Related Experiment Video
Updated: Oct 11, 2026

Cultivation of Green Microalgae in Bubble Column Photobioreactors and an Assay for Neutral Lipids
Published on: January 7, 2019
CRISPR-enhanced microalgae for carbon sequestration and carotenoid production: opportunities and fundamental
Nalinakshan Sreevidya Shruthy1, Cheng-Di Dong2, Ya-Ting Chen3
1Institute of Aquatic Science and Technology, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan.
Abstract:
Microalgae represent a promising biological platform for CO2 sequestration and the sustainable production of high-value metabolites, particularly carotenoids such as lutein and astaxanthin. However, industrial performance remains constrained by low carbon conversion efficiency, reduced photosynthetic performance, and competing metabolic fluxes that limit product yield. The emergence of CRISPR/Cas-based genome engineering has enabled precise and multiplexed modulation of microalgal metabolic networks, offering new opportunities to overcome these limitations. This review critically evaluates CRISPR-enabled engineering strategies for improving carbon assimilation, photosynthetic efficiency, and carotenoid biosynthesis in microalgae. We discuss advances in transformation and delivery systems across diverse species, CRISPR interference, CRISPR activation, and multiplexed pathway rewiring. Targeted modifications of light-harvesting complexes, carbon concentrating mechanisms, and key carotenoid biosynthetic enzymes are discussed with their reported impacts on biomass accumulation, CO2 fixation, and pigment productivity. Emerging evidence indicates that while pathway-specific genetic interventions can significantly enhance metabolic accumulation, these improvements are often not proportionally reflected in whole-cell carbon fixation, revealing underlying constraints imposed by energy allocation, redox balance, and regulatory network coupling. Finally, we highlight the potential of synthetic regulatory circuits and programmable transcriptional control as next-generation tools for dynamic regulation of metabolic fluxes rather than static gene-level modifications. By integrating molecular engineering strategies with physiological and system-level constraints, this review provides a critical framework for developing robust microalgal cell factories for sustainable bioproduction and climate mitigation.
More Related Videos
08:17Coupling Carbon Capture from a Power Plant with Semi-automated Open Raceway Ponds for Microalgae Cultivation
Published on: August 14, 2020
10:08Construction and Setup of a Bench-scale Algal Photosynthetic Bioreactor with Temperature, Light, and pH Monitoring for Kinetic Growth Tests
Published on: June 14, 2017
Related Concept Videos
Biofuels
Green Algae
Red Algae
Bioreactor Controls-III
Other Algae
Overview of Algae