Transgenic fluorescent zebrafish lines that have revolutionized biomedical research

被引:0
作者
Chong Pyo Choe
Seok-Yong Choi
Yun Kee
Min Jung Kim
Seok-Hyung Kim
Yoonsung Lee
Hae-Chul Park
Hyunju Ro
机构
[1] Gyeongsang National University,Division of Life Science
[2] Gyeongsang National University,Division of Applied Life Science, Plant Molecular Biology and Biotechnology Research Center
[3] Chonnam National University Medical School,Department of Biomedical Sciences
[4] Kangwon National University,Division of Biomedical Convergence, College of Biomedical Science
[5] Sookmyung Women’s University,Department of Biological Sciences
[6] Jeju National University,Department of Marine Life Sciences and Fish Vaccine Research Center
[7] Institute for Basic Science (IBS),Center for Genomic Integrity
[8] Korea University,Department of Biomedical Sciences, College of Medicine
[9] Chungnam National University,Department of Biological Sciences, College of Bioscience and Biotechnology
来源
Laboratory Animal Research | / 37卷
关键词
Zebrafish; Transgenic; Fluorescent; Signal; Skeletal; Hematopoietic; Nervous; Urogenital; Digestive; Organelle;
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摘要
Since its debut in the biomedical research fields in 1981, zebrafish have been used as a vertebrate model organism in more than 40,000 biomedical research studies. Especially useful are zebrafish lines expressing fluorescent proteins in a molecule, intracellular organelle, cell or tissue specific manner because they allow the visualization and tracking of molecules, intracellular organelles, cells or tissues of interest in real time and in vivo. In this review, we summarize representative transgenic fluorescent zebrafish lines that have revolutionized biomedical research on signal transduction, the craniofacial skeletal system, the hematopoietic system, the nervous system, the urogenital system, the digestive system and intracellular organelles.
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  • [1] Streisinger G(1981)Production of clones of homozygous diploid zebra fish ( Nature 291 293-296
  • [2] Walker C(1988)) Development 103 403-412
  • [3] Dower N(1997)Replication, integration and stable germ-line transmission of foreign sequences injected into early zebrafish embryos Cell 89 755-764
  • [4] Knauber D(2019)Targeted disruption of Cbfa1 results in a complete lack of bone formation owing to maturational arrest of osteoblasts Nucleic Acids Res 47 D867-D873
  • [5] Singer F(2005)The Zebrafish information network: new support for non-coding genes, richer gene ontology annotations and the alliance of genome resources Annu Rev Genet 39 561-613
  • [6] Stuart GW(2020)Molecular genetics of axis formation in zebrafish Curr Top Dev Biol 140 341-389
  • [7] McMurray JV(2003)The maternal coordinate system: Molecular-genetics of embryonic axis formation and patterning in the zebrafish Proc Natl Acad Sci U S A 100 3315-3320
  • [8] Westerfield M(2007)Maternal induction of ventral fate by zebrafish radar FEBS J 274 2960-2967
  • [9] Komori T(2009)Bone morphogenetic proteins in the early development of zebrafish Nat Cell Biol 11 1121-1127
  • [10] Yagi H(2005)Organizer restriction through modulation of Bozozok stability by the E3 ubiquitin ligase Lnx-like Development 132 2333-2343