reg6 is required for branching morphogenesis during blood vessel regeneration in zebrafish caudal fins

被引:75
作者
Huang, CC
Lawson, ND
Weinstein, BM
Johnson, SL [1 ]
机构
[1] Washington Univ, Sch Med, Dept Genet, St Louis, MO 63110 USA
[2] NIH, Unit Vertebrate Organogenesis, Bethesda, MD 20892 USA
关键词
zebrafish; regeneration; angiogenesis; plexus; branching; anastomosis;
D O I
10.1016/j.ydbio.2003.08.016
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Postnatal neovascularization is essential for wound healing, cancer progression, and many other physiological functions. However, its genetic mechanism is largely unknown. In this report, we study neovascularization in regenerating adult zebrafish fins using transgenic fish that express EGFP in blood vessel endothelial cells. We first describe the morphogenesis of regenerating vessels in wild-type animals and then the phenotypic analysis of a genetic mutation that disrupts blood vessel regeneration. In wild-type zebrafish caudal fins, amputated blood vessels heal their ends by 24 h postamputation (hpa) and then reconnect arteries and veins via anastomosis, to resume blood flow at wound sites by 48 hpa. The truncated vessels regenerate by first growing excess vessels to form unstructured plexuses, resembling the primary capillary plexuses formed during embryonic vasculogenesis. Interestingly, this mode of vessel growth switches by 8 days postamputation (dpa) to growth without a plexus intermediate. During blood vessel regeneration, vessel remodeling begins during early plexus formation and continues until the original vasculature pattern is reestablished at similar to35 dpa. Temperature-sensitive mutants for reg6 have profound defects in blood vessel regeneration. At the restrictive temperature, reg6 regenerating blood vessels first fail to make reconnections between severed arteries and veins, and then form enlarged vascular sinuses rather than branched vascular plexuses. Reciprocal temperature-shift experiments show that reg6 function is required throughout plexus formation, but not during later growth. Our results suggest that the reg6 mutation causes defects in branch formation and/or angiogenic sprouting. (C) 2003 Elsevier Inc. All rights reserved.
引用
收藏
页码:263 / 274
页数:12
相关论文
共 24 条
  • [1] Isolation of putative progenitor endothelial cells for angiogenesis
    Asahara, T
    Murohara, T
    Sullivan, A
    Silver, M
    vanderZee, R
    Li, T
    Witzenbichler, B
    Schatteman, G
    Isner, JM
    [J]. SCIENCE, 1997, 275 (5302) : 964 - 967
  • [2] BECERRA J, 1983, CELL TISSUE RES, V230, P127
  • [3] Insights into early vasculogenesis revealed by expression of the ETS-domain transcription factor Fli-1 in wild-type and mutant zebrafish embryos
    Brown, LA
    Rodaway, ARF
    Schilling, TF
    Jowett, T
    Ingham, PW
    Patient, RK
    Sharrocks, AD
    [J]. MECHANISMS OF DEVELOPMENT, 2000, 90 (02) : 237 - 252
  • [4] Mechanisms of angiogenesis and arteriogenesis
    Carmeliet, P
    [J]. NATURE MEDICINE, 2000, 6 (04) : 389 - 395
  • [5] Molecular mechanisms of blood vessel growth
    Conway, EM
    Collen, D
    Carmeliet, P
    [J]. CARDIOVASCULAR RESEARCH, 2001, 49 (03) : 507 - 521
  • [6] Ectoderm to mesoderm lineage switching during axolotl tail regeneration
    Echeverri, K
    Tanaka, EM
    [J]. SCIENCE, 2002, 298 (5600) : 1993 - 1996
  • [7] GOLDSMITH MI, 2003, IN PRESS DEV BIOL
  • [8] Patterns and emerging mechanisms of the angiogenic switch during tumorigenesis
    Hanahan, D
    Folkman, J
    [J]. CELL, 1996, 86 (03) : 353 - 364
  • [9] Iovine MK, 2000, GENETICS, V155, P1321
  • [10] The vascular anatomy of the developing zebrafish: An atlas of embryonic and early larval development
    Isogai, S
    Horiguchi, M
    Weinstein, BM
    [J]. DEVELOPMENTAL BIOLOGY, 2001, 230 (02) : 278 - 301