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1

Park, Sooyeon, Siyu Chen, and Jung-Hoon Yoon. "Erythrobacter insulae sp. nov., isolated from a tidal flat." International Journal of Systematic and Evolutionary Microbiology 70, no. 3 (2020): 1470–77. http://dx.doi.org/10.1099/ijsem.0.003824.

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A Gram-staining-negative, aerobic, non-motile and coccoid, ovoid or rod-shaped bacterial strain, designated as JBTF-M21T, was isolated from a tidal flat sediment on the Yellow Sea, Republic of Korea. The neighbour-joining phylogenetic tree based on 16S rRNA gene sequences indicated that JBTF-M21T fell within the clade comprising the type strains of species of the genus Erythrobacter . JBTF-M21T exhibited 16S rRNA gene sequence similarities of 97.0–98.4 % to the type strains of Erythrobacter longus , Erythrobacter aquimaris , Erythrobacter nanhaisediminis , Erythrobacter vulgaris , Erythrobacte
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2

Yoon, Byoung-Jun, Dong-Heon Lee, and Duck-Chul Oh. "Erythrobacter jejuensis sp. nov., isolated from seawater." International Journal of Systematic and Evolutionary Microbiology 63, Pt_4 (2013): 1421–26. http://dx.doi.org/10.1099/ijs.0.038349-0.

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A Gram-staining-negative, yellow-pigmented, non-motile, strictly aerobic, rod-shaped bacterium, designated strain CNU001T, was isolated from seawater collected on the coast of Jeju Island, South Korea, and subjected to a polyphasic taxonomic study. The temperature, pH and NaCl ranges for growth were 10–30 °C, pH 6.0–10.0 and 2.0–5.0 %, respectively. Phylogenetic analyses based on 16S rRNA gene sequences showed that strain CNU001T belonged to the genus Erythrobacter in the family Erythrobacteraceae , with Erythrobacter longus DSM 6997T (96.6 % sequence similarity), Erythrobacter gaetbuli SW-161
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3

Zhuang, Lingping, Yang Liu, Lin Wang, Wanpeng Wang, and Zongze Shao. "Erythrobacter atlanticus sp. nov., a bacterium from ocean sediment able to degrade polycyclic aromatic hydrocarbons." International Journal of Systematic and Evolutionary Microbiology 65, Pt_10 (2015): 3714–19. http://dx.doi.org/10.1099/ijsem.0.000481.

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A Gram-stain-negative, motile, rod-shaped, orange-pigmented bacterium able to degrade polycyclic aromatic hydrocarbons was isolated from deep-sea sediment of the Atlantic Ocean and subjected to a polyphasic taxonomic study. The strain, designated s21-N3T, could grow at 4–37 °C (optimum 28 °C), at pH 5–10 (optimum pH 7–8) and with 1–7 % (w/v) NaCl (optimum 2–3 %). Strain s21-N3T was positive for nitrate reduction, denitrification, aesculin hydrolysis, oxidase and catalase, but negative for indole production and urease. Phylogenetic analyses based on 16S rRNA gene sequences showed that strain s2
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4

Lee, Young Sun, Dong-Heon Lee, Hyung-Yeel Kahng, Eun Mi Kim, and Jae Sung Jung. "Erythrobacter gangjinensis sp. nov., a marine bacterium isolated from seawater." International Journal of Systematic and Evolutionary Microbiology 60, no. 6 (2010): 1413–17. http://dx.doi.org/10.1099/ijs.0.015743-0.

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A novel Gram-negative, aerobic, orange-pigmented bacterial strain, designated K7-2T, was isolated from seawater of Gangjin Bay, Korea, and subjected to a polyphasic taxonomic study. Strain K7-2T contained ubiquinone-10 (Q-10) as the predominant respiratory lipoquinone and did not produce bacteriochlorophyll a. Major fatty acids were C18 : 1 ω7c (51.4 %), iso-C15 : 0 2-OH and/or C16 : 1 ω7c (15.0 %) and C17 : 1 ω6c (8.8 %). Major polar lipids were phosphatidylethanolamine and phosphatidylcholine. The DNA G+C content was 61.6 mol%. Phylogenetic analyses based on 16S rRNA gene sequences revealed
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5

Jung, Yong-Taek, Sooyeon Park, Jung-Sook Lee, and Jung-Hoon Yoon. "Erythrobacter lutimaris sp. nov., isolated from a tidal flat sediment." International Journal of Systematic and Evolutionary Microbiology 64, Pt_12 (2014): 4184–90. http://dx.doi.org/10.1099/ijs.0.067728-0.

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A Gram-stain-negative, non-motile, coccoid- or oval-shaped bacterial strain, designated S-5T, belonging to the class Alphaproteobacteria , was isolated from a tidal flat sediment of the Yellow Sea, Korea and was subjected to a polyphasic taxonomic study. Strain S-5T grew optimally at pH 7.0–8.0, at 30 °C and in the presence of 2–3 % (w/v) NaCl. Neighbour-joining analysis based on 16S rRNA gene sequences showed that strain S-5T fell within the clade comprising the species of the genus Erythrobacter , clustering with the type strains of Erythrobacter pelagi , Erythrobacter citreus and Erythrobac
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6

Wu, Hui-xian, Pok Yui Lai, On On Lee, et al. "Erythrobacter pelagi sp. nov., a member of the family Erythrobacteraceae isolated from the Red Sea." International Journal of Systematic and Evolutionary Microbiology 62, Pt_6 (2012): 1348–53. http://dx.doi.org/10.1099/ijs.0.029561-0.

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A novel Gram-negative, aerobic, catalase- and oxidase-positive, non-sporulating, non-motile, rod-shaped bacterium, designated strain UST081027-248T, was isolated from seawater of the Red Sea. Phylogenetic analysis based on 16S rRNA gene sequences showed that strain UST081027-248T fell within the genus Erythrobacter . Levels of 16S rRNA gene sequence similarity between the novel strain and the type strains of Erythrobacter species ranged from 95.3 % (with Erythrobacter gangjinensis ) to 98.2 % (with Erythrobacter citreus ). However, levels of DNA–DNA relatedness between strain UST081027-248T an
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7

Xu, Mingshuang, Yuhua Xin, Yong Yu, et al. "Erythrobacter nanhaisediminis sp. nov., isolated from marine sediment of the South China Sea." International Journal of Systematic and Evolutionary Microbiology 60, no. 9 (2010): 2215–20. http://dx.doi.org/10.1099/ijs.0.014027-0.

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A novel Gram-negative, orange-pigmented, slightly halophilic, rod-shaped bacterium, strain T30T, was isolated from sediment from the South China Sea. Phylogenetic analysis showed that strain T30T was a member of the genus Erythrobacter, sharing highest 16S rRNA gene sequence similarities with Erythrobacter aquimaris JCM 12189T (99.5 %) and Erythrobacter vulgaris DSM 17792T (99.0 %). Levels of DNA–DNA relatedness between strain T30T and closely related strains of Erythrobacter species ranged from 14.5 to 56.9 %.The isolate lacked bacteriochlorophyll a and contained ubiquinone-10 as the predomin
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8

Yoon, Jung-Hoon, Kook Hee Kang, Tae-Kwang Oh, and Yong-Ha Park. "Erythrobacter aquimaris sp. nov., isolated from sea water of a tidal flat of the Yellow Sea in Korea." International Journal of Systematic and Evolutionary Microbiology 54, no. 6 (2004): 1981–85. http://dx.doi.org/10.1099/ijs.0.63100-0.

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Three Gram-negative, non-motile, non-spore-forming, slightly halophilic rods (strains SW-110T, SW-116 and SW-140) were isolated from sea water of a tidal flat of the Yellow Sea in Korea and subjected to a polyphasic taxonomic study. The three isolates did not produce bacteriochlorophyll a and were characterized chemotaxonomically by having ubiquinone-10 as the predominant respiratory lipoquinone and C18 : 1 ω7c and C17 : 1 ω6c as the major fatty acids. The DNA G+C content of the three isolates was between 62·2 and 62·9 mol%. Strains SW-110T, SW-116 and SW-140 showed no difference in their 16S
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9

Yoon, Jung-Hoon, Kook Hee Kang, Soo-Hwan Yeo, and Tae-Kwang Oh. "Erythrobacter luteolus sp. nov., isolated from a tidal flat of the Yellow Sea in Korea." International Journal of Systematic and Evolutionary Microbiology 55, no. 3 (2005): 1167–70. http://dx.doi.org/10.1099/ijs.0.63522-0.

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A Gram-negative, non-spore-forming, yellow-pigmented, slightly halophilic bacterial strain, SW-109T, was isolated from a tidal flat of the Yellow Sea in Korea, and subjected to a polyphasic taxonomic study. This isolate did not produce bacteriochlorophyll a and contained ubiquinone-10 as the predominant respiratory lipoquinone and C18 : 1 ω7c as the major fatty acid. The DNA G+C content was 60·3 mol%. Phylogenetic analyses based on 16S rRNA gene sequences showed that strain SW-109T is phylogenetically affiliated to the genus Erythrobacter of the family Sphingomonadaceae. Strain SW-109T exhibit
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10

Lei, Xueqian, Huajun Zhang, Yao Chen, et al. "Erythrobacter luteus sp. nov., isolated from mangrove sediment." International Journal of Systematic and Evolutionary Microbiology 65, Pt_8 (2015): 2472–78. http://dx.doi.org/10.1099/ijs.0.000283.

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A Gram-staining-negative, orange-pigmented, aerobic bacterial strain, designated KA37T, was isolated from a mangrove sediment sample collected from Yunxiao mangrove National Nature Reserve, Fujian Province, China. Growth was observed at 4–37 °C, 0–3 % (w/v) NaCl and pH 5–10. Mg2+ ions were required for growth. Phylogenetic analysis based on 16S rRNA gene sequencing revealed that the isolate was a member of the genus Erythrobacter, which belongs to the family Erythrobacteraceae. Strain KA37T was most closely related to Erythrobacter gangjinensis KCTC 22330T (96.9 % sequence similarity), followe
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11

Zhuang, Lingping, Binbin Lin, Li Xu, Guoqiang Li, Chang-Jer Wu, and Lianzhong Luo. "Erythrobacter spongiae sp. nov., isolated from marine sponge." International Journal of Systematic and Evolutionary Microbiology 69, no. 4 (2019): 1111–16. http://dx.doi.org/10.1099/ijsem.0.003278.

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A taxonomic study was carried out on strain HN-E23T, which was isolated from sponge collected from Yangpu Bay, Hainan, China. Cells of strain HN-E23T were Gram-stain-negative, non-motile, orange-yellow-pigmented, short rods, that could grow at 10–40 °C (optimum, 28 °C), at pH 5–11 (optimun, pH 7) and in 0.5–12 % (w/v) NaCl (optimum, 3 %). This isolate was positive for oxidase, catalase, and the hydrolysis of aesculin, but negative for indole production and the reduction of nitrate. The phylogenetic tree based on 16S rRNA gene sequences revealed that strain HN-E23T formed a distinct phylogeneti
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12

Jung, Yong-Taek, Sooyeon Park, Tae-Kwang Oh, and Jung-Hoon Yoon. "Erythrobacter marinus sp. nov., isolated from seawater." International Journal of Systematic and Evolutionary Microbiology 62, Pt_9 (2012): 2050–55. http://dx.doi.org/10.1099/ijs.0.034702-0.

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A Gram-negative, non-motile, ovoid to rod-shaped bacterium, designated strain HWDM-33T, was isolated from seawater of the Yellow Sea, Korea, and was subjected to a polyphasic taxonomic study. Strain HWDM-33T grew optimally at pH 7–8, at 25 °C and in the presence of 2–3 % (w/v) NaCl. Neighbour-joining, maximum-likelihood and maximum-parsimony phylogenetic trees based on 16S rRNA gene sequences showed that strain HWDM-33T clustered with Erythrobacter gangjinensis K7-2T, with which it shared 96.9 % sequence similarity. Strain HWDM-33T exhibited 94.2–95.8 % 16S rRNA gene sequence similarity to the
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13

Subhash, Y., L. Tushar, Ch Sasikala, and Ch V. Ramana. "Erythrobacter odishensis sp. nov. and Pontibacter odishensis sp. nov. isolated from dry soil of a solar saltern." International Journal of Systematic and Evolutionary Microbiology 63, Pt_12 (2013): 4524–32. http://dx.doi.org/10.1099/ijs.0.052183-0.

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Two bacterial strains (JC130T and JA747T) were isolated from dry soils of a solar saltern. Phylogenetic analysis showed that strain JA747T clustered with species of the genus Erythrobacter belonging to the family Erythrobacteraceae of the class Alphaproteobacteria in the phylum Proteobacteria , while strain JC130T clustered with species of the genus Pontibacter belonging to the family Cytophagaceae of the phylum Bacteroidetes . Based on 16S rRNA gene sequence analysis, strain JA747T had highest similarity with Erythrobacter gangjinensis K7-2T (96.7 %) and other members of the genus Erythrobact
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14

Setiyono, Edi, Heriyanto, Delianis Pringgenies, et al. "Sulfur-Containing Carotenoids from A Marine Coral Symbiont Erythrobacter flavus Strain KJ5." Marine Drugs 17, no. 6 (2019): 349. http://dx.doi.org/10.3390/md17060349.

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Erythrobacter flavus strain KJ5 (formerly called Erythrobacter sp. strain KJ5) is a yellowish marine bacterium that was isolated from a hard coral Acropora nasuta in the Karimunjawa Islands, Indonesia. The complete genome sequence of the bacterium has been reported recently. In this study, we examined the carotenoid composition of this bacterium using high-performance liquid chromatography coupled with ESI-MS/MS. We found that the bacterium produced sulfur-containing carotenoids, i.e., caloxanthin sulfate and nostoxanthin sulfate, as the most abundant carotenoids. A new carotenoid zeaxanthin s
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15

Jeong, Sun Wook, Jung Eun Yang, and Yong Jun Choi. "Isolation and Characterization of a Yellow Xanthophyll Pigment-Producing Marine Bacterium, Erythrobacter sp. SDW2 Strain, in Coastal Seawater." Marine Drugs 20, no. 1 (2022): 73. http://dx.doi.org/10.3390/md20010073.

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Xanthophylls, a yellow pigment belonging to the carotenoid family, have attracted much attention for industrial applications due to their versatile nature. We report the isolation of a homo xanthophyll pigment-producing marine bacterium, identified as the Erythrobacter sp. SDW2 strain, from coastal seawater. The isolated Erythrobacter sp. SDW2 strain can produce 263 ± 12.9 mg/L (89.7 ± 5.4 mg/g dry cell weight) of yellow xanthophyll pigment from 5 g/L of glucose. Moreover, the xanthophyll pigment produced by the SDW2 strain exhibits remarkable antioxidative activities, confirmed by the DPPH (7
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16

Shimada, Keizo, Hidenori Hayashi, and Mitsuo Tasumi. "Bacteriochlorophyll-protein complexes of aerobic bacteria, Erythrobacter longus and Erythrobacter species OCh 114." Archives of Microbiology 143, no. 3 (1985): 244–47. http://dx.doi.org/10.1007/bf00411243.

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17

Kwon, Kae Kyoung, Jung-Hee Woo, Sung-Hyun Yang, et al. "Altererythrobacter epoxidivorans gen. nov., sp. nov., an epoxide hydrolase-active, mesophilic marine bacterium isolated from cold-seep sediment, and reclassification of Erythrobacter luteolus Yoon et al. 2005 as Altererythrobacter luteolus comb. nov." International Journal of Systematic and Evolutionary Microbiology 57, no. 10 (2007): 2207–11. http://dx.doi.org/10.1099/ijs.0.64863-0.

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A novel marine bacterium, strain JCS350T, was isolated from marine sediment samples collected from a cold-seep area. The 16S rRNA gene sequence of the isolate showed high similarity to that of Erythrobacter luteolus SW-109T (95.9 % sequence similarity). Lower 16S rRNA gene sequence similarities were shown to other members of the genus Erythrobacter (94.6–95.4 %) and members of the genus Porphyrobacter (94.5–95.2 %). Phylogenetic analysis with all members of the family Erythrobacteraceae and several members of the family Sphingomonadaceae revealed that the isolate formed a phyletic line with [E
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18

Cho, Sang-Hyeok, Yujin Jeong, Eunju Lee, et al. "Assessment of Erythrobacter Species Diversity through Pan-Genome Analysis with Newly Isolated Erythrobacter sp. 3-20A1M." Journal of Microbiology and Biotechnology 31, no. 4 (2021): 601–9. http://dx.doi.org/10.4014/jmb.2012.12054.

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19

Chen, Xiao, Jihua Liu, Yongle Xu, Yanan Wang, and Xiaojun Yan. "Erythrobacter nanhaiensis sp. nov., A Novel Member of the Genus Erythrobacter Isolated from the South China Sea." Current Microbiology 76, no. 1 (2018): 57–62. http://dx.doi.org/10.1007/s00284-018-1584-z.

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20

Oh, Hyun-Myung, Stephen J. Giovannoni, Steve Ferriera, Justin Johnson, and Jang-Cheon Cho. "Complete Genome Sequence of Erythrobacter litoralis HTCC2594." Journal of Bacteriology 191, no. 7 (2009): 2419–20. http://dx.doi.org/10.1128/jb.00026-09.

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ABSTRACT Erythrobacter litoralis has been known as a bacteriochlorophyll a-containing, aerobic, anoxygenic, phototrophic bacterium. Here we announce the complete genome sequence of E. litoralis HTCC2594, which is devoid of phototrophic potential. E. litoralis HTCC2594, isolated by dilution-to-extinction culturing from seawater, could not carry out aerobic anoxygenic phototrophy and lacked genes for bacteriochlorophyll a biosynthesis and photosynthetic reaction center proteins.
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21

Yencho, Brittany, Charles West, Andrew Brown, and Conor Flannigan. "Isolation and Characterization of Novel Marine Bacteriophages from Santa Rosa Island, Florida, Using Local and Nonlocal Bacterial Strains as Hosts." American Journal of Undergraduate Research, no. 22 (June 30, 2025): 13–26. https://doi.org/10.33697/ajur.2025.138.

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Bacteriophages, or phages, are viruses that infect bacteria and are the most prevalent biological entities in the world. While phage research has continued to develop, the investigation of phages within ecological biology remains in the early stages and requires an extensive database of environmentally derived phages, such as from marine ecosystems. The objectives of this research were to a) determine the local beach bacterial composition and select locally isolated strains as potential bacteriophage hosts, b) determine the efficacy of local bacteria as marine bacteriophage hosts (Erythrobacte
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22

Xing, Tingting, Yongqin Liu, Ninglian Wang, et al. "Erythrobacter arachoides sp. nov., isolated from ice core." International Journal of Systematic and Evolutionary Microbiology 67, no. 10 (2017): 4235–39. http://dx.doi.org/10.1099/ijsem.0.002290.

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23

Hayashi, H., K. Shimada, M. Tasumi T. Nozawa, and M. Hatano. "Circular dichroism and resonance Raman spectra of bacteriochlorophyll-protein complexes from aerobic bacteria, Erythrobacter longus and Erythrobacter species OCh 114." Photobiochemistry and Photobiophysics 10, no. 4 (1985): 223–31. http://dx.doi.org/10.1016/s0165-8646(24)00496-3.

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24

Yoon, Jung-Hoon, Tae-Kwang Oh, and Yong-Ha Park. "Erythrobacter seohaensis sp. nov. and Erythrobacter gaetbuli sp. nov., isolated from a tidal flat of the Yellow Sea in Korea." International Journal of Systematic and Evolutionary Microbiology 55, no. 1 (2005): 71–75. http://dx.doi.org/10.1099/ijs.0.63233-0.

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25

Anderson, C. R., H. A. Johnson, N. Caputo, R. E. Davis, J. W. Torpey, and B. M. Tebo. "Mn(II) Oxidation Is Catalyzed by Heme Peroxidases in “Aurantimonas manganoxydans” Strain SI85-9A1 and Erythrobacter sp. Strain SD-21." Applied and Environmental Microbiology 75, no. 12 (2009): 4130–38. http://dx.doi.org/10.1128/aem.02890-08.

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ABSTRACT A new type of manganese-oxidizing enzyme has been identified in two alphaproteobacteria, “Aurantimonas manganoxydans” strain SI85-9A1 and Erythrobacter sp. strain SD-21. These proteins were identified by tandem mass spectrometry of manganese-oxidizing bands visualized by native polyacrylamide gel electrophoresis in-gel activity assays and fast protein liquid chromatography-purified proteins. Proteins of both alphaproteobacteria contain animal heme peroxidase and hemolysin-type calcium binding domains, with the 350-kDa active Mn-oxidizing protein of A. manganoxydans containing stainabl
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26

Xu, Lin, Cong Sun, Chen Fang, Aharon Oren, and Xue-Wei Xu. "Genomic-based taxonomic classification of the family Erythrobacteraceae." International Journal of Systematic and Evolutionary Microbiology 70, no. 8 (2020): 4470–95. http://dx.doi.org/10.1099/ijsem.0.004293.

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The family Erythrobacteraceae , belonging to the order Sphingomonadales , class Alphaproteobacteria , is globally distributed in various environments. Currently, this family consist of seven genera: Altererythrobacter , Croceibacterium , Croceicoccus , Erythrobacter , Erythromicrobium , Porphyrobacter and Qipengyuania . As more species are identified, the taxonomic status of the family Erythrobacteraceae should be revised at the genomic level because of its polyphyletic nature evident from 16S rRNA gene sequence analysis. Phylogenomic reconstruction based on 288 single-copy orthologous cluster
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27

Takaichi, Shinichi, Kazuo Furihata, Jun-ichi Ishidsu, and Keizo Shimada. "Carotenoid sulphates from the aerobic photosynthetic bacterium, Erythrobacter longus." Phytochemistry 30, no. 10 (1991): 3411–15. http://dx.doi.org/10.1016/0031-9422(91)83219-b.

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28

Tourova, Tatyana, Diyana Sokolova, Tamara Nazina, Denis Grouzdev, Eugeni Kurshev, and Anatoly Laptev. "Biodiversity of Microorganisms Colonizing the Surface of Polystyrene Samples Exposed to Different Aqueous Environments." Sustainability 12, no. 9 (2020): 3624. http://dx.doi.org/10.3390/su12093624.

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The contamination of marine and freshwater ecosystems with the items from thermoplastics, including polystyrene (PS), necessitates the search for efficient microbial degraders of these polymers. In the present study, the composition of prokaryotes in biofilms formed on PS samples incubated in seawater and the industrial water of a petrochemical plant were investigated. Using a high-throughput sequencing of the V3–V4 region of the 16S rRNA gene, the predominance of Alphaproteobacteria (Blastomonas), Bacteroidetes (Chryseolinea), and Gammaproteobacteria (Arenimonas and Pseudomonas) in the biofil
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Francis, Chris A., Edgie-Mark Co та Bradley M. Tebo. "Enzymatic Manganese(II) Oxidation by a Marine α-Proteobacterium". Applied and Environmental Microbiology 67, № 9 (2001): 4024–29. http://dx.doi.org/10.1128/aem.67.9.4024-4029.2001.

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ABSTRACT A yellow-pigmented marine bacterium, designated strain SD-21, was isolated from surface sediments of San Diego Bay, San Diego, Calif., based on its ability to oxidize soluble Mn(II) to insoluble Mn(III, IV) oxides. 16S rRNA analysis revealed that this organism was most closely related to members of the genus Erythrobacter, aerobic anoxygenic phototrophic bacteria within the α-4 subgroup of theProteobacteria (α-4 Proteobacteria). SD-21, however, has a number of distinguishing phenotypic features relative to Erythrobacter species, including the ability to oxidize Mn(II). During the loga
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Kim, So-Jeong, Minji Kim, Ki-Eun Lee, In-Tae Cha, and Soo-Je Park. "Complete genome sequence of marine photoheterotophic bacterium Erythrobacter sp. JK5." Marine Genomics 63 (June 2022): 100950. http://dx.doi.org/10.1016/j.margen.2022.100950.

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Park, Sooyeon, Sung Min Won, and Jung-Hoon Yoon. "Erythrobacter marisflavi sp. nov., isolated from isolated from estuary water." International Journal of Systematic and Evolutionary Microbiology 69, no. 9 (2019): 2696–702. http://dx.doi.org/10.1099/ijsem.0.003510.

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Yoon, Jaewoo. "Erythrobacter alti sp. nov., a marine alphaproteobacterium isolated from seawater." Archives of Microbiology 199, no. 8 (2017): 1133–39. http://dx.doi.org/10.1007/s00203-017-1384-z.

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Kim, Yun-Sook, Dae-Sung Lee, Seong-Yun Jeong, and Won-Jae Lee. "Isolation and Characteristics of Photosynthetic Bacterium, Erythrobacter longus SY-46 which Produces Bacterial Carotenoids." Journal of Environmental Science International 17, no. 4 (2008): 469–77. http://dx.doi.org/10.5322/jes.2008.17.4.469.

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Shen, Yuan Yuan, Li Zhang, Li Hua Dong, Tao Liu, Qian Lei, and Zhou Li. "The Corrosion Behavior of Cu-Ni-Si Alloy in Sea Water with Deep-Sea Bacteria." Advanced Materials Research 936 (June 2014): 1102–5. http://dx.doi.org/10.4028/www.scientific.net/amr.936.1102.

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The corrosion behavior of Cu-Ni-Si alloy exposed to a nutrient-rich simulated seawater-based nutrient-rich medium in the presence of a deep-sea bacterial (Erythrobacter pelagi sp.nov) was investigated by metallographic microstructure observation, electrochemical impedance spectroscopy (EIS) measurement. It was demonstrated that the charge transfer resistance (Rct) and the resistance of oxide film (Rf) dramatically increased within 2 days then gradually decrease and becoming stable because of an patchy or blotchy biofilm formed on the surface of the alloy.
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Xu, Lin, Yue-Hong Wu, Hong Cheng, Cong Sun, Bing-Nan Han, and Xue-Wei Xu. "Complete genome sequence of Erythrobacter seohaensis SW-135T sheds light on the ecological role of the genus Erythrobacter for phosphorus cycle in the marine environment." Marine Genomics 40 (July 2018): 21–24. http://dx.doi.org/10.1016/j.margen.2018.03.001.

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Fang, Chen, Yue-Hong Wu, Cong Sun, et al. "Erythrobacter zhengii sp. nov., a bacterium isolated from deep-sea sediment." International Journal of Systematic and Evolutionary Microbiology 69, no. 1 (2019): 241–48. http://dx.doi.org/10.1099/ijsem.0.003136.

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Murniasih, T., C. I. Cindhy, M. Yunovilsa P, and E. Sukara. "Anti-mycobacterium compound derived from Erythrobacter sp. isolated from Callyspongia aurizusa." IOP Conference Series: Earth and Environmental Science 429 (January 28, 2020): 012009. http://dx.doi.org/10.1088/1755-1315/429/1/012009.

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38

Xu, Lin, Yue-Hong Wu, Yu-Guang Zhou, et al. "Complete genome sequence of Erythrobacter gangjinensis CGMCC 1.15024T with two chromosomes." Marine Genomics 34 (August 2017): 15–18. http://dx.doi.org/10.1016/j.margen.2017.02.004.

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39

Koblizek, M., J. Janouskovec, M. Obornik, J. H. Johnson, S. Ferriera, and P. G. Falkowski. "Genome Sequence of the Marine Photoheterotrophic Bacterium Erythrobacter sp. Strain NAP1." Journal of Bacteriology 193, no. 20 (2011): 5881–82. http://dx.doi.org/10.1128/jb.05845-11.

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40

Hu, Youcai, Aaron G. Legako, Ana Paula D. M. Espindola, and John B. MacMillan. "Erythrolic acids A–E, Meroterpenoids from a Marine-Derived Erythrobacter sp." Journal of Organic Chemistry 77, no. 7 (2012): 3401–7. http://dx.doi.org/10.1021/jo300197z.

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41

Nishino, Koki, and Hiromi Nishida. "Blue light inhibits the enlargement of Erythrobacter litoralis spheroplasts." Journal of General and Applied Microbiology 63, no. 3 (2017): 203–6. http://dx.doi.org/10.2323/jgam.2016.10.004.

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42

Koblížek, Michal, Oded Béjà, Robert R. Bidigare, et al. "Isolation and characterization of Erythrobacter sp. strains from the upper ocean." Archives of Microbiology 180, no. 5 (2003): 327–38. http://dx.doi.org/10.1007/s00203-003-0596-6.

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43

Takaichi, Shinichi, Keizo Shimada, and Jun-ichi Ishidsu. "Monocyclic cross-conjugated carotenal from an aerobic photosynthetic bacterium, Erythrobacter longus." Phytochemistry 27, no. 11 (1988): 3605–9. http://dx.doi.org/10.1016/0031-9422(88)80776-3.

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44

Lee, Soon Dong, and In Seop Kim. "Aurantiacibacter rhizosphaerae sp. nov., isolated from a rhizosphere mudflat of a halophyte and proposal to reclassify Erythrobacter suaedae Lee et al. 2019. and Erythrobacter flavus Yoon et al. 2003 as Aurantiacibacter suaedae comb. nov. and Qipengyuania flava comb. nov., respectively." International Journal of Systematic and Evolutionary Microbiology 70, no. 12 (2020): 6257–65. http://dx.doi.org/10.1099/ijsem.0.004524.

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A marine alphaproteobacterium, designated as strain GH3-10T, was isolated from the rhizosphere mud of a halophyte (Suaeda japonica) collected at the seashore of Gangwha Island, Republic of Korea. The isolate was found to be Gram-stain-negative, strictly aerobic, catalase- and oxidase-positive, non-motile, short rods and produced orange-coloured colonies. The 16S rRNA gene- and whole genome-based phylogenetic analyses exhibited that strain GH3-10T belonged to the genus Aurantiacibacter and was most closely related to Aurantiacibacter atlanticus s21-N3T (98.7 % 16S rRNA gene sequence similarity)
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Odhiambo, John Gerald, Li Zhang, Tao Liu, Li Hua Dong, and Yan Sheng Yin. "Corrosion Behavior of Duplex Stainless Steels (2205) in Seawater in the Presence of Deep Sea Bacteria." Applied Mechanics and Materials 513-517 (February 2014): 189–92. http://dx.doi.org/10.4028/www.scientific.net/amm.513-517.189.

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The corrosion behavior of duplex stainless steel immersed in nutrient-rich simulated seawater without deep sea bacteria and with deep sea bacteria (Erythrobacter pelagi sp.nov) was studied. The effect of chloride ions and presence of deep sea bacteria on corrosion resistance was investigated. The occurrence of localized corrosion (Viz. pitting and crevice corrosion) was examined using visual inspection and SEM-EDX. Electrochemical impedance spectra were used to study the effects of deep sea bacteria on duplex stainless steel and inferences were made. Most significantly was the reduction of pit
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Arata, Hiroyuki, Yasuharu Serikawa, and Ken-ichiro Takamiya. "Trimethylamine N-Oxide Respiration by Aerobic Photosynthetic Bacterium, Erythrobacter sp. OCh 1141." Journal of Biochemistry 103, no. 6 (1988): 1011–15. http://dx.doi.org/10.1093/oxfordjournals.jbchem.a122371.

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47

Setiyono, E., T. H. P. Brotosudarmo, D. Pringgenies, Heriyanto, M. N. U. Prihastyanti та Y. Shioi. "Analysis of β-cryptoxanthin from yellow pigmented marine bacterium Erythrobacter sp. kj5". IOP Conference Series: Earth and Environmental Science 246 (20 травня 2019): 012004. http://dx.doi.org/10.1088/1755-1315/246/1/012004.

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48

Ivanova, Elena P., John P. Bowman, Anatoly M. Lysenko, et al. "Erythrobacter vulgaris sp. nov., a novel organism isolated from the marine invertebrates." Systematic and Applied Microbiology 28, no. 2 (2005): 123–30. http://dx.doi.org/10.1016/j.syapm.2004.11.001.

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Girlich, D., L. Poirel, and P. Nordmann. "Diversity of naturally occurring Ambler class B metallo- -lactamases in Erythrobacter spp." Journal of Antimicrobial Chemotherapy 67, no. 11 (2012): 2661–64. http://dx.doi.org/10.1093/jac/dks289.

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Takamiya, Ken-ichiro, Koh Iba, and Kazuo Okamura. "Reaction center complex from an aerobic photosynthetic bacterium, Erythrobacter species OCh 114." Biochimica et Biophysica Acta (BBA) - Bioenergetics 890, no. 2 (1987): 127–33. http://dx.doi.org/10.1016/0005-2728(87)90013-2.

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