弗拉基米爾·米羅諾夫

弗拉基米爾·米羅諾夫

弗拉基米爾•米羅諾夫(Vladimir Mironov),男,俄羅斯籍。莫斯科國立謝東諾夫醫學院研究員。俄羅斯3D生物列印公司3D Bioprinting Solutions科研負責人。

基本介紹

  • 中文名:弗拉基米爾•米羅諾夫
  • 外文名:Миронов Владимир Александрович 
  • 國籍俄羅斯 
主要成就,主要論文,

主要成就

2003年,提出“3D列印人體器官”的概念。
在美國南卡萊羅納醫科大學任職期間,致力於“試管肉”的研究長達十年之久,能夠用動物細胞在試管中培養出可食用的肉類,曾接受美國廣播公司採訪。

主要論文

  1. Mironov, V., Boland, T., Trusk, T., Forgacs, G., & Markwald, R. R. (2003). Organ printing: computer-aided jet-based 3D tissue engineering. Trends in biotechnology, 21(4), 157–161.
  2. Mironov, V., Visconti, R. P., Kasyanov, V., Forgacs, G., Drake, C. J., & Markwald, R. R. (2009). Organ printing: tissue spheroids as building blocks. Biomaterials, 30(12), 2164–2174.
  3. Norris, R. A., Damon, B., Mironov, V., Kasyanov, V., Ramamurthi, A., Moreno-Rodriguez, R., Trusk, T., Potts, J. D., Goodwin, R. L., Davis, J., Hoffman, S., Wen, X., Sugi, Y., Kern, C. B., Mjaatvedt, C. H., Turner, D. K., Oka, T., Conway, S. J., Molkentin, J. D., Forgacs, G., … Markwald, R. R. (2007). Periostin regulates collagen fibrillogenesis and the biomechanical properties of connective tissues. Journal of cellular biochemistry, 101(3), 695–711.
  4. Boland, T., Mironov, V., Gutowska, A., Roth, E. A., & Markwald, R. R. (2003). Cell and organ printing 2: fusion of cell aggregates in three-dimensional gels. The anatomical record. Part A, Discoveries in molecular, cellular, and evolutionary biology, 272(2), 497–502.
  5. DeRuiter MC, Poelmann RE, VanMunsteren JC, Mironov V, Markwald RR, Gittenberger-de Groot AC. Embryonic endothelial cells transdifferentiate into mesenchymal cells expressing smooth muscle actins in vivo and in vitro. Circ Res. 1997 Apr;80(4):444-51.
  6. Groll, J., Boland, T., Blunk, T., Burdick, J. A., Cho, D. W., Dalton, P. D., Derby, B., Forgacs, G., Li, Q., Mironov, V. A., Moroni, L., Nakamura, M., Shu, W., Takeuchi, S., Vozzi, G., Woodfield, T. B., Xu, T., Yoo, J. J., & Malda, J. (2016). Biofabrication: reappraising the definition of an evolving field. Biofabrication, 8(1), 01300.
  7. Jakab, K., Neagu, A., Mironov, V., Markwald, R. R., & Forgacs, G. (2004). Engineering biological structures of prescribed shape using self-assembling multicellular systems. Proceedings of the National Academy of Sciences of the United States of America, 101(9), 2864–2869.
  8. Jakab, K., Norotte, C., Damon, B., Marga, F., Neagu, A., Besch-Williford, C. L., Kachurin, A., Church, K. H., Park, H., Mironov, V., Markwald, R., Vunjak-Novakovic, G., & Forgacs, G. (2008). Tissue engineering by self-assembly of cells printed into topologically defined structures. Tissue engineering. Part A, 14(3), 413–421.
  9. Risau, W., Drexler, H., Mironov, V., Smits, A., Siegbahn, A., Funa, K., & Heldin, C. H. (1992). Platelet-derived growth factor is angiogenic in vivo. Growth factors (Chur, Switzerland), 7(4), 261–266.
  10. Mironov, V., Trusk, T., Kasyanov, V., Little, S., Swaja, R., & Markwald, R. (2009). Biofabrication: a 21st century manufacturing paradigm. Biofabrication, 1(2), 022001.
  11. Mironov, V., Reis, N., & Derby, B. (2006). Review: bioprinting: a beginning. Tissue engineering, 12(4), 631–634.
  12. Mironov, V., Kasyanov, V., & Markwald, R. R. (2011). Organ printing: from bioprinter to organ biofabrication line. Current opinion in biotechnology, 22(5), 667–673.
  13. Mironov, V., Kasyanov, V., Drake, C., & Markwald, R. R. (2008). Organ printing: promises and challenges. Regenerative medicine, 3(1), 93–103.
  14. Koudan, E. V., Gryadunova, A. A., Karalkin, P. A., Korneva, J. V., Meteleva, N. Y., Babichenko, I. I., Volkov, A. V., Rodionov, S. A., Parfenov, V. A., Pereira, F., Khesuani, Y. D., Mironov, V. A., & Bulanova, E. A. (2020). Multiparametric Analysis of Tissue Spheroids Fabricated from Different Types of Cells. Biotechnology journal, 15(5), e1900217.
  15. Parfenov, V. A., Mironov, V. A., Koudan, E. V., Nezhurina, E. K., Karalkin, P. A., Pereira, F. D., Petrov, S. V., Krokhmal, A. A., Aydemir, T., Vakhrushev, I. V., Zobkov, Y. V., Smirnov, I. V., Fedotov, A. Y., Demirci, U., Khesuani, Y. D., & Komlev, V. S. (2020). Fabrication of calcium phosphate 3D scaffolds for bone repair using magnetic levitational assembly. Scientific reports, 10(1), 4013. 等。

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