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Editor's Choice 2025

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Editor’s Choice articles are curated by our senior editors, who represent each section, to highlight research published in 2025 that they consider particularly interesting to our readers and/or important within the respective research area.

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Microbial Ecology and Environmental Microbiology

Journal of Microbiology is pleased to present Editor’s Choice 2025 as the Microbial Ecology and Environmental Microbiology Collection 2025, recognizing notable 2025 publications in the fields of microbial ecology and environmental microbiology. This curation highlights how microorganisms drive biogeochemical processes, structure biodiversity, and interact with their hosts and surroundings across soil, polar, marine, and host-associated systems.

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Protocol
Protocol for efficient recovery of high-quality DNA from microbiome of marine invertebrates
Yeong-Jun Park, Jae Kyu Lim, Yeon-Ju Lee, Kae Kyoung Kwon
J. Microbiol. 2025;63(9):e2507003.   Published online September 30, 2025
DOI: https://doi.org/10.71150/jm.2507003
  • 4,347 View
  • 153 Download
  • 1 Web of Science
  • 1 Scopus
AbstractAbstract PDF

Marine organisms often form symbiotic relationships with various microorganisms to adapt and thrive in harsh environments. These symbiotic microbes contribute to host survival by providing nutrition, modulating the hosts’ immune system, and supporting overall physiological stability. Advances in high-throughput sequencing technologies have enabled a deeper understanding of the structure and function of symbiotic microbial communities, as well as host-microbe interactions. Notably, symbiotic bacteria associated with marine invertebrates such as corals and sponges are recognized as a potential source of useful bioactive compounds, including antibiotics and enzymes. However, obtaining high-quality microbial DNA from host tissues still remains a technical challenge due to the presence of unknown substances. This study focuses on optimizing sample preparation and DNA extraction procedures and additional purification to improve the recovery of microbial DNA while minimizing host DNA contamination. Comparison between several methods was conducted using sponge samples to evaluate DNA quality and microbial recovery. A sample designated as 2110BU-001 was collected from the east coast of the Republic of Korea and used for culture-independent microbial cell isolation. Total bacterial DNA was extracted by using a manual Phenol-Chloroform protocol and three commercial kits. DNA extracted using the standard manual method showed both the highest yield and the largest fragment size. However, PCR (Polymerase chain reaction) test showed that quality of manually extracted DNA was not enough for sequencing. Therefore, the quality of DNA was improved through additional purification steps. Briefly, host eukaryotic cells were removed by mechanical process and almost only bacterial DNA was successfully obtained by combination of manual extraction method and further purification processes. The established protocol was successfully introduced to extraction of metagenomic DNA from mussel and jellyfish microbiomes, indicating that it can be widely applied to various marine organisms.

Article
Dissimilatory nitrate reductions in soil Neobacillus and Bacillus strains under aerobic condition
Seohyun Ahn, Min Cho, Michael J. Sadowsky, Jeonghwan Jang
J. Microbiol. 2025;63(2):e2411019.   Published online February 27, 2025
DOI: https://doi.org/10.71150/jm.2411019
  • 5,784 View
  • 152 Download
  • 11 Web of Science
  • 10 Crossref
AbstractAbstract PDFSupplementary Material

Denitrification and dissimilatory nitrate reduction to ammonium (DNRA) were thought to be carried-out by anaerobic bacteria constrained to anoxic conditions as they use nitrate (NO3-) as a terminal electron acceptor instead of molecular O2. Three soil bacilli, Neobacillus spp. strains PS2-9 and PS3-12 and Bacillus salipaludis PS3-36, were isolated from rice paddy field soil in Korea. The bacterial strains were selected as possible candidates performing aerobic denitrification and DNRA as they were observed to reduce NO3- and produce extracellular NH4+ regardless of oxygen presence at the initial screening. Whole genome sequencing revealed that these strains possessed all the denitrification and DNRA functional genes in their genomes, including the nirK, nosZ, nirB, and nrfA genes, which were simultaneously cotranscribed under aerobic condition. The ratio between the assimilatory and dissimilatory NO3- reduction pathways depended on the availability of a nitrogen source for cell growth, other than NO3-. Based on the phenotypic and transcriptional analyses of the NO3- reductions, all three of the facultative anaerobic strains reduced NO3- likely in both assimilatory and dissimilatory pathways under both aerobic and anoxic conditions. To our knowledge, this is the first report that describes coexistence of NO3- assimilation, denitrification, and DNRA in a Bacillus or Neobacillus strain under aerobic condition. These strains may play a pivotal role in the soil nitrogen cycle.

Citations

Citations to this article as recorded by  
  • Nutrient recovery from African catfish sludge via aerobic mineralization and assessment of its fertilization potential in hydroponic basil cultivation
    Lukáš Harabiš, Kateřina Patloková, Jan Mareš, Robert Pokluda
    Journal of Agriculture and Food Research.2026; 28: 102888.     CrossRef
  • Aerated digestate management enhances soil properties, reduces greenhouse gas emissions, and shifts microbial communities
    Tannu Kumari, James O'Connor, Yunyun Zheng, Ali Huxtable, Matthew S. Dodd, Sasha N. Jenkins, Bede S. Mickan
    Journal of Environmental Management.2026; 406: 129852.     CrossRef
  • Neobacillus nitrireducens sp. nov., a soil bacterium performing nitrate reduction under low-temperature and microaerobic conditions
    Jinwoo Ahn, Satoshi Ishii, Tatsuya Unno, Jeonghwan Jang
    Frontiers in Microbiology.2026;[Epub]     CrossRef
  • Metagenomic insights into nitrate- and sulfate-enhanced anoxic biodegradation of PAHs in subsurface soil
    Xueli Wang, Yewen Zhang, Jie Yu, Sucai Yang, Tengfei Zhang, Jinda Song, Zhongping Sun
    Ecotoxicology and Environmental Safety.2026; 318: 120281.     CrossRef
  • Selenium nanoparticles alleviate chromium stress in wheat (Triticum aestivum L.) by inhibiting root uptake, enhancing antioxidant capacity, and regulating the rhizosphere microbiome
    Lili Qu, Hanchi Liu, Jia Li, Xin Li, Ran Chen, Xin Liang, Xuewei Jia, Pan Wu, Xiaohui Qiao, Chunping Xu
    Journal of Environmental Management.2026; 413: 130214.     CrossRef
  • Coupled effects of rainfall intensity and soil texture on nitrate behavior in unsaturated soil columns
    Sungjik Oh, Jaeshik Chung, Man Jae Kwon, Saerom Park, Seunghak Lee
    Journal of Environmental Management.2026; 415: 130615.     CrossRef
  • Biofertilizers Enhance Soil Fertility and Crop Yields Through Microbial Community Modulation
    Xu Zhang, Lei Zhang, Junjie Liu, Zongzuan Shen, Zhuxiu Liu, Haidong Gu, Xiaojing Hu, Zhenhua Yu, Yansheng Li, Jian Jin, Guanghua Wang
    Agronomy.2025; 15(7): 1572.     CrossRef
  • Strategy of nitrate-enhanced natural attenuation for remediation of PAHs-contaminated subsoil
    Xuyang Jiang, Zhen Mao, Zhenqi Hu, Tao Jin, Licun Zhong, Jinbiao Yu
    Journal of Environmental Chemical Engineering.2025; 13(5): 118037.     CrossRef
  • Leveraging iron-rich recovered waste as a co-electron donor in sulfur autotrophic denitrification for simultaneous nitrate and phosphate removal from low C/N hydroponic wastewater
    Sandesh Pandey, Anup Gurung, Choe Earn Choong, Suleman Shahzad, Fida Hussain, Woochang Kang, Syed Ejaz Hussain Mehdi, Aparna Sharma, Min Jang, Sang-Eun Oh
    Journal of Water Process Engineering.2025; 79: 108948.     CrossRef
  • narG, rather than napA, mediates aerobic nitrate reduction process in Pseudomonas putida Y-9
    Yuwen Luo, Luo Luo, Xuejiao Huang, Daihua Jiang, Zhenlun Li
    Water Research X.2025; 29: 100437.     CrossRef
Article
Fungal diversity from Fildes Peninsula (Antarctica) and their antibiosis bioactivity against two plant pathogens
Ji Seon Kim, Enzo Romero, Yoonhee Cho, Ramón Ahumada-Rudolph, Christian Núñez, Jonhatan Gómez-Espinoza, Ernesto Moya-Elizondo, Sigisfredo Garnica, Young Woon Lim, Jaime R. Cabrera-Pardo
J. Microbiol. 2025;63(5):e2411029.   Published online April 14, 2025
DOI: https://doi.org/10.71150/jm.2411029
  • 5,769 View
  • 194 Download
  • 5 Web of Science
  • 6 Crossref
AbstractAbstract PDFSupplementary Material

Antarctic fungi can effectively adapt to extreme environments, which leads to the production of unique bioactive compounds. Studies on the discovery of fungi in the diverse environments of Antarctica and their potential applications are increasing, yet remain limited. In this study, fungi were isolated from various substrates on the Fildes Peninsula in Antarctica and screened for their antibiosis activity against two significant plant pathogenic fungi, Botrytis cinerea and Fusarium culmorum. Phylogenetic analysis using multiple genetic markers revealed that the isolated Antarctic fungal strains are diverse, some of which are novel, emphasizing the underexplored biodiversity of Antarctic fungi. These findings suggest that these fungi have potential for the development of new antifungal agents that can be applied in agriculture to manage fungal plant pathogens. Furthermore, the antibiosis activities of the isolated Antarctic fungi were evaluated using a dual-culture assay. The results indicated that several strains from the genera Cyathicula, Penicillium, and Pseudeurotium significantly inhibited pathogen growth, with Penicillium pancosmium showing the highest inhibitory activity against Botrytis cinerea. Similarly, Aspergillus and Tolypocladium strains exhibited strong antagonistic effects against Fusarium culmorum. This study enhances our understanding of Antarctic fungal diversity and highlights its potential for biotechnological applications.

Citations

Citations to this article as recorded by  
  • A Drought-Activated Bacterial Symbiont Enhances Legume Resilience Through Coordinated Amino Acid Metabolism
    Susmita Das Nishu, Jee Hyun No, Gui Nam Wee, Tae Kwon Lee
    Microorganisms.2026; 14(1): 114.     CrossRef
  • Biosynthetic potential of endophytic fungi from tropical medicinal plants: genomic and metabolomic perspectives
    Asri Peni Wulandari, Erin Nur Lestari, Ayu Wandira, Rezqita Putri Pitaloka, Laita Nurjannah, Azmi Azhari
    Mycology.2026;[Epub]     CrossRef
  • Mycelium-based composites for extreme environment engineering: from Earth to space
    Sheng Li, Yidong Gan, Fangyuan Zhou, Cheng Zhou, Lieyun Ding
    Biogeotechnics.2026; : 100262.     CrossRef
  • Pigmented fungi derived from hot and cold deserts ecosystems: taxonomy, genomic and biotechnological approach
    Mayanne Karla da Silva, Rubens Correia da Silva, Beatriz Medeiros de Souza Melo, Thiago José Carvalho Cavalcante, Leonardo da Silva Santos, João Gabriel Pereira e Silva, Vannêssa Rodrigues Teles Maia, Monelly da Silva Bernardo, Kelvin da Silva Sousa, Aver
    World Journal of Microbiology and Biotechnology.2026;[Epub]     CrossRef
  • Agaricales from Antarctica: Diversity of basidiomata, research challenges, and future perspectives in polar environments
    Fernando Augusto Bertazzo-Silva, Jair Putzke
    Fungal Biology Reviews.2025; 54: 100458.     CrossRef
  • Diversity, geographical distribution and environmental adaptations of snow molds
    Tamotsu Hoshino
    Mycoscience.2025; 66(6): 334.     CrossRef
Article
Genomic profiling of soil nitrifying microorganisms enriched on floating membrane filter
Christiana Abiola, Joo-Han Gwak, Ui-Ju Lee, Aderonke Odunayo Adigun, Sung-Keun Rhee
J. Microbiol. 2025;63(4):e2502002.   Published online April 29, 2025
DOI: https://doi.org/10.71150/jm.2502002
  • 2,897 View
  • 94 Download
  • 1 Web of Science
  • 1 Crossref
AbstractAbstract PDFSupplementary Material

Recently, floating membrane filter cultivation was adopted to simulate solid surface and enrich surface-adapted soil ammonia-oxidizing archaea (AOA) communities from agricultural soil, as opposed to the conventional liquid medium. Here, we conducted metagenomic sequencing to recover nitrifier bins from the floating membrane filter cultures and reveal their genomic properties. Phylogenomic analysis showed that AOA bins recovered from this study, designated FF_bin01 and FF_bin02, are affiliated with the Nitrososphaeraceae family, while the third bin, FF_bin03, is a nitrite-oxidizing bacterium affiliated with the Nitrospiraceae family. Based on the ANI/AAI analysis, FF_bin01 and FF_bin02 are identified as novel species within the genera “Candidatus Nitrosocosmicus” and Nitrososphaera, respectively, while FF_bin03 represents a novel species within the genus Nitrospira. The pan and core genome analysis for the 29 AOA genomes considered in this study revealed 5,784 orthologous clusters, out of which 653 were core orthologous clusters. Additionally, 90 unique orthologous clusters were conserved among the Nitrososphaeraceae family, suggesting their potential role in enhancing culturability and adaptation to diverse environmental conditions. Intriguingly, FF_bin01 and FF_bin02 harbor a gene encoding manganese catalase and FF_bin03 also possesses a heme catalase gene, which might enhance their growth on the floating membrane filter. Overall, the floating membrane filter cultivation has proven to be a promising approach for isolating distinct soil AOA, and further modifications to this technique could stimulate the growth of a broader range of uncultivated nitrifiers from diverse soil environments.

Citations

Citations to this article as recorded by  
  • Inhibition mechanism of linalool on Vibrio parahaemolyticus biofilms and its removal of biofilms on the surfaces of shrimp and its processing materials
    Zhiao Zhao, Haiming Chen, Weijun Chen, Ming Zhang, Jianfei Pei, Ying Lyu, Rongrong He, Wenxue Chen
    International Journal of Food Microbiology.2026; 451: 111688.     CrossRef
Article
Prebiotic potential of proso millet and quinoa: Effects on gut microbiota composition and functional metabolic pathways
Jinwoo Kim, Jiwoon Kim, Yewon Jung, Gyungcheon Kim, Seongok Kim, Hakdong Shin
J. Microbiol. 2025;63(7):e2503002.   Published online July 31, 2025
DOI: https://doi.org/10.71150/jm.2503002
  • 5,926 View
  • 187 Download
  • 1 Web of Science
  • 2 Crossref
AbstractAbstract PDFSupplementary Material

Prebiotics are indigestible dietary components that improve host health by stimulating the growth and metabolic activity of beneficial intestinal microbes. The whole grains are rich in non-digestible carbohydrates, which may confer prebiotic potential. Among them, millet and quinoa have gained attention as dietary alternatives due to the growing popularity of gluten-free diets. In this study, we examined the effects of proso millet and quinoa on the human gut microbiota using an in vitro fecal incubation model. Both grains altered alpha diversity metrics, including microbial richness, evenness, and phylogenetic diversity. Beta diversity analysis showed that the proso millet and quinoa treatment groups exhibited distinct clustering patterns compared to the control, highlighting their impact on microbial community structure. Taxonomic analysis showed an increase in beneficial genera, including Bifidobacterium, and a decrease in taxa such as Enterobacteriaceae and Flavonifractor. To assess metabolic changes associated with microbial fermentation, short-chain fatty acid (SCFA) intensities were measured. The intensities of acetic acid, propionic acid, and butyric acid were significantly higher in the proso millet- and quinoa-treated groups compared to the control group. Spearman correlation analysis showed that the abundances of Bifidobacterium and Blautia were significantly positively associated with SCFA intensities. Furthermore, predicted functional pathway analysis identified enrichment of carbohydrate-related pathways in proso millet and quinoa treatments. Quinoa supplementation led to a broader enhancement of metabolic pathways, including glycolysis/gluconeogenesis, starch and sucrose metabolism, and pentose phosphate pathways, whereas proso millet enriched galactose metabolism, and starch and sucrose metabolism. These findings suggest that proso millet and quinoa influence gut microbial diversity, composition, and function.

Citations

Citations to this article as recorded by  
  • Red quinoa hydrolysate as a plant-based therapeutic alternative for damage induced by high cadmium concentrations to the vascular system in rats
    Samia Hassan Husein Kanaan, Paola Zambelli Moraes, Katye Yasmin de Souza de Oliveira, Fernando Barbosa, José Eudes Gomes Pinheiro, Franck Maciel Peçanha, Dalton Valentim Vassallo, Marta Miguel-Castro, Giulia Alessandra Wiggers
    Food & Function.2026; 17(8): 3749.     CrossRef
  • Proso Millet (Panicum miliaceum): Nutritional Composition, Functional Attributes, and Health Implications
    Sangeeta Yadav, Pratiksha Singh, Mazia Ahmed, Pinki Saini
    Future Postharvest and Food.2026;[Epub]     CrossRef
Article
Multi-omic profiling reveals the impact of keratinase kerZJ on mouse gut homeostasis
Xueqing Gan, Yijiao Wen, Si Chen, Famin Ke, Siyuan Liu, Zening Wang, Chunhua Zhang, Xuanting Wang, Qin Wang, Xiaowei Gao
J. Microbiol. 2025;63(12):e2509011.   Published online December 31, 2025
DOI: https://doi.org/10.71150/jm.2509011
  • 1,880 View
  • 44 Download
  • 1 Web of Science
  • 1 Crossref
AbstractAbstract PDF

Keratinase kerZJ is a multifunctional protease with potential as a feed additive and functional ingredient. Here we performed an integrated multi‑omics evaluation of its biosafety and impact on gut homeostasis in mice. Our findings confirm that kerZJ is well-tolerated, with no evidence of systemic toxicity or intestinal epithelial damage. Integrated transcriptomic and proteomic analyses revealed that kerZJ reinforces intestinal barrier integrity by upregulating extracellular matrix components, including collagen IV, and modulates mucosal immunity by enhancing B-cell activation and antimicrobial peptide defenses without inducing inflammation. Furthermore, kerZJ administration led to a significant upregulation of digestive enzymes and a dose-dependent increase in short-chain fatty acids production. Microbiome analysis showed that while high-dose kerZJ altered community composition, it enriched for beneficial taxa like Lactobacillaceae and did not induce dysbiosis. These results demonstrate that kerZJ safely enhances gut barrier function, promotes a favorable immune and metabolic environment, and fosters a resilient gut ecosystem, supporting its development as a safe feed additive and nutraceutical component.

Citations

Citations to this article as recorded by  
  • Multidimensional omics evaluation of the feather hydrolysates produced by Bacillus subtilis natto as a safe and functional feed protein
    Yijiao Wen, Jianjun Du, Xuanting Wang, Yi Shen, Deqiang Li, Jingwen Jiang, Siyuan Liu, Aimin Fu, Qiuyu Liu, Xiurong Guo, Qin Wang, Xiaowei Gao
    International Journal of Biological Macromolecules.2026; 377: 153782.     CrossRef

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