Submitted:
28 November 2025
Posted:
01 December 2025
You are already at the latest version
Abstract
Sphingomonas spp. are ubiquitously distributed free-living microorganisms in the natural environment. One of the representatives of the family called Sphingomonas paucimobilis is known as an opportunistic pathogen in humans responsible for bone and soft tissue infections. In January 2024, signs of drooling, tongue rolling and local oedema in the pharyngeal region were observed in a male beef-dairy cross. Clinical examination revealed several ulcerative lesions on the tongue. The bull was not treated with antibiotics due to the impending slaughter of the entire lot of cattle. During the slaughter of 14 dairy-beef bulls, it was found that 13 of them had necrotic ulcerative lesions on the dorsal surface of the tongue. Bacteriological studies conducted on tongue samples from two of the bulls successfully isolated and identified a strain of Sphingomonas paucimobilis. Increasing reports of this organism highlight its potential as a pathogen in animals, with possible health and economic implications for livestock production. In addition, Sphingomonas spp. have been reported to have reduced susceptibility to several classes of antimicrobial agents, and some species exhibit inherent resistance to agents such as colistin/polymyxins. Although the clinical significance of resistance in veterinary isolates remains poorly understood, the combination of ubiquity in the environment, opportunistic pathogenicity, and variable antimicrobial susceptibility underscores the need for continued surveillance and careful interpretation of susceptibility results. Addressing these concerns is crucial for protecting both human and animal health.
Keywords:
1. Introduction
2. Case History
Farm Information
Feed and Water
Case Description
Physical Examination
3. Diagnostic Methods, and Laboratory Findings
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| TMR | Total mixed ratio |
| LPS | Lipopolysacharidae |
| GSL | Glycosphingolipides |
References
- Ionescu, M. I., Neagoe, D. Ș., Crăciun, A. M., & Moldovan, O. T. (2022). The Gram-negative bacilli isolated from caves—Sphingomonas paucimobilis and Hafnia alvei and a review of their involvement in human infections. International journal of environmental research and public health, 19(4), 2324. [CrossRef]
- Laupland, K. B., Paterson, D. L., Stewart, A. G., Edwards, F., & Harris, P. N. (2022). Sphingomonas paucimobilis bloodstream infection is a predominantly community-onset disease with significant lethality. International Journal of Infectious Diseases, 119, 172-177. [CrossRef]
- Kuehn, J. S., Gorden, P. J., Munro, D., Rong, R., Dong, Q., Plummer, P. J., ... & Phillips, G. J. (2013). Bacterial community profiling of milk samples as a means to understand culture-negative bovine clinical mastitis. PloS one, 8(4), e61959. [CrossRef]
- Lin, J. N., Lai, C. H., Chen, Y. H., Lin, H. L., Huang, C. K., Chen, W. F., ... & Lin, H. H. (2010). Sphingomonas paucimobilis bacteremia in humans: 16 case reports and a literature review. Journal of Microbiology, Immunology and Infection, 43(1), 35-42. [CrossRef]
- Güneş, Ö., Parlakay, A. Ö., Güney, A. Y., Coşkun, Z. N., Üçkardeş, F., Yahşi, A., ... & Bayhan, G. İ. (2025). Clinical characteristics, antibiotic susceptibilities, treatment characteristics and outcomes in pediatric patients with Sphingomonas paucimobilis bacteremia. Journal of Pediatric Disease/Türkiye Çocuk Hastalıkları Dergisi, 19(4). [CrossRef]
- Santarelli, A., Mascitti, M., Galeazzi, R., Marziali, A., Busco, F., & Procaccini, M. (2016). Oral ulcer by Sphingomonas paucimobilis: first report. International journal of oral and maxillofacial surgery, 45(10), 1280-1282. [CrossRef]
- El Beaino, M., Fares, J., Malek, A., & Hachem, R. (2018). Sphingomonas paucimobilis-related bone and soft-tissue infections: A systematic review. International Journal of Infectious Diseases, 77, 68-73. [CrossRef]
- Nguyen, S., Naushab, M., & Srinivasan, L. (2025). Unveiling a Hidden Pathogen: The Role of Sphingomonas paucimobilis Beyond the Hospital Walls. Cureus, 17(5). [CrossRef]
- Davenport, A. C., Mascarelli, P. E., Maggi, R. G., & Breitschwerdt, E. B. (2013). Phylogenetic diversity of bacteria isolated from sick dogs using the BAPGM enrichment culture platform. Journal of veterinary internal medicine, 27(4), 854-861. [CrossRef]
- Cengiz, S., Seyitoglu, S., Altun, S. K., & Dinler, U. (2015). Detection of Sphingomonas paucimobilis infections in domestic animals by VITEK® Compaq 2 and Polymerase Chain Reaction. Archivos de medicina veterinaria, 47(1), 117-119. [CrossRef]
- Kenar, B., Aksoy, A., & Köse, Z. (2019). The new mastitis agents emerged in cattle in Turkey and an investigation of their antimicrobial susceptibility. Kocatepe Veterinary Journal, 12(4), 400-406. [CrossRef]
- Zeynali Kelishomi, F., Mohammadi, F., Khakpoor, M., Malekmohammadi, R., & Nikkhahi, F. (2023). Isolation of Sphingomonas paucimobilis from an ocular infection and identification using ribosomal RNA gene: First case report from Iran. Clinical Case Reports, 11(7), e7715. [CrossRef]
- Tsvetanova, Z., Tsvetkova, I., & Najdenski, H. (2022). Antimicrobial resistance of heterotrophic bacteria in drinking water-associated biofilms. Water, 14(6), 944. [CrossRef]
- Licitra, F., Perillo, L., Antoci, F., Piccione, G., Giannetto, C., Salonia, R., Giudice, E., Monteverde, V., & Cascone, G. (2021). Management Factors Influence Animal Welfare and the Correlation to Infectious Diseases in Dairy Cows. Animals, 11(11), 3321. [CrossRef]
- Aboelnasr, N. M., Abu-Elghait, M., Gebreel, H., & Youssef, H. I. (2024). Prevalence of Colistin resistance among difficult-to-treat Gram-negative nosocomial pathogens: An emerging clinical challenge. Microbial Biosystems, 9(2), 166-178. [CrossRef]
- Urban-Chmiel, R., Marek, A., Stępień-Pyśniak, D., Wieczorek, K., Dec, M., Nowaczek, A., & Osek, J. (2022). Antibiotic resistance in bacteria—A review. Antibiotics, 11(8), 1079.
- Singh, S., Sahoo, R. K., & Sahu, M. C. (2025). Understanding Recent Developments in Colistin Resistance: Mechanisms, Clinical Implications, and Future Perspectives. Antibiotics, 14(10), 958. [CrossRef]
- LaPlante, K. L., Dhand, A., Wright, K., & Lauterio, M. (2022). Re-establishing the utility of tetracycline-class antibiotics for current challenges with antibiotic resistance. Annals of Medicine, 54(1), 1686-1700. [CrossRef]
- Meier, H., Spinner, K., Crump, L., Kuenzli, E., Schuepbach, G., & Zinsstag, J. (2022). State of knowledge on the acquisition, diversity, interspecies attribution and spread of antimicrobial resistance between humans, animals and the environment: a systematic review. Antibiotics, 12(1), 73. [CrossRef]



Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).