Uroosa Ejaz, Yusra Shafquat, Muhammad Sohail, Aizaz Ahmed Shaikh, Muhammad Daniyal Arain, Tehmees Ahmed, Abdullah K. Alanazi
{"title":"从盐生植物中提取纤维素,用于合成新型生物复合材料。","authors":"Uroosa Ejaz, Yusra Shafquat, Muhammad Sohail, Aizaz Ahmed Shaikh, Muhammad Daniyal Arain, Tehmees Ahmed, Abdullah K. Alanazi","doi":"10.1002/bip.23586","DOIUrl":null,"url":null,"abstract":"<p>Cellulose nanofibers, a sustainable and promising material with widespread applications, exhibit appreciable strength and excellent mechanical and physicochemical properties. The preparation of cellulosic nanofibers from food or agricultural residue is not sustainable. Therefore, this study was designed to use three halophytic plants (<i>Cressa cretica, Phragmites karka</i>, and <i>Suaeda fruticosa</i>) to extract cellulose for the subsequent conversion to cellulosic nanofibers composites. The other extracted biomass components including lignin, hemicellulose, and pectin were also utilized to obtain industrially valuable enzymes. The maximum pectinase (31.56 IU mL<sup>−1</sup>), xylanase (35.21 IU mL<sup>−1</sup>), and laccase (15.89 IU mL<sup>−1</sup>) were produced after the fermentation of extracted pectin, hemicellulose, and lignin from <i>S. fruticosa</i>, <i>P. karka</i>, and <i>C. cretica</i>, respectively. Cellulose was methylated (with a degree of substitution of 2.4) and subsequently converted into a composite using polyvinyl alcohol. Scanning electron microscopy and Fourier-transform infrared spectroscopy confirmed the successful synthesis of the composites. The composites made up of cellulose from <i>C. cretica</i> and <i>S. fruticosa</i> had a high tensile strength (21.5 and 15.2 MPa) and low biodegradability (47.58% and 44.56%, respectively) after dumping for 3 months in soil, as compared with the composite from <i>P. karka</i> (98.79% biodegradability and 4.9 MPa tensile strength). Moreover, all the composites exhibited antibacterial activity against gram-negative bacteria (<i>Escherichia coli</i> and <i>Klebsiella pneumoniae</i>) and gram-positive bacteria (<i>Staphylococcus aureus</i>). Hence, this study emphasizes the possibility for various industrial applications of biomass from halophytic plants.</p>","PeriodicalId":8866,"journal":{"name":"Biopolymers","volume":"115 4","pages":""},"PeriodicalIF":3.2000,"publicationDate":"2024-05-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Extraction of cellulose from halophytic plants for the synthesis of a novel biocomposite\",\"authors\":\"Uroosa Ejaz, Yusra Shafquat, Muhammad Sohail, Aizaz Ahmed Shaikh, Muhammad Daniyal Arain, Tehmees Ahmed, Abdullah K. Alanazi\",\"doi\":\"10.1002/bip.23586\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Cellulose nanofibers, a sustainable and promising material with widespread applications, exhibit appreciable strength and excellent mechanical and physicochemical properties. The preparation of cellulosic nanofibers from food or agricultural residue is not sustainable. Therefore, this study was designed to use three halophytic plants (<i>Cressa cretica, Phragmites karka</i>, and <i>Suaeda fruticosa</i>) to extract cellulose for the subsequent conversion to cellulosic nanofibers composites. The other extracted biomass components including lignin, hemicellulose, and pectin were also utilized to obtain industrially valuable enzymes. 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引用次数: 0
摘要
纤维素纳米纤维是一种具有广泛应用前景的可持续材料,具有可观的强度和优异的机械和物理化学特性。从食物或农业残留物中制备纤维素纳米纤维不是可持续的。因此,本研究旨在利用三种卤叶植物(Cressa cretica、Phragmites karka 和 Suaeda fruticosa)提取纤维素,然后将其转化为纤维素纳米纤维复合材料。提取的其他生物质成分(包括木质素、半纤维素和果胶)也被用来获得有工业价值的酶。从 S. fruticosa、P. karka 和 C. cretica 提取的果胶、半纤维素和木质素经发酵后,分别产生了最大的果胶酶(31.56 IU mL-1)、木聚糖酶(35.21 IU mL-1)和漆酶(15.89 IU mL-1)。纤维素被甲基化(取代度为 2.4),然后用聚乙烯醇转化成复合材料。扫描电子显微镜和傅立叶变换红外光谱证实了复合材料的成功合成。由 C. cretica 和 S. fruticosa 纤维素制成的复合材料在土壤中倾倒 3 个月后具有较高的拉伸强度(21.5 和 15.2 兆帕)和较低的生物降解性(分别为 47.58% 和 44.56%),而 P. karka 的复合材料则具有 98.79% 的生物降解性和 4.9 兆帕的拉伸强度。此外,所有复合材料都对革兰氏阴性菌(大肠杆菌和肺炎克雷伯氏菌)和革兰氏阳性菌(金黄色葡萄球菌)具有抗菌活性。因此,这项研究强调了卤叶植物生物质在各种工业应用中的可能性。
Extraction of cellulose from halophytic plants for the synthesis of a novel biocomposite
Cellulose nanofibers, a sustainable and promising material with widespread applications, exhibit appreciable strength and excellent mechanical and physicochemical properties. The preparation of cellulosic nanofibers from food or agricultural residue is not sustainable. Therefore, this study was designed to use three halophytic plants (Cressa cretica, Phragmites karka, and Suaeda fruticosa) to extract cellulose for the subsequent conversion to cellulosic nanofibers composites. The other extracted biomass components including lignin, hemicellulose, and pectin were also utilized to obtain industrially valuable enzymes. The maximum pectinase (31.56 IU mL−1), xylanase (35.21 IU mL−1), and laccase (15.89 IU mL−1) were produced after the fermentation of extracted pectin, hemicellulose, and lignin from S. fruticosa, P. karka, and C. cretica, respectively. Cellulose was methylated (with a degree of substitution of 2.4) and subsequently converted into a composite using polyvinyl alcohol. Scanning electron microscopy and Fourier-transform infrared spectroscopy confirmed the successful synthesis of the composites. The composites made up of cellulose from C. cretica and S. fruticosa had a high tensile strength (21.5 and 15.2 MPa) and low biodegradability (47.58% and 44.56%, respectively) after dumping for 3 months in soil, as compared with the composite from P. karka (98.79% biodegradability and 4.9 MPa tensile strength). Moreover, all the composites exhibited antibacterial activity against gram-negative bacteria (Escherichia coli and Klebsiella pneumoniae) and gram-positive bacteria (Staphylococcus aureus). Hence, this study emphasizes the possibility for various industrial applications of biomass from halophytic plants.
期刊介绍:
Founded in 1963, Biopolymers publishes strictly peer-reviewed papers examining naturally occurring and synthetic biological macromolecules. By including experimental and theoretical studies on the fundamental behaviour as well as applications of biopolymers, the journal serves the interdisciplinary biochemical, biophysical, biomaterials and biomedical research communities.