Vijayendra S V N, Shamala T R
Food Microbiology Department, CSIR-Central Food Technological Research Institute (A constituent laboratory of Council of Scientific and Industrial Research, New Delhi) , Mysore, Karnataka , India.
Crit Rev Biotechnol. 2014 Dec;34(4):338-57. doi: 10.3109/07388551.2013.798254. Epub 2013 Aug 6.
Microorganisms synthesize intracellular, structural and extracellular polymers also referred to as biopolymers for their function and survival. These biopolymers play specific roles as energy reserve materials, protective agents, aid in cell functioning, the establishment of symbiosis, osmotic adaptation and support the microbial genera to function, adapt, multiply and survive efficiently under changing environmental conditions. Viscosifying, gelling and film forming properties of these have been exploited for specific significant applications in food and allied industries. Intensive research activities and recent achievements in relevant and important research fields of global interest regarding film forming microbial biopolymers is the subject of this review. Microbial polymers such as pullulan, kefiran, bacterial cellulose (BC), gellan and levan are placed under the category of exopolysaccharides (EPS) and have several other functional properties including film formation, which can be used for various applications in food and allied industries. In addition to EPS, innumerable bacterial genera are found to synthesis carbon energy reserves in their cells known as polyhydroxyalkanoates (PHAs), microbial polyesters, which can be extruded into films with excellent moisture and oxygen barrier properties. Blow moldable biopolymers like PHA along with polylactic acid (PLA) synthesized chemically in vitro using lactic acid (LA), which is produced by LA bacteria through fermentation, are projected as biodegradable polymers of the future for packaging applications. Designing and creating of new property based on requirements through controlled synthesis can lead to improvement in properties of existing polysaccharides and create novel biopolymers of great commercial interest and value for wider applications. Incorporation of antimicrobials such as bacteriocins or silver and copper nanoparticles can enhance the functionality of polymer films especially in food packaging applications either in the form of coatings or wrappings. Use of EPS in combinations to obtain desired properties can be evaluated to increase the application range. Controlled release of active compounds, bioactive protection and resistance to water can be investigated while developing new technologies to improve the film properties of active packaging and coatings. An holistic approach may be adopted in developing an economical and biodegradable packaging material with acceptable properties. An interdisciplinary approach with new innovations can lead to the development of new composites of these biopolymers to enhance the application range. This current review focuses on linking and consolidation of recent research activities on the production and applications of film forming microbial polymers like EPS, PHA and PLA for commercial applications.
微生物合成细胞内、结构性和细胞外聚合物,这些聚合物也因其功能和生存而被称为生物聚合物。这些生物聚合物作为能量储备物质、保护剂发挥特定作用,有助于细胞功能、共生关系的建立、渗透适应,并支持微生物属在不断变化的环境条件下高效发挥功能、适应、繁殖和生存。它们的增粘、胶凝和成膜特性已被用于食品及相关行业的特定重要应用。本文综述的主题是关于成膜微生物生物聚合物的全球关注的相关重要研究领域的密集研究活动和最新成果。诸如普鲁兰多糖、开菲尔多糖、细菌纤维素(BC)、结冷胶和果聚糖等微生物聚合物属于胞外多糖(EPS)类别,并且具有包括成膜在内的其他几种功能特性,可用于食品及相关行业的各种应用。除了EPS,还发现无数细菌属在其细胞中合成称为聚羟基脂肪酸酯(PHA)的碳能量储备,即微生物聚酯,其可以被挤出成具有优异防潮和氧气阻隔性能的薄膜。像PHA这样的可吹塑生物聚合物以及使用乳酸(LA)在体外化学合成的聚乳酸(PLA),其中LA由乳酸菌通过发酵产生,被认为是未来用于包装应用的可生物降解聚合物。通过控制合成根据需求设计和创造新特性可以改善现有多糖的性能,并创造出具有巨大商业利益和价值的新型生物聚合物以用于更广泛的应用。掺入诸如细菌素或银和铜纳米颗粒等抗菌剂可以增强聚合物薄膜的功能,特别是在食品包装应用中,无论是以涂层还是包装的形式。可以评估组合使用EPS以获得所需特性,以扩大应用范围。在开发新技术以改善活性包装和涂层的薄膜性能时,可以研究活性化合物的控释、生物活性保护和防水性。在开发具有可接受性能的经济且可生物降解的包装材料时,可以采用整体方法。采用具有新创新的跨学科方法可以导致开发这些生物聚合物的新型复合材料以扩大应用范围。本综述重点关注将近期关于成膜微生物聚合物如EPS、PHA和PLA的生产和应用的研究活动进行联系和整合,以用于商业应用。