year: 2022, Volume and Issue: 185, P. 108541 - 108541

Published: July 1, 2022

Language: Английский

Citations

87

Bioproducts from microalgae biomass: Technology, sustainability, challenges and opportunities DOI Creative Commons
Maria Lúcia Calijuri, Thiago Abrantes Silva, Iara Barbosa Magalhães

et al.

Chemosphere, Journal Year: 2022, Volume and Issue: 305, P. 135508 - 135508

Published: June 28, 2022

Language: Английский

Citations

85

Sustainability and carbon neutralization trends in microalgae bioenergy production from wastewater treatment: A review DOI

S. Thanigaivel,

Sundaram Vickram,

Sivasubramanian Manikandan

et al.

Bioresource Technology, Journal Year: 2022, Volume and Issue: 364, P. 128057 - 128057

Published: Oct. 1, 2022

Language: Английский

Citations

85

A review of the strategy to promote microalgae value in CO2 conversion-lipid enrichment-biodiesel production DOI
Huan Liu,

Tian-Ji Liu,

Huawei Guo

et al.

Journal of Cleaner Production, Journal Year: 2024, Volume and Issue: 436, P. 140538 - 140538

Published: Jan. 1, 2024

Language: Английский

Citations

30

Mixotrophic cultivation of microalgae: An alternative to produce high-value metabolites DOI
Tania Castillo,

Diego Ramos,

Tomás García-Beltrán

et al.

Biochemical Engineering Journal, Journal Year: 2021, Volume and Issue: 176, P. 108183 - 108183

Published: Aug. 12, 2021

Language: Английский

Citations

100

Bioprocessing of volatile fatty acids by oleaginous freshwater microalgae and their potential for biofuel and protein production DOI Creative Commons
Alok Patel, Eleni Krikigianni, Ulrika Rova

et al.

Chemical Engineering Journal, Journal Year: 2022, Volume and Issue: 438, P. 135529 - 135529

Published: March 3, 2022

To address the issue of high organic carbon costs in heterotrophic cultivation microalgae, we evaluated hypotheses by employing microalgae as a biorefinery for proteins and advanced biofuels after on volatile fatty acids (VFAs) instead pure glucose. prevent inhibitory effect VFAs lipid synthesis, strains capable tolerating levels were selected. Growth synthesis two freshwater Auxenochlorella protothecoides Chlorella sorokiniana, was optimized at different VFA concentrations. Maximum biomass content A. (10.66 g/L, 33.93%) C. sorokiniana (7.98 39.80%) obtained replacing glucose with 30 g/L acetate C/N 60. The generated lipids compliant existing standards biodiesel. Moreover, when grown acetate, both contained complete range essential non-essential amino acids. Finally, single-source commercial replaced mixture acidogenic fermentation waste lignocellulosic from brewers' spent grain. allowed successful mixotrophic demonstrating feasibility this low-cost source fuel-grade biodiesel production.

Language: Английский

Citations

65

Advancement and role of abiotic stresses in microalgae biorefinery with a focus on lipid production DOI

Farhana Bibi,

Asif Jamal, Zaixing Huang

et al.

Fuel, Journal Year: 2022, Volume and Issue: 316, P. 123192 - 123192

Published: Feb. 18, 2022

Language: Английский

Citations

64

Haematococcus pluvialis: A potential feedstock for multiple-product biorefining DOI
Gannoru Kankanamalage Sanuji Hasara Nishshanka, Vinoj Chamilka Liyanaarachchi, P.H.V. Nimarshana

et al.

Journal of Cleaner Production, Journal Year: 2022, Volume and Issue: 344, P. 131103 - 131103

Published: Feb. 24, 2022

Language: Английский

Citations

53