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基于聚集诱导发光的纳米材料促进微藻生长和脂质积累以实现可持续脂质生产

Improvement of growth and lipid accumulation in microalgae with aggregation-induced emission-based nanomaterials towards sustainable lipid production.

作者信息

Rakhi Sharmin Ferdewsi, Reza Abdul Hakim Mohammad Mohsinul, Davies Brynley, Wang Jianzhong, Qin Jianguang, Tang Youhong

机构信息

College of Science and Engineering, Flinders University, South Australia 5042, Australia.

Institute for NanoScale Science and Technology, Flinders University, South Australia 5042, Australia.

出版信息

Nanoscale. 2025 Jan 16;17(3):1308-1316. doi: 10.1039/d4nr02361g.

Abstract

Microalgae are a hot research area owing to their promising applications for sustainable food, biofunctional compounds, and biofuel feedstock. However, low lipid content in algal biomass is still a challenge that needs to be resolved for commercial use. The current approaches are not satisfactory for achieving high growth and lipid accumulation in algal cells. This research aims to understand and evaluate the effects of light spectral shift on growth and lipid biosynthesis in a green microalga, As a novel approach, an aggregation-induced emission luminogen (AIEgen), TPA-A (CHNO), was introduced into the culture media for tailoring the wavelength to a specific range to enhance photosynthesis and lipid production. Algal growth almost doubled at 10 μM TPA-A exposure compared to the control. A significant increase (* < 0.05) in lipid accumulation was observed in the algal cells exposed to TPA-A. The elevated level of chlorophyll was attributed to fast algal growth. Furthermore, this luminogen was highly biocompatible (∼97% cell viability) on the HaCaT cell line at a concentration of 10 μM in under light conditions. No residues of TPA-A were detected after 7 days in culture media, indicating that this AIEgen was easily degradable. This AIE-based nanomaterial overcomes the conventional fluorophores' aggregation-caused quenching effect by providing increased fluorescence with AIEgen. This approach for lipid induction with increased algal growth provides potential for the algal biofactory to produce sustainable bioproducts and eco-friendly biofuels.

摘要

微藻因其在可持续食品、生物功能化合物和生物燃料原料方面的广阔应用前景而成为热门研究领域。然而,藻类生物质中脂质含量低仍是商业应用中需要解决的一个挑战。目前的方法在实现藻类细胞的高生长和脂质积累方面并不令人满意。本研究旨在了解和评估光谱变化对一种绿色微藻生长和脂质生物合成的影响。作为一种新方法,将一种聚集诱导发光分子(AIEgen)TPA-A(C₁₈H₂₁NO)引入培养基中,将波长调整到特定范围以增强光合作用和脂质产量。与对照相比,在10 μM TPA-A处理下藻类生长几乎翻倍。在暴露于TPA-A的藻类细胞中观察到脂质积累显著增加(*P < 0.05)。叶绿素水平升高归因于藻类的快速生长。此外,在光照条件下,这种发光分子在浓度为10 μM时对HaCaT细胞系具有高度生物相容性(细胞活力约为97%)。在培养基中培养7天后未检测到TPA-A残留,表明这种AIEgen易于降解。这种基于AIE的纳米材料通过AIEgen提供增强的荧光,克服了传统荧光团的聚集导致猝灭效应。这种增加藻类生长来诱导脂质的方法为藻类生物工厂生产可持续生物产品和环境友好型生物燃料提供了潜力。

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