Strain DG7B(T) was isolated from a soil sample collected in Seoul, Republic of Korea and was observed to be a gram-negative, short-rod shaped and non-motile bacterium. Its 16S rRNA gene sequence is closely related to those of Hymenobacter terrae DG7A(T) (97.8 % similarity), H. soli PB17(T) (97.5 %), H. glaciei VUG-A130(T) (96.4 %), H. saemangeumensis GSR0100(T) (95.7 %), H. ruber PB156(T) (95.3 %), and H. antarcticus VUG-A42aa(T) (95.3 %). The low levels of DNA-DNA relatedness (<50.3 %) with the above species identified strain DG7B(T) as a novel species in the genus Hymenobacter. The genomic DNA G+C content was determined to be 54.9 %. Growth of strain DG7B(T) was observed at 12-30 °C (optimum at 25 °C) and pH 6.0-11.0 (optimum at pH 7). The cells tolerate <0.5 % NaCl. A UV-visible scan of an ethanol extract of the whole cell pigment showed absorbance peaks at 264.5, 320.0, and 481.5 nm, so the pigment type was determined to be 2'-hydroxyflexixanthin. Chemotaxonomic data showed that strain DG7B(T) possesses menaquinone-7 as the predominant isoprenoid quinone, sym-homospermidine as the major polyamine, phosphatidylethanolamine as the predominant polar lipid and iso-C15:0, anteiso-C15:0 and summed feature 3 (C16:1 ω7c/C16:1 ω7c) as the major fatty acids. Strain DG7B(T) showed low-level resistance to ultraviolet C. Based on the polyphasic analysis, it is concluded that strain DG7B(T) (=KCTC 32553(T) = KEMB 9004-166(T) = JCM 30008(T)) should be classified as the type strain of a novel Hymenobacter species, for which the name Hymenobacter rubidus sp. nov. is proposed.
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http://dx.doi.org/10.1007/s10482-016-0652-2 | DOI Listing |
Nat Food
January 2025
State Key Laboratory for Crop Stress Resistance and High-Efficiency Production, Shaanxi Key Laboratory of Agricultural and Environmental Microbiology, College of Life Sciences, Northwest A&F University, Yangling, People's Republic of China.
Soils play a critical role in supporting agricultural production. Subsoils, below 20 cm, underpin fundamental agroecosystem sustainability traits including soil carbon storage, climate regulation and water provision. However, little is known about the ecological stability of subsoils in response to global change.
View Article and Find Full Text PDFMicrob Cell Fact
January 2025
Molecular Biology Department, Biotechnology Research Institute, National Research Center, El-Buhouth St. 33, Dokki, P.O.12622, Giza, Egypt.
Background: Actinomycetes are a well-known example of a microbiological origin that may generate a wide variety of chemical structures. As excellent cell factories, these sources are able to manufacture medicines, agrochemicals, and enzymes that are crucial.
Results: In this study, about 34 randomly selected Streptomyces isolates were discovered in soil, sediment, sea water, and other environments.
BMC Plant Biol
January 2025
Hebei Agricultural University, Baoding, China.
Background: Nitrogen (N) deposition has become a major driving factor affecting the balance of terrestrial ecosystems, changing the soil environment, element balance and species coexistence relationships, driving changes in biodiversity and ecosystem structure and function. Human-induced nitrogen input leads to a high NH/ NO ratio in soil. However, relatively few studies have investigated the effects of different nitrogen sources on forest plant-microbial symbionts.
View Article and Find Full Text PDFCurr Microbiol
January 2025
Jiangsu Longhuan Environmental Science Co. LTD, Changzhou, 213164, China.
A bacterial strain P1, capable of degrading diesel and converting thiosulfate to sulfate was isolated from an oil-contaminated soil sample. The cells were Gram-stain-negative, slightly curved rods and motile with a single polar flagellum. Growth of the strain was observed at 4-45 °C (optimum at 28 °C), at pH 4.
View Article and Find Full Text PDFVet Res Commun
January 2025
Soil Science Faculty, Lomonosov Moscow State University, Moscow, 119234, Russia.
Extracellular hydrolytic activity (phospholipase, protease and hemolysin production) was evaluated in 178 strains of potentially pathogenic ascomycetous (Candida parapsilosis, Candida tropicalis) and basidiomycetous (Rhodotorula mucilaginosa) yeasts isolated from the excreta of Mew Gulls. Two bird colonies, one nesting in a natural habitat and the other in an urban habitat at the landfill, were studied simultaneously during their 7-month breeding season. Significant differences in phospholipase and protease production were found between natural and anthropophized strains.
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