从红树林生态系统土壤中分离出的产抗生素链霉菌 sp.

Wiwin Retnowati, Ni Made Mertaniasih, Marijam Purwanta, Nurul Wiqoyah, Atika, Sekar Maharani, Wilda Mahdani
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引用次数: 0

摘要

亮点1.印度尼西亚泗水尚未开发的红树林生态系统土壤有可能是生物多样性的家园,其中包括可产生抗生素的链霉菌。 链霉菌对革兰氏阳性和革兰氏阴性细菌具有抗菌特性,而培养时间的长短在调节抗菌活性方面起着关键作用。 摘要 印度尼西亚泗水的一个红树林生态系统具有较高的盐度、pH 值、钾、磷和硝酸盐含量。该生态系统由沙子、灰尘、泥土和粘土混合而成,有可能成为分离链霉菌的有利环境。链霉菌在生物技术中的重要性在于它能够产生具有生物活性的次生代谢物,而这些次生代谢物是宝贵的抗生素宝库。本研究旨在评估从印度尼西亚泗水 Wonorejo 红树林生态系统的土壤中分离出来的链霉菌表现出的抗生素活性。分析的重点是链霉菌产生抗生素的潜力,这些抗生素可对革兰氏阳性菌(即金黄色葡萄球菌 ATCC 25923 和枯草杆菌)以及革兰氏阴性菌(即大肠杆菌 ATCC 25922、铜绿假单胞菌 ATCC 27853 和鼠伤寒沙门氏菌)起作用。抗菌活性测试采用改良琼脂扩散法进行。观察链霉菌琼脂菌落周围是否形成直径 0.8 厘米、高 3 毫米的透明区。在 10 天的培养期内,每 24 小时测量一次透明区直径,以评估抗菌活性的多样性。在所进行的试验中,链霉菌的抗菌谱显示出对不同细菌菌株的不同程度的活性。抑菌区直径在第 7 天对枯草杆菌(15.9 毫米)、第 2 天对金黄色葡萄球菌(27.6 毫米)、第 7 天对铜绿假单胞菌(24.3 毫米)、第 5 天对大肠杆菌(29.2 毫米)和第 7 天对伤寒沙门氏菌(27.5 毫米)的活性水平最高。结果表明,链霉菌对革兰氏阳性菌和革兰氏阴性菌都有抑制作用。总之,链霉菌是红树林生态系统土壤中的一种生物多样性来源,具有生产抗生素的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antibiotic-Producing Streptomyces sp. Isolated from the Soil of a Mangrove Ecosystem
Highlights: 1. The unexplored soil of mangrove ecosystems in Surabaya, Indonesia, has the potential to be home to biodiversity,including Streptomyces sp. that can produce antibiotics.2. Streptomyces sp. has antibacterial properties against Gram-positive and Gram-negative bacteria, and the duration ofincubation plays a critical role in regulating the antibacterial activity.   Abstract A mangrove ecosystem in Surabaya, Indonesia, has a high salinity, pH, potassium, phosphorus, and nitrate contents. This ecosystem comprises a mixture of sand, dust, mud, and clay, which has the potential to be a conducive environment for the isolation of Streptomyces. The importance of Streptomyces in biotechnology lies in its ability to produce bioactive secondary metabolites, which represent a valuable reservoir of antibiotics. This research aimed to assess the antibiotic activity exhibited by Streptomyces sp. isolated from the soil of a mangrove ecosystem in Wonorejo, Surabaya, Indonesia. The analysis focused on the potential of Streptomyces sp. to produce antibiotics that work against Gram-positive bacteria (i.e., Staphylococcus aureus ATCC 25923 and Bacillus subtilis) as well as Gram-negative bacteria (i.e., Escherichia coli ATCC 25922, Pseudomonas aeruginosa ATCC 27853, and Salmonella Typhimurium). The antibacterial activity test was conducted using the modified agar diffusion method. Observations were performed to identify any clear zone formation around the Streptomyces sp. agar colonies with a diameter of 0.8 cm and a height of 3 mm. The clear zone diameter was measured every 24 hours during the 10-day incubation period to assess the diversity of antibacterial activity. The antibacterial profile of Streptomyces sp. exhibited varying levels of activity against different bacterial strains in the tests conducted. The inhibition zone diameters demonstrated the highest levels of activity in Bacillus subtilis (15.9 mm) on day 7, Staphylococcus aureus (27.6 mm) on day 2, Pseudomonas aeruginosa (24.3 mm) on day 7, Escherichia coli (29.2 mm) on day 5, and Salmonella Typhimurium (27.5 mm) on day 7. The results indicated that Streptomyces sp. had inhibitory effects against Gram-positive bacteria as well as Gram-negative bacteria. In conclusion, Streptomyces sp. is a source of biodiversity found in the soil of mangrove ecosystems and has the ability to produce antibiotics.
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