Yaşar Yıldız Songül, Radchenkova Nadja
Department of Bioengineering, Istanbul Medeniyet University, 34720 Istanbul, Turkey.
The Stephan Angeloff Institute of Microbiology, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.
Polymers (Basel). 2023 Dec 25;16(1):69. doi: 10.3390/polym16010069.
Bulgaria stands out as a country rich in diverse extreme environments, boasting a remarkable abundance of mineral hot waters, which positions it as the second-largest source of such natural resources in Europe. Notably, several thermal and coastal solar salterns within its territory serve as thriving habitats for thermophilic and halophilic microorganisms, which offer promising bioactive compounds, including exopolysaccharides (EPSs). Multiple thermophilic EPS producers were isolated, along with a selection from several saltern environments, revealing an impressive taxonomic and bacterial diversity. Four isolates from three different thermophilic species, V264, 418, 423, and 438, along with the halophilic strain 28, emerged as promising candidates for further exploration. Optimization of cultivation media and conditions was conducted for each EPS producer. Additionally, investigations into the influence of aeration and stirring in laboratory bioreactors provided valuable insights into growth dynamics and polymer synthesis. The synthesized biopolymers showed excellent emulsifying properties, emulsion stability, and synergistic interaction with other hydrocolloids. Demonstrated biological activities and functional properties pave the way for potential future applications in diverse fields, with particular emphasis on cosmetics and medicine. The remarkable versatility and efficacy of biopolymers offer opportunities for innovation and development in different industrial sectors.
保加利亚作为一个拥有多样极端环境的国家脱颖而出,拥有大量的矿泉热水,这使其成为欧洲此类自然资源的第二大来源。值得注意的是,其境内的几个热盐场和沿海盐田是嗜热和嗜盐微生物的繁荣栖息地,这些微生物能提供包括胞外多糖(EPSs)在内的有前景的生物活性化合物。从多个热盐环境中分离出了多种嗜热EPS生产者,揭示了令人印象深刻的分类学和细菌多样性。来自三种不同嗜热菌种的四个分离株V264、418、423和438,以及嗜盐菌株28,成为了进一步探索的有前景的候选者。对每个EPS生产者进行了培养基和培养条件的优化。此外,对实验室生物反应器中通气和搅拌影响的研究为生长动力学和聚合物合成提供了有价值的见解。合成的生物聚合物表现出优异的乳化性能、乳液稳定性以及与其他水胶体的协同相互作用。所展示的生物活性和功能特性为其在不同领域的潜在未来应用铺平了道路,尤其侧重于化妆品和医药领域。生物聚合物卓越的多功能性和功效为不同工业部门的创新和发展提供了机会。