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Effects of the E1 activating enzyme UBA2 on porcine oocyte maturation, apoptosis, and embryonic development in vitro.

Xu, D ; Bi, J ; et al.
In: Animal science journal = Nihon chikusan Gakkaiho, Jg. 92 (2021), Heft 1, S. e13548
Online academicJournal

Titel:
Effects of the E1 activating enzyme UBA2 on porcine oocyte maturation, apoptosis, and embryonic development in vitro.
Autor/in / Beteiligte Person: Xu, D ; Bi, J ; Guan, Y ; Luo, X ; Chen, X ; Lv, Y ; Jin, Y
Link:
Zeitschrift: Animal science journal = Nihon chikusan Gakkaiho, Jg. 92 (2021), Heft 1, S. e13548
Veröffentlichung: Richmond, Vic. : Wiley ; <i>Original Publication</i>: Tokyo, Japan : Japanese Society of Zootechnical Science [1999-, 2021
Medientyp: academicJournal
ISSN: 1740-0929 (electronic)
DOI: 10.1111/asj.13548
Schlagwort:
  • Animals
  • Cell Survival drug effects
  • Cell Survival genetics
  • Embryo Culture Techniques veterinary
  • Female
  • Fertilization in Vitro
  • In Vitro Oocyte Maturation Techniques veterinary
  • Pregnancy
  • Swine
  • Apoptosis drug effects
  • Apoptosis genetics
  • Embryonic Development drug effects
  • Embryonic Development genetics
  • Gene Expression genetics
  • Gene Expression Regulation, Developmental drug effects
  • Oocytes growth & development
  • Oogenesis drug effects
  • Oogenesis genetics
  • SUMO-1 Protein genetics
  • SUMO-1 Protein metabolism
  • Ubiquitin-Activating Enzymes pharmacology
Sonstiges:
  • Nachgewiesen in: MEDLINE
  • Sprachen: English
  • Publication Type: Journal Article
  • Language: English
  • [Anim Sci J] 2021 Jan-Dec; Vol. 92 (1), pp. e13548.
  • MeSH Terms: Apoptosis / *drug effects ; Apoptosis / *genetics ; Embryonic Development / *drug effects ; Embryonic Development / *genetics ; Gene Expression / *genetics ; Gene Expression Regulation, Developmental / *drug effects ; Oocytes / *growth & development ; Oogenesis / *drug effects ; Oogenesis / *genetics ; SUMO-1 Protein / *genetics ; SUMO-1 Protein / *metabolism ; Ubiquitin-Activating Enzymes / *pharmacology ; Animals ; Cell Survival / drug effects ; Cell Survival / genetics ; Embryo Culture Techniques / veterinary ; Female ; Fertilization in Vitro ; In Vitro Oocyte Maturation Techniques / veterinary ; Pregnancy ; Swine
  • References: Abeydeera, L. R. (2001). In vitro fertilization and embryo development in pigs. Reproduction, 58, 159-173. ; Broday, L., Kolotuev, I., Didier, C., Bhoumik, A., Gupta, B. P., Sternberg, P. W., Podbilewicz, B., & Ronai, Z. (2004). The small ubiquitin-like modifier (SUMO) is required for gonadal and uterine-vulval morphogenesis in Caenorhabditis elegans. Genes & Development., 18, 2380-2391. ; Cao, Y. K., Zhong, Z. S., Chen, D. Y., Zhang, G. X., Schatten, H., & Sun, Q. Y. (2005). Cell cycle-dependent localization and possible roles of the small GTPase Ran in mouse oocyte maturation, fertilization and early cleavage. Reproduction, 130, 431-440. ; Eifler, K., & Vertegaal, A. C. O. (2015). SUMOylation-mediated regulation of cell cycle progression and cancer. Trends in Biochemical Sciences, 40, 779-793. ; Funahashi, H., Cantley, T. C., Stumpf, T. T., Terlouw, S. L., & Day, B. N. (1994). In vitro development of in vitro matured porcine oocytes following chemical activation or in vitro fertilization. Biology of Reproduction, 50, 1072-1077. ; Hay, R. T. (2005). SUMO: A history of modification. Molecular Cell, 18, 1-12. ; He, X., Riceberg, J., Pulukuri, S. M., Grossman, S., Shinde, V., Shah, P., Brownell, J. E., Dick, L., Newcomb, J., & Bence, N. (2015). Characterization of the loss of SUMO pathway function on cancer cells and tumor proliferation. PLoS One, 10, e0123882. ; Johnson, E. S. (2004). Protein modification by SUMO. Annual Review of Biochemistry, 73, 355-382. ; Joseph, J., Tan, S. H., Karpova, T. S., McNally, J. G., & Dasso, M. (2002). SUMO-1 targets RanGAP1 to kinetochores and mitotic spin-dles. Journal of Cell Biology, 156, 595-602. ; Katayama, A., Ogino, T., Bandoh, N., Takahara, M., Kishibe, K., Nonaka, S., & Harabuchi, Y. (2007). Overexpression of small ubiquitin-related modifier-1 and sumoylated Mdm2 in oral squamous cell carcinoma: Possible involvement in tumor proliferation and prognosis. International Journal of Radiation Oncology, Biology, Physics, 31, 517-524. ; Kragh, P. M., Vajta, G., Corydon, T. J., Purup, S., Bolund, L., & Callesen, H. (2004). Production of transgenic porcine blastocysts by hand-made cloning. Reproduction, Fertility, and Development, 16, 315-318. ; Matunis, M. J., Coutavas, E., & Blobel, G. (1996). A novel ubiquitin-like modification modulates the partitioning of the ran-GTPase-activating protein RanGAP1 between the cytosol and the nuclear pore complex. Journal of Cell Biology, 135(6 Pt 1), 1457-1470. ; Mahajan, R., Delphin, C., Guan, T., Gerace, L., & Melchior, F. (1997). A small ubiquitin-related polypeptide involved in targeting RanGAP1 to nuclear pore complex protein RanBP2. Cell, 88, 97-107. ; Melchior, F., Schergaut, M., & Pichler, A. (2003). SUMO: Ligases, isopeptidases and nuclear pores. Trends in Biochemical Sciences, 28, 612-618. ; Meulmeester, E., & Melchior, F. (2008). Cell biology: SUMO. Nature, 452, 709-711. ; Nacerddine, K., Lehembre, F., Bhaumik, M., Artus, J., Cohen-Tannoudji, M., Babinet, C., Pandolfi, P. P., & Dejean, A. (2005). The SUMO pathway is essential for nuclear integrity and chromosome segregation in mice. Developmental Cell, 9, 769-779. ; Redel, B. K., Spate, L. D., & Prather, R. S. (2019). In vitro maturation, fertilization, and culture of pig oocytes and embryos. Methods in Molecular Biology, 2006, 93-103. ; Rytinki, M. M., Lakso, M., Pehkonen, P., Aarnio, V., Reisner, K., Peräkylä, M., Wong, G., & Palvimo, J. J. (2011). Overexpression of SUMO perturbs the growth and development of Caenorhabditis elegans. Cellular and Molecular Life Sciences, 68, 3219-3232. ; Saitoh, H., & Hinchey, J. (2000). Functional heterogeneity of small ubiquitin-related protein modifiers SUMO-1 versus SUMO-2/3. Journal of Biological Chemistry, 275, 6252-6258. ; Sriramachandran, A. M., & Dohmen, R. J. (2014). SUMO-targeted ubiquitin ligases. Biochimica Et Biophysica Acta, 1843, 75-85. ; Suzuki, K., Eriksson, B., Shimizu, H., Nagai, T., & Rodriguez-Martinez, H. (2000). Effect of hyaluronan on monospermic penetration of porcine oocytes fertilized in vitro. International Journal of Andrology, 23, 13-21. ; Zhang, H., Saitoh, H., & Matunis, M. (2002). Enzymes of the SUMO modification pathway localize to filaments of the nuclear pore complex. Molecular and Cellular Bilology, 22, 6498-6508. ; Zhao, J. (2007). Sumoylation regulates diverse biological processes. Cellular and Molecular Life Sciences, 64, 3017-3033.
  • Grant Information: 20190301037NY The Natural Science Foundation of Jilin Province; 31960659 The National Natural Science Foundation of China
  • Contributed Indexing: Keywords: SUMO-1; UBA2; embryo; in vitro; porcine oocyte
  • Substance Nomenclature: 0 (SUMO-1 Protein) ; EC 6.2.1.45 (Ubiquitin-Activating Enzymes)
  • Entry Date(s): Date Created: 20210409 Date Completed: 20210920 Latest Revision: 20230328
  • Update Code: 20240513

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