From regeneration to the evolution of development and philosophy: the work of professor Galina Korotkova (1924–2009), on the 100th anniversary of her birth

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Evolutionary and developmental biology are among the most dynamically developing areas of modern biology. Both have a long and turbulent history, especially in Russia (USSR). However, any science develops thanks to the breakthrough research of individual scientists and scientific teams. In this paper, we briefly analyzed the main theoretical works of Leningrad State University professor G. P. Korotkova (1924–2009), who made a significant contribution to general biology at the end of the twentieth century. G. P. Korotkova is known for her pioneering work in the field of regeneration of invertebrate animals and, first of all, sponges, evolutionary and philosophical aspects of biology. In particular, her contribution to the theoretical aspects of regenerative biology, to the development of philosophical aspects of the problems of wholenessis considered. The principles of her original hypothesis of the origin and phase evolution of ontogenesis are briefly outlined, as well as her ideas regarding the theoretical aspects of the biology and organization of sponges (Porifera).

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作者简介

A. Ereskovsky

Koltzov Institute of Developmental Biology RAS; IMBE, CNRS, IRD, Aix Marseille University, Station Marine d’Endoume

编辑信件的主要联系方式.
Email: aereskovsky@gmail.com
俄罗斯联邦, Moscow, 119334; Rue de la Batterie des Lions, Marseille, 13007 France

I. Dolmatov

Zhirmunsky National Scientific Center of Marine Biology, Far Eastern Branch, Russian Academy of Sciences

Email: aereskovsky@gmail.com
俄罗斯联邦, Vladivostok, 690041

参考

  1. Афанасьев, В.Г., Проблема целостности в философии и биологии. Москва, Мысль, 1964. 416 с.
  2. Гегель, Г., Сочинения. Т. 5. Москва, Соцэкгиз, 1937, 716 с.
  3. Гонобоблева, Е.Л., Эмбриологические научно-исследовательские лаборатории Санкт-Петербургского государственного университета в годы после Великой Отечественной войны и до конца 90-х годов XX века: «советский» период, Истор-биол. исслед., 2024, Т. 16, № 1, c. 155–202. doi: 10.24412/2076–8176–2024–1–155–202
  4. Долматов, И.Ю., Вариативность механизмов регенерации у иглокожих, Биология моря, 2020, Т. 46, № 6, c. 363–376.
  5. Долматов, И.Ю., Машанов, В.С., Регенерация у голотурий. Владивосток, Дальнаука, 2007, 212 с.
  6. Ересковский, А.В., Сравнительная эмбриология губок. С.- Петербург. Изд. С.- Петербург. Унив., 2005, 304 с.
  7. Иванова-Казас, О.М., О некоторых спорных вопросах эволюционной эмбриологии, В кн. Эволюционные идеи в биологии, Полянский, Ю.И., Ред. Ленгиград, Изд.: Ленингр. Ун-та. 1984, с. 44–56.
  8. Исаева, В.В., Разнообразие онтогенезов у животных с бесполым размножением и пластичность раннего развития, Онтогенез, 2010, Т. 41, № 5, С. 340–352.
  9. Костюченко, Р.П., Козин, В.В., Купряшова, Е.Е., Регенерация и бесполое размножение у аннелид: клетки, гены и эволюция, Изв. РАН. Сер. биол., 2016, Т. 43, № 3, c. 231–241.
  10. Пучковский, С.В., Дискретность потоков жизни во времени: эволюционное значение биоквантов, Сибирский экол. журн., 1997, Т. 6, c. 553–558.
  11. Пучковский, С.В., Эволюция биосистем. Факторы микроэволюции и филогенеза в эволюционном пространстве-времени. Ижевск, Изд-во «Удмуртский университет», 2013, 444 с.
  12. Солонин, Ю.Н., Учение о целостности в перспективе новой методологической парадигмы, Философские науки, 2013, № 10, c. 8–23.
  13. Токин, Б.П., Иммунитет зародышей. Ленинград, Изд-во Ленинградского университета, 1955, 97с.
  14. Токин, Б.П., Регенерация и соматический эмбриогенез. Ленинград, Изд-во Ленинградского университета, 1959, 269 с.
  15. Шмальгаузен, И.И., Организм как целое в индивидуальном и историческом развитии, Москва, Наука, 1982, 383 с.
  16. Югай, Г.А., Диалектика части и целого. Алма-Ата, Наука, 1965, 171с.
  17. Bely, A.E., Nyberg, K.G., Evolution of animal regeneration: re-emergence of a field, Trends Ecol Evol., 2010, V. 3, pp. 161–170.
  18. Bideau, L., Kerner, P., Hui, J., Vervoort, M., Gazave, E., Animal regeneration in the era of transcriptomics, Cell. Mol. Life Sci., 2021, V. 78, pp. 3941–3956.
  19. Blackstone, N.W., Jasker, B.D., Phylogenetic considerations of clonality, coloniality, and mode of germline development in animals, J. Exp. Zool. B Mol. Dev. Evol., 2003, V. 297, pp. 35–47.
  20. Borisenko, I.E., Adamska, M., Tokina, D.B., Ereskovsky, A.V., Transdifferentiation is a driving force of regeneration in Halisarca dujardini (Demospongiae, Porifera), PeerJ, 2015, 3: e1211. https://doi.org/10.7717/peerj.1211
  21. Buss, L.W., Evolution, development, and the units of selection, Proc. Natl. Acad. Sci. USA., 1983, V. 80, pp. 1387–1391.
  22. Conceptual change in biology, Love, A.C., Ed., Dordrecht, Springer, 2015, 490 p.
  23. Ereskovsky, A.V., The Comparative Embryology of Sponges. Springer-Verlag, Dordrecht Heidelberg London New York, 2010, 329 p.
  24. Ereskovsky, A., Borisenko, I.E, Bolshakov, F.V., Lavrov, A.I., Whole-body regeneration in sponges: diversity, fine mechanisms and future prospects, Genes, 2021, V. 12, 506. https://doi.org/10.3390/genes12040506
  25. Ereskovsky, A.V., Tokina, D.B., Saidov, D.M., Baghdiguian, S., Le Goff, E., Lavrov, A.I.,. Transdifferentiation and mesenchymal-to-epithelial transition during regeneration in Demospongiae (Porifera), J. Exp. Zool. Part B: Mol. Dev. Evol., 2020, V. 334, pp. 37–58. doi: 10.1002/jez.b.22919.
  26. Ereskovsky, A., Lavrov, A., Porifera, In: Invertebrate Histology, LaDouceur, E.E.B., Ed John Wiley & Sons, Inc. 2021, pp. 19–54. https://doi.org/10.1002/9781119507697.ch2.
  27. Gaino, E., Manconi, R., Pronzato, R., Organizational plasticity as a successful conservative tactics in sponges, Animal Biology, 1995, V. 4. pp. 31–43.
  28. Hall, B.K., Evolutionary developmental biology (Evo-Devo): Past, present, and future, Evolution: Education and outreach, 2012, V. 5. pp. 184–193.
  29. Kovtun, M. F. Ontogenesis: a phenomenon and a process (on the problem of the evolution of ontogenesis), Vestnik zoologii, 2013, V. 47. pp. 1–10.
  30. Leys, S.P., Nichols, S.A., Adams, E.D.M., Epithelia and integration in sponges, Integr. Comp. Biol., 2009, V. 49, pp. 167–177.
  31. Loyola-Vargas, V.M., Ochoa-Alejo, N., (Eds.). Somatic Embryogenesis: Fundamental Aspectsand Applications, Springer International Publishing, Switzerland, 2016, 506 p. doi: 10.1007/978–3–319–33705–0.
  32. Mujib A. (Ed.). Somatic Embryogenesis in Ornamentals and Its Applications, Springer, India, 2016, 267 p. doi: 10.1007/978–81–322–2683–3_1.
  33. Ramírez-Mosqueda, M.A. (Ed). Somatic Embryogenesis, Methods in Molecular Biology, V. 2527, Humana, New York, NY, 2022, 276 p. https://doi.org/10.1007/978–1–0716–2485–2_1
  34. Reddien, P.W., The cellular and molecular basis for planarian regeneration, Cell, 2018, V. 175. pp. 327–345.
  35. Renard, E., Le Bivic, A., Borchiellini, C., Origin and Evolution of Epithelial Cell Types. In: Origin and Evolution of Metazoan Cell Types, Leys S., Hejnol, A., Eds. Taylor & Francis Group, LLC. 2021. pp. 94–119.
  36. Ribeiro, R.P., Ponz-Segrelles, G., Bleidorn, C., Aguado, M.T., Comparative transcriptomics in Syllidae (Annelida) indicates that posterior regeneration and regular growth are comparable, while anterior regeneration is a distinct process, BMC Genomics, 2019, V. 20, 855. https://doi.org/10.1186/s12864–019–6223-y
  37. Rinkevich B., Stem cells: autonomy interactors that emerge as causal agents and legitimate units of selection, In: Stem cells in marine organisms, Rinkevich, B., Matranga, V., Eds. Dordrecht, Springer, 2009, pp. 1–20.
  38. Rinkevich, B., Rinkevich, Y. The “Stars and Stripes”. Metaphor for Animal Regeneration-Elucidating two fundamental strategies along a continuum, Cells, 2013, V. 2, pp. 1–18. doi: 10.3390/cells2010001.
  39. Saurabh, B., Tanmoy, B. Somatic Embryogenesis and Organogenesis, Modern Applicat. Plant Biotechnol, Pharmac. Sci, 2015. pp. 209–230. doi: 10.1016/B978–0–12–802221–4.00006–6
  40. Skorentseva, K.V., Bolshakov, F.V., Saidova, A.A., Lavrov, A. I. Regeneration in calcareous sponge relies on ‘pursestring’ mechanism and the rearrangements of actin cytoskeleton, Cell and Tissue Research, 2023, V. 394, pp. 107–129. doi: 10.1007/s00441–023–03810–5.
  41. Slack, J.M.W., Animal regeneration: ancestral character or evolutionary novelty? EMBO Reports, 2017, V. 18, pp. 1497–1508.
  42. Waddington, C.H., Organisers and genes. Cambridge, University Press. 1940. 160 p.

补充文件

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1. JATS XML
2. Fig. 1. G. P. Korotkova. Photo 1944 Saratov.

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3. Fig. 2. Graduate students of the Department of Embryology of LSU. Photo 1948. I. Schiffer, G. P. Korotkova, A. K. Dondua.

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4. Fig. 3. Staff and graduate students of the Department of Embryology. Photo from 1953 First row (from left to right): A. P. Krylova, F. N. Yericheva, B. P. Tokin, I. I. Sokolov, O. M. Ivanova-Kazas. Second row: N. S. Gabaeva, G. P. Korotkova, Yu. A. Ostrometskaya, N. I. Orekhova. Third row: M. Ibragimov, E. B. Krichinskaya, B. Mesarosh, L. S. Priezdeva, A. K. Dondua.

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5. Fig. 4. Employees of the Laboratory of Ontogenesis of the Biological Institute of LSU. Photo from 1978 From left to right: unknown, G. P. Korotkova, N. P. Alekseeva, I. V. Pylilo, S. M. Efremova, A. G. Sinitsina.

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6. Rhys. 5. G. P. Korotkova and B. P. TOKIN. Photo 1973.

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7. Fig. 6. G. P. Korotkova – working with the proofreading of the book "Principles of Integrity". Photo 1968.

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8. Fig. 7. G. P. Korotkova. Photo from 1980

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