THE 55th ANNIVERSARY OF PROFESSOR O.R. KOTSYURBENKO

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Abstract

Overview of the famous Ugra scientist Oleg R. Kotsyurbenko's scientific activities is given in connection with his anniversary. In the article presented separate publications by Prof. Kotsyurbenko, for some of them a brief summary. All the works under discussion are divided into two categories: microbiology and ecology. In addition, we are given a brief biography of O.R. Kotsyurbenko and a number of little-known photographs from different periods of his life.

About the authors

Oleg Alekseevich Frolov

V.V. Dokuchaev Soil Science Institut, Moscow, Russia;
Lomonosov Moscow State University, Moscow, Russia

Email: 6.40.7.4@mail.ru

Mikhail Vladimirovich Glagolev

Yugra State University, Khanty-Mansyisk, Russia;
Lomonosov Moscow State University, Moscow, Russia;
Institute of Forest Science, Russian Academy of Sciences, Uspenskoe (Moscow region), Russia

Author for correspondence.
Email: m_glagolev@mail.ru
ORCID iD: 0000-0002-4327-1885
Scopus Author ID: 6507276186
ResearcherId: J-4878-2012
https://istina.msu.ru/profile/GlagolevMV/

Ph. D. in Biological Sciences, senoir researcher, Department of Soil Physics and Melioration

ORCID 0000-0002-4327-1885
SCOPUS Author ID 6507276186
Researcher ID J-4878-2012
eLibrary SPIN 7132-3987

Russian Federation

References

  1. Горобец БС, 2014. Ядерный реванш Советского Союза: Об истории атомного проекта СССР. КРАСАНД, Москва: 352 с. [Gorobets BS, 2014. Yadernyi revansh Sovetskogo Soyuza: Ob istorii atomnogo proekta SSSR. KRASAND, Moscow, 352 p. (In Russian)]
  2. Гутина ВН, 1982. Николай Александрович Красильников (1896-1973). Наука, Москва: 215 с. [Gutina VN, 1982. Nikolai Aleksandrovich Krasil'nikov (1896-1973). Nauka, Moscow: 215 p. (In Russian)]
  3. Ефремова ТТ, Бажин НМ, Гаджиев ИМ, Ефремов СП, Махов ГА, 1998. Особенности метаногенеза на олиготрофных болотах Западной Сибири и оценка факторов среды в связи с корректной экстраполяцией потоков СН4 на большие территории. Сибирский экологический журнал. 7:563-570. [Efremova TT, Bazhin NM, Gadzhiev IM, Efremov SP, Makhov GA, 1998. Osobennosti metanogeneza na oligotrofnykh bolotakh Zapadnoi Sibiri i otsenka faktorov sredy v svyazi s korrektnoi ekstrapolyatsiei potokov SN4 na bol'shie territorii. Sibirskii ekologicheskii zhurnal. 7:563-570 . (In Russian)]
  4. Коцюрбенко ОР, 2005. [Метаногенные микробные сообщества из холодных наземных экосистем].[Диссертация… доктора биол. наук в форме научного доклада]. Москва. [Kotsyurbenko OR, 2005. [Metanogennye mikrobnye soobshchestva iz kholodnykh nazemnykh ekosistem]. [Dissertation of holder of an Advanced Doctorate in Biology Sciences (the form of a scientific report)]. Moscow. (In Russian)].
  5. Коцюрбенко ОР, Да Сильва АП, Глаголев МВ, 2008. Метаногенное сообщество микроорганизмов из олиготрофного болота «Чистое» (Западная Сибирь): Данные предварительного изучения и перспективы. Динамика окружающей среды и глобальные изменения климата. S1:136-140. [Kotsyurbenko OR, Da Silva AP, Glagolev MV, 2008. Methanogenic microbial community from the peat bog «Chistoe» (West Siberia): prelimirarly data and perspectives. Environmental dynamics and global climate change. S1:136-140]
  6. Рубин АБ, 1991. Термодинамика биологических процессов. Изд-во МГУ, Москва: 290 с. [Rubin AB, 1991. Termodinamika biologicheskikh protsessov. Izd-vo MGU, Moscow: 290 p. (In Russian)]
  7. Сабреков АФ, Терентьева ИЕ, Глаголев МВ, Коцюрбенко ОР, 2017. Обратное моделирование как метод измерения эмиссии метана из полигонов ТБО: сравнение различных подходов. Материалы Пятой Национальной научной конференции с международным участием «Математическое моделирование в экологии». ИФХиБПП РАН, Пущино: с. 187-188. [Sabrekov AF, Terent'eva IE, Glagolev MV, Kotsyurbenko OR, 2017. Obratnoe modelirovanie kak metod izmereniya emissii metana iz poligonov TBO: sravnenie razlichnykh podkhodov. Materialy Pyatoi Natsional'noi nauchnoi konferentsii s mezhdunarodnym uchastiem «Matematicheskoe modelirovanie v ekologii». IFKhiBPP RAN, Pushchino: 187-188 p. (In Russian)]
  8. Садовничий ВА (ред.), 2014. Интеллектуальная система тематического исследования научно-технической информации (ИСТИНА). Изд-во МГУ, Москва: 262 с. [Sadovnichii VA (red.), 2014. Intellektual'naya sistema tematicheskogo issledovaniya nauchno-tekhnicheskoi informatsii (ISTINA). Izd-vo MGU, Moskva: 262 p. (In Russian)]
  9. Тарасов АЛ, Глаголев М.В, Коцюрбенко ОР, 2000. Совместные российско-японские исследования проблемы парниковых газов на стационаре «Плотниково» в Западной Сибири. Тезисы докладов III-его съезда докучаевского общества почвоведов (11-15 июля 2000 г., Суздаль). 1:164. [Tarasov AL, Glagolev M.V, Kotsyurbenko OR, 2000. Sovmestnye rossiisko-yaponskie issledovaniya problemy parnikovykh gazov na statsionare «Plotnikovo» v Zapadnoi Sibiri. Tezisy dokladov III-ego s"ezda dokuchaevskogo obshchestva pochvovedov (11-15 iyulya 2000 g., Suzdal'). 1:164. p. (In Russian)]
  10. Ягодинский ВН, 1987. Александр Леонидович Чижевский. 1897-1864. Наука, Москва: 304 с. [Yagodinskii VN, 1987. Aleksandr Leonidovich Chizhevskii. 1897-1864. Nauka, Moskva: 304 p. (In Russian)]
  11. Янин МВ, Филиппов ИВ, 2016. К 50-летию (и 30-летию научной деятельности) М.В. Глаголева. Динамика окружающей среды и глобальные изменения климата 7:66-84. [Yanin MV, Filippov IV, 2016. The 50th anniversary and 30 years of scientific activity of M.V. Glagolev. Environmental dynamics and global climate change. 7:66-84.]
  12. Bartlett KB, Harriss RC, 1993. Review and assessment of methane emissions from wetlands. Chemosphere. 26:261-320.
  13. Bailey JE, Ollis DF, 1987. Biochemical Engineering Fundamentals. McGraw-Hill Book Company, New York etc.
  14. Benestad RE, 2017. A mental picture of the greenhouse effect. A pedagogic explanation. Theor Appl Climatol. 128:679–688. doi: 10.1007/s00704-016-1732-y.
  15. Ciais P, Sabine C, Bala G, Bopp L, Brovkin V, Canadell J, Chhabra A, DeFries R, Galloway J, Heimann M, Jones C, Le Quéré C, Myneni RB, Piao S, Thornton P, 2013. Carbon and Other Biogeochemical Cycles. In: Stocker TF, Qin D., Plattner G-K, Tignor M, Allen SK, Boschung J, Nauels A, Xia Y, Bex V, Midgley PM (eds.), Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge etc.
  16. Cornish-Bowden A, 1976. Principles of Enzyme Kinetics. Butterworth & Co., London etc.
  17. Franz D, Acosta M, Altimir N, Arriga N, Arrouays D, Aubinet M, Aurela M, Ayres E, López-Ballesteros A, Barbaste M, Berveiller D, Biraud S, Boukir H, Brown T, Brümmer C, Buchmann N, Burba G, Carrara A, Cescatti A, Ceschia E, Clement R, Cremonese E, Crill P, Darenova E, Dengel S, D’Odorico P, Filippa G, Fleck S, Fratini G, Fuß R, Gielen B, Gogo S, Grace J, Graf A, Grelle A, Gross P, Grünwald T, Haapanala S, Hehn M, Heinesch B, Heiskanen J, Herbst M, Herschlein C, Hörtnagl L, Hufkens K, Ibrom A, Jolivet C, Joly L, Jones M, Kiese R, Klemedtsson L, Kljun N, Klumpp K, Kolari P, Kolle O, Kowalski A, Kutsch W, Laurila T, de Ligne A, Linder S, Lindroth A, Lohila A, Longdoz B, Mammarella I, Manise T, Jiménez S.M, Matteucci G, Mauder M, Meier P, Merbold L, Mereu S, Metzger S, Migliavacca M, Mölder M, Montagnani L, Moureaux C, Nelson D, Nemitz E, Nicolini G, Nilsson MB, de Beeck MO, Osborne B, Löfvenius MO, Pavelka M, Peichl M, Peltola O, Pihlatie M, Pitacco A, Pokorný R, Pumpanen J, Ratié C, Rebmann C, Roland M, Sabbatini S, Saby NPA, Saunders M, Schmid H.P, Schrumpf M, Sedlák P, Ortiz PS, Siebicke L, Šigut L, Silvennoinen H, Simioni G, Skiba U, Sonnentag O, Soudani K, Soulé P, Steinbrecher R, Tallec T, Thimonier A, Tuittila E-S, Tuovinen J-P, Vestin P, Vincent G, Vincke C, Vitale D, Waldner P, Weslien P, Wingate L, Wohlfahrt G, Zahniser M, Vesala T, 2018. Towards long-term standardised carbon and greenhouse gas observations for monitoring Europe´s terrestrial ecosystems: a review. Int. Agrophys. 32:439-455. doi: 10.1515/intag-2017-0039.
  18. Keleti Т, 1986. Basic enzyme kinetics. Akadémiai kiadó, Budapest.
  19. Kotsyurbenko OR, Chin K-J, Glagolev MV, Stubner S, Simankova MV, Nozhevnikova AN, Conrad R, 2004. Acetoclastic and hydrogenotrophic methane production and methanogenic populations in an acidic West-Siberian peat bog. Environmental Microbiology. 6:1159-1173.
  20. Kotsyurbenko OR, Glagolev MV, Merkel AY, Sabrekov AF, Terentieva IE, 2019. Methanogenesis in soils, wetlands, and peat. In Stams A, Sousa D (eds.), Biogenesis of Hydrocarbons. Springer, Cham. doi: 10.1007/978-3-319-53114-4_9-1
  21. Kotsyurbenko OR, Glagolev MV, Nozhevnikova AN, Conrad R, 2001. Competition between homoacetogenic bacteria and methanogenic archaea for hydrogen at low temperature. FEMS Microbiology Ecology. 38:153-159.
  22. Kotsyurbenko OR, Glagolev MV, Sabrekov AF, Terentieva IE, 2020. Systems approach to the study of microbial methanogenesis in West-Siberian wetlands. Environmental Dynamics and Global Climate Change. 11:52-65. DOI: https://doi.org/10.17816/edgcc15809.
  23. Kotsyurbenko OR, Golyshin PN, Timmis KN, Friedrich MW, Conrad R, Simankova MV, Nozhevnikova AN, 2007. Shift from acetoclastic to H2-dependent methanogenesis in a West Siberian peat bog at low pH values and isolation of an acidophilic Methanobacterium strain. Applied and Environmental Microbiology. 73:2344-2348.
  24. Lelieveld J, Crutzen PJ, Bruhl C, 1993. Climate Effects of Atmospheric methane. Chemosphere. 26:739-768.
  25. Le Mer J, Roger P, 2001. Production, oxidation, emission and consumption of methane by soils: A review. Eur. J. Soil Biol. 37:25−50.
  26. Lokshina L, Vavilin V, Litti Y, Glagolev M, Sabrekov A, Kotsyurbenko O, Kozlova M, 2019. Methane Production in a West Siberian Eutrophic Fen is Much Higher than Carbon Dioxide Production: Incubation of Peat Samples, Stoichiometry, Stable Isotope Dynamics, Modeling. Water Resources. 46:S110–S125. doi: 10.1134/S0097807819070133
  27. Masing V, Botch M, Läänelaid A, 2010. Mires of the former Soviet Union. Wetlands. Ecol. Manage. 18:397-433. doi: 10.1007/s11273-008-9130-6
  28. Panikov NS, Sizova MV, Zelenev VV, Machov GA, Naumov AV, Gadzhiev IM, 1995. Methane and carbon dioxide emission from several Vasyugan wetlands: spatial and temporal flux variations. Ecol. Chem. 4:13-23.
  29. Panikov NS, Glagolev MV, Kravchenko IK, Mastepanov MA, Kosych NP, Mironycheva-Tokareva NP, Naumov AV, Inoue G, Maxutov S, 1997. Variability of methane emission from west-siberian wetlands as related to vegetation type. Ecol. Chem. 6:59-67.
  30. Pirt SJ, 1975. Principles of Microbe and Cell Cultivation. Blackwell Scientific Publications, Oxford etc.
  31. Ramanathan V, Cicerone RJ, Singh HB, Kiehl JT, 1985. Trace Gas Trends and Their Potential Role in Climate Change. Journal of Geophysical Research. 90:5547-5566.
  32. Sabrekov AF, Filippov IV, Glagolev MV, Terent’eva IE, Il’yasov DV, Kotsyurbenko OR, Maksyutov SS, 2016. Methane Emission from West Siberian Forest-steppe and Subtaiga Reed Fens. Russian Meteorology and Hydrology. 41:37–42. doi: 10.3103/S1068373916010052
  33. Sabrekov AF, Runkle BRK, Glagolev MV, Terentieva IE, Stepanenko VM, Kotsyurbenko OR, Maksyutov SS, Pokrovsky OS, 2017. Variability in methane emissions from West Siberia’s shallow boreal lakes on a regional scale and its environmental controls. Biogeosciences. 14:3715-3742. doi: 10.5194/bg-14-3715-2017
  34. Terentieva IE, Sabrekov AF, Glagolev MV, Kotsyurbenko OR, 2017. Methane Emission from Municipal Solid Waste Landfills. Russian Meteorology and Hydrology. 42:327-334. doi: 10.3103/S1068373917050089

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Copyright (c) 2020 Frolov O.A., Glagolev M.V.

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