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斑马鱼puma突变体使色素模式与体细胞变态脱钩。

Zebrafish puma mutant decouples pigment pattern and somatic metamorphosis.

作者信息

Parichy David M, Turner Jessica M

机构信息

Section of Integrative Biology, Section of Molecular, Cell and Developmental Biology, Institute for Cellular and Molecular Biology, University of Texas at Austin, 1 University Station, C0930, Austin, TX 78712, USA.

出版信息

Dev Biol. 2003 Apr 15;256(2):242-57. doi: 10.1016/s0012-1606(03)00015-0.

Abstract

The genetic and developmental bases for trait expression and variation in adults are largely unknown. One system in which genes and cell behaviors underlying adult traits can be elucidated is the larval-to-adult transformation of zebrafish, Danio rerio. Metamorphosis in this and many other teleost fishes resembles amphibian metamorphosis, as a variety of larval traits (e.g., fins, skin, digestive tract, sensory systems) are remodeled in a coordinated manner to generate the adult form. Among these traits is the pigment pattern, which comprises several neural crest-derived pigment cell classes, including black melanophores, yellow xanthophores, and iridescent iridophores. D. rerio embryos and early larvae exhibit a relatively simple pattern of melanophore stripes, but this pattern is transformed during metamorphosis into the more complex pattern of the adult, consisting of alternating dark (melanophore, iridophore) and light (xanthophore, iridophore) horizontal stripes. While it is clear that some pigment cells differentiate de novo during pigment pattern metamorphosis, the extent to which larval and adult pigment patterns are developmentally independent has not been known. In this study, we show that a subset of embryonic/early larval melanophores persists into adult stages in wild-type fish; thus, larval and adult pigment patterns are not completely independent in this species. We also analyze puma mutant zebrafish, derived from a forward genetic screen to isolate mutations affecting postembryonic development. In puma mutants, a wild-type embryonic/early larval pigment pattern forms, but supernumerary early larval melanophores persist in ectopic locations through juvenile and adult stages. We then show that, although puma mutants undergo a somatic metamorphosis at the same time as wild-type fish, metamorphic melanophores that normally appear during these stages are absent. The puma mutation thus decouples metamorphosis of the pigment pattern from the metamorphosis of many other traits. Nevertheless, puma mutants ultimately recover large numbers of melanophores and exhibit extensive pattern regulation during juvenile development, when the wild-type pigment pattern already would be completed. Finally, we demonstrate that the puma mutant is both temperature-sensitive and growth-sensitive: extremely severe pigment pattern defects result at a high temperature, a high growth rate, or both; whereas a wild-type pigment pattern can be rescued at a low temperature and a low growth rate. Taken together, these results provide new insights into zebrafish pigment pattern metamorphosis and the capacity for pattern regulation when normal patterning mechanisms go awry.

摘要

成体性状表达和变异的遗传与发育基础在很大程度上尚不清楚。斑马鱼(Danio rerio)从幼体到成体的转变是一个能够阐明成体性状背后基因和细胞行为的系统。这种硬骨鱼以及许多其他硬骨鱼的变态过程类似于两栖动物的变态,因为多种幼体性状(如鳍、皮肤、消化道、感觉系统)会以协调的方式进行重塑,以形成成体形态。这些性状中包括色素模式,它由几种神经嵴衍生的色素细胞类型组成,包括黑色的黑素细胞、黄色的黄色素细胞和虹彩的虹彩细胞。斑马鱼胚胎和早期幼体表现出相对简单的黑素细胞条纹模式,但这种模式在变态过程中会转变为成体更复杂的模式,由交替的深色(黑素细胞、虹彩细胞)和浅色(黄色素细胞、虹彩细胞)水平条纹组成。虽然很明显在色素模式变态过程中有一些色素细胞是重新分化形成的,但幼体和成体色素模式在发育上的独立程度尚不清楚。在本研究中,我们表明野生型鱼中一部分胚胎/早期幼体黑素细胞会持续到成体阶段;因此,在这个物种中幼体和成体色素模式并非完全独立。我们还分析了源自正向遗传筛选以分离影响胚后发育突变的美洲狮(puma)突变斑马鱼。在美洲狮突变体中,形成了野生型胚胎/早期幼体色素模式,但多余的早期幼体黑素细胞在异位位置持续存在于幼体和成年阶段。然后我们表明,尽管美洲狮突变体与野生型鱼同时经历体细胞变态,但正常情况下在这些阶段出现的变态黑素细胞却不存在。因此,美洲狮突变使色素模式的变态与许多其他性状的变态解耦。然而,美洲狮突变体最终会恢复大量黑素细胞,并在幼体发育过程中表现出广泛的模式调节,而此时野生型色素模式已经完成。最后,我们证明美洲狮突变体对温度和生长都敏感:在高温、高生长速率或两者同时存在的情况下会导致极其严重的色素模式缺陷;而在低温和低生长速率下可以挽救野生型色素模式。综上所述,这些结果为斑马鱼色素模式变态以及正常模式形成机制出错时的模式调节能力提供了新的见解。

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