雨生红球菌
光合反应器
持续性
环境科学
生物量(生态学)
产量(工程)
工艺工程
生化工程
生命周期评估
多目标优化
计算机科学
环境经济学
制浆造纸工业
成本效益
经济可行性
生物燃料
环境工程
原材料
可持续发展
虾青素
作者
Shuai Guo,Feng Pan,Feng Li,Jun Wang,Dian Xie,Hongwei Ke,Huiying Huang,Jianbin Cai,Chunhui Wang,Minggang Cai
标识
DOI:10.1021/acssuschemeng.5c06625
摘要
To address the challenges of high cell mortality, low astaxanthin yield, and elevated costs in traditional one- and two-stage Haematococcus pluvialis cultivation, this study developed a novel Cultivation-Transformation-Accumulation (CTA) strategy. The CTA framework sequentially optimized biomass growth (stage I), induced stress-resistant nonmotile cells via 1 g/L NaCl (stage II), and maximized astaxanthin accumulation (stage III), achieving a 61.1% yield enhancement over 0 g/L NaCl. Small-scale experiments demonstrated the superiority of the CTA strategy, yielding 3.0% astaxanthin content (1.4 and 1.2 times higher than that of one- and two-stage methods, respectively) without costly centrifugation. Pilot-scale trials identified tubular photobioreactors (T-PBRs) as optimal, achieving a biomass of 3.6 g/L, an astaxanthin concentration of 116.9 mg/L, and a CO2 fixation rate of 299.3 mg/L/d. Integrated life cycle and economic analyses revealed the dual advantages of T-PBRs over column photobioreactors and plate photobioreactors: minimal environmental impact and drastic cost reductions (67.4–74.1% for astaxanthin production). The study also discusses strategies for industrial system optimization and the feasibility of full outdoor cultivation. This centrifugation-free CTA strategy establishes a sustainable pathway for high-efficiency industrial astaxanthin production, contributing to alleviating the survival-productivity paradox in algal biotechnology.
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