Ayna M Kamirova, Elena A Sizova, Daniil E Shoshin, Evgeny A Vlasov
Animal Husbandry and Fodder Production. 2023. Vol. 106, no 1. Р. 35-47.
doi:10.33284/2658-3135-106-1-35
Original article
Effects of Mn2O3 and Co3O4 on bacterial luminescence and dry matter digestibility (in vitro)
Ayna M Kamirova1, Elena A Sizova2,3, Daniil E Shoshin4, Evgeny A Vlasov5
1,2,4,5Federal Research Centre of Biological Systems and Agrotechnologies of the Russian Academy of Sciences, Orenburg, Russia
3Orenburg State University, Orenburg, Russia
1ayna.makaeva@mail.ru, https://orcid.org/0000-0003-1474-82232,3sizova-l78@ya.ru, https://orcid.org/0000-0002-5125-5981
4daniilshoshin@mail.ru, https://orcid.org/0000-0003-3086-681X
Abstract. Ultrafine particles (UFP), filling the need of animals for mineral elements, increase productivity, improve the microbial profile and immune status, and also reduce the risk of developing various pathologies. At the moment, detailed studies are relevant in order to confirm the safety of use of metal-containing UFPs in animal feeding, preventing the possibility of a negative impact on the productive qualities and physiological state of the latter, and on the environment, including humans. The aim of this study was to determine the effect of Mn2O3 and Co3O4 on bacterial luminescence and feed digestibility in vitro. The article studies the luminescence intensity of a recombinant strain of Echerichia coli K12 TG1 of the natural marine microorganism Photobacterium leiongnathi with cloned luxCDABE genes when exposed to a series of concentrations (0.25-0.00024 M) of ultrafine particles Mn2O3 and Co3O4. The conducted studies show the presence of bactericidal properties of UDP. At the same time, the effective concentrations suppressing 80, 50 and 20% of luminescence for Mn2O3 are 1.2×10-1; 7.8×10-3 and 1.9×10-3 M. Similarly, for Co3O4 - 3.1× 10-2; 3.9×10-3 and 9.8×10-4 M. Minimum inhibitory doses in the range up to 3.9×10-3 are recommended for in vitro and in situ studies.
Keywords: calves, Kazakh white-headed breed, feeding, manganese, cobalt, ultrafine particles, ruminal fluid, digestibility
Acknowledgments: the work was supported by the Russian Science Foundation, Project No. 22-26-00254.
For citation: Kamirova AM, Sizova EA, Shoshin DE, Vlasov EA. Effects of Mn2O3 and Co3O4 on bacterial luminescence and dry matter digestibility (in vitro). Animal Husbandry and Fodder Production. 2023;106(1):35-47. (In Russ.). https://doi.org/10.33284/2658-3135-106-1-35
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Information about the authors:
Ayna M Kamirova, Cand. Sci. (Biology), Researcher of the Centre for Nanotechnologies in Agriculture, Federal Research Centre of Biological Systems and Agrotechnologies of the Russian Academy of Sciences, 29 9 Yanvarya St., Orenburg, 460000, tel.: 8-922-548-44-89.
Elena A Sizova, Dr. Sci. (Biology), Head of the Centre for Nanotechnologies in Agriculture, Federal Research Centre of Biological Systems and Agrotechnologies of the Russian Academy of Sciences, 29, 9 Yanvarya St., Orenburg, 460000; Professor of the Department of Biology and Soil Science, Orenburg State University, 13 Pobedy Ave., Orenburg, 460018, tel.: 8-912-344-99-07.
Daniil E Shoshin, Master, Laboratory Researcher of the Centre for Nanotechnologies in Agriculture, Federal Research Centre of Biological Systems and Agrotechnologies of the Russian Academy of Sciences, 29 9 Yanvarya St., Orenburg, 460000, tel.: 8-965-932-53-67.
Evgeny A Vlasov, Post-graduate Student, Laboratory Researcher of the Centre for Nanotechnologies in Agriculture, Federal Research Centre of Biological Systems and Agrotechnologies of the Russian Academy of Sciences, 29 9 Yanvarya St., Orenburg, 460000, tel.: 8-908-320-69-70.
The article was submitted 13.03.2023; approved after reviewing 16.03.2023; accepted for publication 20.03.2023.
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