研究报告

维生素A缺乏致斑马鱼胚胎体节不对称及后脑图式形成异常

展开
  • 南京大学模式动物研究所, 模式动物与疾病研究教育部重点实验室, 南京210061

收稿日期: 2012-03-01

  修回日期: 2012-07-16

  网络出版日期: 2012-09-25

基金资助

国家自然科学基金项目(编号:30871439)资助

Vitamin A deficiency causes asymmetric somitogenesis and abnormal hindbrain patterning in zebrafish embryos

Expand
  • MOE Key Laboratory of Model Animal for Disease Study, Model Animal Research Center, Nanjing University, Nanjing 210061, China

Received date: 2012-03-01

  Revised date: 2012-07-16

  Online published: 2012-09-25

摘要

视黄酸(RA)在脊椎动物胚胎发生过程中发挥着关键作用。但是脊椎动物不能从头合成RA, 而必须以维生素A为前体通过视黄醇脱氢酶和视黄醛脱氢酶(Aldh1A)先将其氧化为视黄醛再氧化成RA。已知维生素A缺乏(VAD)会导致多种动物出现维生素A缺乏综合征, 但有关VAD对斑马鱼胚胎发育的影响尚未见报道。文章通过用不含维生素A及其他视黄类前体的饲料饲喂斑马鱼获得斑马鱼VAD胚胎。分析表明, 缺乏维生素A可导致斑马鱼胚胎体节出现不对称发育、胚胎的后脑图式形成异常。这些表型虽与aldh1a2基因敲落的及经醛脱氢酶抑制剂处理的斑马鱼胚胎表型类似, 但远不及后二者的严重, 提示VAD胚胎可能只是缺少而不是完全没有维生素A, 且可能存在不依赖视黄醛脱氢酶的RA合成途径。

本文引用格式

曹莎莎,贾文双,赵庆顺 . 维生素A缺乏致斑马鱼胚胎体节不对称及后脑图式形成异常[J]. 遗传, 2012 , 34(9) : 1159 -1164 . DOI: 10.3724/SP.J.1005.2012.01159

Abstract

Retinoic acid (RA) plays essential roles in vertebrate embryogenesis. However, vertebrates cannot synthesize RA de novo. They synthesize it by two oxidative steps, first converting the precursor vitamin A into retinal by retinol dehy-drogenase, and then oxidizing retinal into RA irreversibly by retinal dehydrogenase. It is known that vitamin A deficiency (VAD) causes Vitamin A Deficiency Syndrome in animals including quail, mouse, rat, and human. However, little is known about the effects of VAD on zebrafish embryogenesis. In this study, we obtained zebrafish VAD embryos from the zebrafish fed a retinoids-free diet. By analyzing the VAD embryos, we found that VAD caused asymmetric somitogenesis and abnor-mal hindbrain patterning in zebrafish embryos. However, the phenotype of defected hindbrain in VAD embryos was not as severe as that in the embryos in which aldh1a2, the major gene that is responsible for RA synthesis in zebrafish early development, was knocked down, or the embryos treated with 10 mmol/L DEAB (diethylaminobenzaldehyde, inhibitor of retinal dehydrogenases). Our results indicated that the VAD embryos were short of but not free of vitamin A, and they might also have a RA generation pathway independent of retinal dehydrogenase.

参考文献

[1] Ross SA, McCaffery PJ, Drager UC, De Luca LM. Reti-noids in embryonal development. Physiol Rev, 2000, 80(3): 1021-1054.
[2] Duester G. Retinoic acid synthesis and signaling during early organogenesis. Cell, 2008, 134(6): 921-931.
[3] Zhao D, McCaffery P, Ivins KJ, Neve RL, Hogan P, Chin WW, Dräger UC. Molecular identification of a major retinoic-acid-synthesizing enzyme, a retinaldehyde-specific dehydrogenase. Eur J Biochem, 1996, 240(1): 15-22.
[4] Begemann G, Schilling TF, Rauch GJ, Geisler R, Ingham PW. The zebrafish neckless mutation reveals a requirement for raldh2 in mesodermal signals that pattern the hindbrain. Development, 2001, 128(16): 3081-3094.
[5] Niederreither K, McCaffery P, Dräger UC, Chambon P, Dollé P. Restricted expression and retinoic acid-induced downregulation of the retinaldehyde dehydrogenase type 2 (RALDH-2) gene during mouse development. Mech Dev, 1997, 62(1): 67-78.
[6] Niederreither K, Subbarayan V, Dollé P, Chambon P. Em-bryonic retinoic acid synthesis is essential for early mouse post-implantation development. Nat Genet, 1999, 21(4): 444-448.
[7] Vermot J, Gallego LJ, Fraulob V, Niederreither K, Chambon P, Dollé P. Retinoic acid controls the bilateral sym-metry of somite formation in the mouse embryo. Sci-ence, 2005, 308(5721): 563-566.
[8] Wilson JG, Roth CB, Warkany J. An analysis of the syn-drome of malformations induced by maternal vitamin a deficiency. Effects of restoration of vitamin A at various times during gestation. Am J Anat, 1953, 92(2): 189-217.
[9] Thompson JN, Howell JM, Pitt GAJ, Mclaughlin CI. The biological activity of retinoic acid in the domestic fowl and the effects of vitamin A deficiency on the chick em-bryo. Br J Nutr, 1969, 23(3): 471-490.
[10] Grandel H, Lun K, Rauch GJ, Rhinn M, Piotrowski T, Houart C, Sordino P, Kuchler AM, Schulte-Merker S, Geisler R, Holder N, Wilson SW, Brand M. Retinoic acid signalling in the zebrafish embryo is necessary during pre-segmentation stages to pattern the anterior-posterior axis of the CNS and to induce a pectoral fin bud. Development, 2002, 129(12): 2851-2865.
[11] Kawakami Y, Raya Á, Raya RM, Rodríguez-Esteban C, Belmonte JCI. Retinoic acid signalling links left-right asymmetric patterning and bilaterally symmetric somito-genesis in the zebrafish embryo. Nature, 2005, 435(7039): 165-171.
[12] Kimmel CB, Ballard WW, Kimmel SR, Ullmann B, Schil-ling TF. Stages of embryonic development of the zebrafish. Dev Dyn, 1995, 203(3): 253-310.
[13] Xu F, Li K, Tian M, Hu P, Song W, Chen J, Gao X, Zhao QS. N-CoR is required for patterning the anterior-posterior axis of zebrafish hindbrain by actively repressing retinoid signaling. Mech Dev, 2009, 126(10): 771-780.
[14] Gu XX, Xu F, Song WL, Wang X, Hu P, Yang YM, Gao X, Zhao QS. A novel cytochrome p450, zebrafish Cyp26D1, is involved in metabolism of all-trans retinoic acid. Mol Endocrinol, 2006, 20(7): 1661-1672.
[15] Liang D, Zhang M, Bao J, Zhang LQ, Xu XF, Gao X, Zhao QS. Expressions of Raldh3 and Raldh4 during zebrafish early development. Gene Expr Patterns, 2008, 8(4): 248-253.
[16] Molotkov A, Ghyselinck NB, Chambon P, Duester G. Op-posing actions of cellular retinol-binding protein and al-cohol dehydrogenase control the balance between retinol storage and degradation. Biochem J, 2004, 383(Pt 2): 295-302.
[17] Collins MD, Mao GE. Teratology of retinoids. Annu Rev Pharmacol Toxicol, 1999, 39(1): 399-430.
[18] Perz-Edwards A, Hardison NL, Linney E. Retinoic acid-mediated gene expression in transgenic reporter zebrafish. Dev Biol, 2001, 229(1): 89-101.
[19] Pittlik S, Domingues S, Meyer A, Begemann G. Expression of zebrafish aldh1a3 (raldh3) and absence of aldh1a1 in tel
文章导航

/