离子液体水溶液双相体系及超声细胞破坏对螺旋藻蛋白质回收的影响

IF 1.5 Q4 ENGINEERING, ENVIRONMENTAL
Sundarakannan Rajendran, Geetha Palani, Merlyn R. Sujatha, Herri Trilaksana, Nagaraj Meenakshisundaram
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引用次数: 0

摘要

从藻类生物质中高效提取蛋白质对生物资源的可持续利用至关重要,但传统方法往往速度缓慢且对环境造成负担。本研究通过结合细胞破坏技术和使用离子液体(ILs)的水两相萃取(ATPE)系统,探索了从螺旋藻中提高蛋白质回收率的方法。在功率密度为460、300和85 W/cm2的24khz下进行超声处理,被认为是最有效的细胞破坏方法,可显著改善蛋白质释放。扫描电子显微镜(SEM)提供了与提取效率相关的细胞损伤模式的见解。中断后,将IL - 1-正丁基-3-甲基咪唑氯([Bmim]Cl)用于ATPE系统,在蛋白质分离方面优于传统的PEG/磷酸盐缓冲系统。优化pH、固液比和相组成等参数进一步促进了蛋白质的分配。比较商业和合成的il的测试表明,商业il的产率略高。这种先进的ATPE-IL方法具有高效率和可持续性,为生物资源加工中可扩展的蛋白质提取提供了有前途的解决方案。本研究探索了从藻类生物量中提取可溶性蛋白质的快速有效方法,结合了实验规模的细胞破坏技术和带有ILs的ATPE系统。最初,采用各种细胞破坏方法,包括功率密度为460、300和85 W/cm2的24 kHz超声,研究它们对蛋白质释放的影响。蛋白质的提取程度与细胞的崩解程度成正比,超声法的效果更好。利用扫描电镜对不同技术下的形态学损伤进行了分析。本研究旨在利用ATPE系统与ILs和PEG/磷酸盐缓冲系统找到最有效的分离platensis蛋白质的方法。随后,以亲水性IL [Bmim]Cl为溶剂,采用双水相系统(ATPS)分离了platensis的蛋白质。并与传统的PEG/磷酸盐缓冲体系进行了效率比较。优化了pH值、固液比和相组分浓度等关键参数,以提高蛋白质分配效率。对商业化和合成的生物活性成分进行了比较分析,显示出了环保生物活性成分分离的良好结果。这些先进技术的整合强调了它们从藻类生物质中高效和可持续地提取蛋白质的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ionic Liquid-Based Aqueous Bi-Phasic System and Ultrasound Cell Disruption for Protein Recovery From Spirulina platensis

Efficient protein extraction from algal biomass is crucial for sustainable bioresource use, yet traditional methods are often slow and environmentally taxing. This study explores enhanced protein recovery from Spirulina platensis by combining cell disruption techniques with an aqueous two-phase extraction (ATPE) system using ionic liquids (ILs). Ultrasonication, performed at 24 kHz across power densities of 460, 300, and 85 W/cm2, was identified as the most effective cell disruption method, significantly improving protein release. Scanning electron microscopy (SEM) provided insights into cell damage patterns that correlate with extraction efficiency. Following disruption, the IL 1-n-butyl-3-methylimidazolium chloride ([Bmim]Cl) was used in the ATPE system, outperforming the traditional PEG/phosphate buffer system in protein separation. Optimizing parameters like pH, solid–liquid ratios, and phase composition further boosted protein partitioning. Tests comparing commercial and synthesized ILs showed slightly higher yields for commercial ILs. This advanced ATPE-IL approach demonstrates high efficiency and sustainability, offering a promising solution for scalable protein extraction in bioresource processing. This study explores fast and efficient methods for extracting soluble proteins from algal biomass, combining bench-scale cell disruption techniques and an ATPE system with ILs. Initially, various cell disruption methods, including ultrasonication at 24 kHz with power densities of 460, 300, and 85 W/cm2, were employed to investigate their effects on protein release. The degree of protein extraction was found to be proportional to the extent of cell disintegration, with ultrasonication proving superior. SEM was used to analyze morphological damage from different techniques. The study aims to find the most efficient separation of proteins from S. platensis using an ATPE system with ILs and PEG/phosphate buffer systems. Subsequently, proteins from S. platensis were separated using an aqueous two-phase system (ATPS) with the hydrophilic IL [Bmim]Cl as a solvent. This method's efficiency was compared to traditional PEG/phosphate buffer systems. Key parameters such as pH values, solid–liquid ratios, and phase component concentrations were optimized to enhance protein partitioning efficiency. Comparative analysis between commercial and synthesized ILs showed promising results for ecofriendly bioactive component separations. The integration of these advanced techniques underscores their potential for efficient and sustainable protein extraction from algal biomass.

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来源期刊
Environmental Quality Management
Environmental Quality Management Environmental Science-Management, Monitoring, Policy and Law
CiteScore
2.20
自引率
0.00%
发文量
94
期刊介绍: Four times a year, this practical journal shows you how to improve environmental performance and exceed voluntary standards such as ISO 14000. In each issue, you"ll find in-depth articles and the most current case studies of successful environmental quality improvement efforts -- and guidance on how you can apply these goals to your organization. Written by leading industry experts and practitioners, Environmental Quality Management brings you innovative practices in Performance Measurement...Life-Cycle Assessments...Safety Management... Environmental Auditing...ISO 14000 Standards and Certification..."Green Accounting"...Environmental Communication...Sustainable Development Issues...Environmental Benchmarking...Global Environmental Law and Regulation.
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