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1
Molecular biology of feather morphogenesis: a testable model for evo-devo research.羽毛形态发生的分子生物学:一个用于演化发育生物学研究的可检验模型。
J Exp Zool B Mol Dev Evol. 2003 Aug 15;298(1):109-22. doi: 10.1002/jez.b.29.
2
Adaptation to the sky: Defining the feather with integument fossils from mesozoic China and experimental evidence from molecular laboratories.适应天空:利用中国中生代的体表化石和分子实验室的实验证据来定义羽毛。
J Exp Zool B Mol Dev Evol. 2003 Aug 15;298(1):42-56. doi: 10.1002/jez.b.25.
3
Shh-Bmp2 signaling module and the evolutionary origin and diversification of feathers.音猬因子-骨形态发生蛋白2信号模块与羽毛的进化起源及多样化
J Exp Zool. 2002 Aug 15;294(2):160-76. doi: 10.1002/jez.10157.
4
Cell structure of developing barbs and barbules in downfeathers of the chick: Central role of barb ridge morphogenesis for the evolution of feathers.雏鸡绒羽中发育的羽枝和羽小枝的细胞结构:羽枝嵴形态发生在羽毛进化中的核心作用。
J Submicrosc Cytol Pathol. 2005 Apr;37(1):19-41.
5
The role of mechanical forces on the patterning of the avian feather-bearing skin: A biomechanical analysis of the integumentary musculature in birds.机械力对鸟类有羽毛皮肤图案形成的作用:鸟类皮肤肌肉组织的生物力学分析。
J Exp Zool B Mol Dev Evol. 2003 Aug 15;298(1):123-39. doi: 10.1002/jez.b.30.
6
Cytochemical and molecular characteristics of the process of cornification during feather morphogenesis.羽毛形态发生过程中角质化过程的细胞化学和分子特征。
Prog Histochem Cytochem. 2008;43(1):1-69. doi: 10.1016/j.proghi.2008.01.001. Epub 2008 Mar 14.
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The morphogenesis of feathers.羽毛的形态发生。
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The biology of feather follicles.毛囊生物学。
Int J Dev Biol. 2004;48(2-3):181-91. doi: 10.1387/ijdb.031776my.
9
Wnt3a gradient converts radial to bilateral feather symmetry via topological arrangement of epithelia.Wnt3a梯度通过上皮细胞的拓扑排列将径向羽毛对称性转变为双侧羽毛对称性。
Proc Natl Acad Sci U S A. 2006 Jan 24;103(4):951-5. doi: 10.1073/pnas.0506894103. Epub 2006 Jan 17.
10
Avian skin development and the evolutionary origin of feathers.鸟类皮肤发育与羽毛的进化起源。
J Exp Zool B Mol Dev Evol. 2003 Aug 15;298(1):57-72. doi: 10.1002/jez.b.26.

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Aggregation-diffusion in heterogeneous environments.异质环境中的聚集-扩散
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The origin and early evolution of feathers: implications, uncertainties and future prospects.羽毛的起源与早期演化:影响、不确定性及未来展望
Biol Lett. 2025 Feb;21(2):20240517. doi: 10.1098/rsbl.2024.0517. Epub 2025 Feb 19.
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Modification of Keratin Integrations and the Associated Morphogenesis in Frizzling Chicken Feathers.卷毛鸡羽毛中角蛋白整合的改变及相关形态发生
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Nonlinear model fitting analysis of feather growth and development curves in the embryonic stages of Jilin white geese (Anser cygnoides).吉林白鹅胚胎期羽毛生长发育曲线的非线性模型拟合分析。
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Early perturbation of Wnt signaling reveals patterning and invagination-evagination control points in molar tooth development.早期 Wnt 信号的扰动揭示了磨牙发育中模式形成和内卷-外卷控制的关键点。
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quantification of individual mRNA transcripts in melanocytes discloses gene regulation of relevance to speciation.定量分析黑素细胞中的个体 mRNA 转录本揭示了与物种形成相关的基因调控。
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Morpho-regulation in diverse chicken feather formation: Integrating branching modules and sex hormone-dependent morpho-regulatory modules.不同鸡羽毛形成中的形态调控:整合分支模块和性激素依赖性形态调控模块。
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10
Transcriptome analyses of reprogrammed feather / scale chimeric explants revealed co-expressed epithelial gene networks during organ specification.重编程的羽毛/鳞片嵌合体外植体的转录组分析揭示了在器官特化过程中共同表达的上皮基因网络。
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本文引用的文献

1
Shift of localized growth zones contributes to skin appendage morphogenesis: role of the Wnt/beta-catenin pathway.局部生长区的移位有助于皮肤附属器形态发生:Wnt/β-连环蛋白信号通路的作用
J Invest Dermatol. 2003 Jan;120(1):20-6. doi: 10.1046/j.1523-1747.2003.12008.x.
2
The morphogenesis of feathers.羽毛的形态发生。
Nature. 2002 Nov 21;420(6913):308-12. doi: 10.1038/nature01196. Epub 2002 Oct 30.
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The evolutionary origin and diversification of feathers.羽毛的进化起源与多样化
Q Rev Biol. 2002 Sep;77(3):261-95. doi: 10.1086/341993.
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Differential regulation of the chick dorsal thoracic dermal progenitors from the medial dermomyotome.鸡背胸部真皮祖细胞与内侧皮肌节的差异调控
Development. 2002 Oct;129(20):4763-72. doi: 10.1242/dev.129.20.4763.
5
Reaction-diffusion models of within-feather pigmentation patterning.羽毛内部色素沉着图案形成的反应扩散模型。
Proc Biol Sci. 2002 Apr 22;269(1493):781-92. doi: 10.1098/rspb.2001.1896.
6
TCF: Lady Justice casting the final verdict on the outcome of Wnt signalling.TCF:正义女神对Wnt信号通路的结果做出最终裁决。
Biol Chem. 2002 Feb;383(2):255-61. doi: 10.1515/BC.2002.027.
7
Dinosaur's feather and chicken's tooth? Tissue engineering of the integument.恐龙的羽毛与鸡的牙齿?皮肤组织工程
Eur J Dermatol. 2001 Jul-Aug;11(4):286-92.
8
beta-Catenin controls hair follicle morphogenesis and stem cell differentiation in the skin.β-连环蛋白控制皮肤中毛囊的形态发生和干细胞分化。
Cell. 2001 May 18;105(4):533-45. doi: 10.1016/s0092-8674(01)00336-1.
9
Digit homology of birds and dinosaurs: accommodating the cladogram.
Trends Ecol Evol. 2001 Jun 1;16(6):285-286. doi: 10.1016/s0169-5347(01)02183-8.
10
Theory of the growth and evolution of feather shape.羽毛形状的生长与进化理论
J Exp Zool. 2001 Apr 15;291(1):30-57. doi: 10.1002/jez.4.

羽毛形态发生的分子生物学:一个用于演化发育生物学研究的可检验模型。

Molecular biology of feather morphogenesis: a testable model for evo-devo research.

作者信息

Widelitz Randall B, Jiang Ting Xin, Yu Mingke, Shen Ted, Shen Jen-Yee, Wu Ping, Yu Zhicao, Chuong Cheng-Ming

机构信息

Department of Pathology, Keck School of Medicine, University of Southern California, Los Angeles, California 90033, USA.

出版信息

J Exp Zool B Mol Dev Evol. 2003 Aug 15;298(1):109-22. doi: 10.1002/jez.b.29.

DOI:10.1002/jez.b.29
PMID:12949772
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4382008/
Abstract

Darwin's theory describes the principles that are responsible for evolutionary change of organisms and their attributes. The actual mechanisms, however, need to be studied for each species and each organ separately. Here we have investigated the mechanisms underlying these principles in the avian feather. Feathers comprise one of the most complex and diverse epidermal organs as demonstrated by their shape, size, patterned arrangement and pigmentation. Variations can occur at several steps along each level of organization, leading to highly diverse forms and functions. Feathers develop gradually during ontogeny through a series of steps that may correspond to the evolutionary steps that were taken during the phylogeny from a reptilian ancestor to birds. These developmental steps include 1) the formation of feather tract fields on the skin surfaces; 2) periodic patterning of the individual feather primordia within the feather tract fields; 3) feather bud morphogenesis establishing anterio-posterior (along the cranio-caudal axis) and proximo-distal axes; 4) branching morphogenesis to create the rachis, barbs and barbules within a feather bud; and 5) gradual modulations of these basic morphological parameters within a single feather or across a feather tract. Thus, possibilities for variation in form and function of feathers occur at every developmental step. In this paper, principles guiding feather tract formation, distributions of individual feathers within the tracts and variations in feather forms are discussed at a cellular and molecular level.

摘要

达尔文的理论描述了导致生物体及其属性发生进化变化的原理。然而,实际机制需要针对每个物种和每个器官分别进行研究。在此,我们研究了鸟类羽毛中这些原理背后的机制。羽毛是最复杂、最多样化的表皮器官之一,其形状、大小、图案排列和色素沉着都证明了这一点。在组织的每个层次上,沿着几个步骤都可能出现变异,从而导致高度多样的形式和功能。羽毛在个体发育过程中通过一系列步骤逐渐发育,这些步骤可能与从爬行动物祖先到鸟类的系统发育过程中所经历的进化步骤相对应。这些发育步骤包括:1)在皮肤表面形成羽区;2)羽区内单个羽原基的周期性图案化;3)建立前后(沿头尾轴)和近远轴的羽芽形态发生;4)分支形态发生以在羽芽内形成羽轴、羽枝和羽小枝;5)在单个羽毛内或整个羽区内对这些基本形态参数进行逐渐调节。因此,羽毛在每个发育步骤中都存在形式和功能变异的可能性。本文在细胞和分子水平上讨论了指导羽区形成、羽区内单个羽毛分布以及羽毛形式变异的原理。