植物研究 ›› 2026, Vol. 46 ›› Issue (4): 764-776.doi: 10.7525/j.issn.1673-5102.2026.04.016
• 研究论文 • 上一篇
收稿日期:2026-02-01
出版日期:2026-07-20
发布日期:2026-07-22
通讯作者:
史倩倩
E-mail:shiqianqian2005@163.com
作者简介:李文珺(2005—),女,本科生,主要从事紫斑牡丹色斑研究。
基金资助:
Wenjun LI, Sha LUO, Qianqian SHI(
)
Received:2026-02-01
Online:2026-07-20
Published:2026-07-22
Contact:
Qianqian SHI
E-mail:shiqianqian2005@163.com
摘要:
紫斑牡丹(Paeonia rockii)花瓣基部色斑是我国牡丹品种色斑性状的主要遗传来源。为明确色斑的时序发生、扩展模式及其与色素积累的关系,本研究系统观察了10个紫斑牡丹品种花瓣基部色斑在7个时期的形成情况。结果显示:S2时期花瓣基部出现单个色素细胞,并逐步形成以深色中心细胞为核心、浅色外围细胞环绕的色素细胞团。色斑以色素细胞团为基本结构单位进行扩展,其轮廓于S3时期初步形成,早于花瓣花色显现,且S6~S7时期仍存在色素细胞分裂高峰。S2~S3时期,色斑区L*(明度)和b*(黄蓝度)显著下降,a*(红绿度)显著升高。S2时期色斑区即可检测到花青苷,其中矢车菊素-3,5-O-二葡萄糖苷(Cy3G5G)和芍药花素-3,5-O-二葡萄糖苷(Pn3G5G)含量最高。线性回归分析表明,Pn3G5G含量对色斑L*、a*、b*变化具有较强解释力,是形成紫红色色斑的关键花青苷;天竺葵素-3,5-O-二葡萄糖苷(Pg3G5G)可能参与黑色色斑的形成。综上,紫斑牡丹色斑的形成是以色素细胞团扩展为结构基础、花青苷时空特异性积累为物质基础的动态发育过程。
中图分类号:
李文珺, 罗莎, 史倩倩. 紫斑牡丹色斑形成过程中表皮细胞变化及花青苷积累规律[J]. 植物研究, 2026, 46(4): 764-776.
Wenjun LI, Sha LUO, Qianqian SHI. Epidermal Cell Changes and Anthocyanin Accumulation Patterns during Paeonia rockii Blotch Formation[J]. Bulletin of Botanical Research, 2026, 46(4): 764-776.
| [1] | 程金水.园林植物遗传育种学[M].北京:中国林业出版社,2000:81-82. |
| Cheng Jinshui.Genetics and breeding of garden plants[M].Beijing:China Forestry Publishing House,2000:81-82. | |
| [2] | Fairnie A L M, Yeo M T S, Gatti S,et al.Eco-Evo-Devo of petal pigmentation patterning[J].Essays in Biochemistry,2022,66(6):753-768. |
| [3] | Zhang Y Z, Cheng Y W, Ya H Y,et al.Transcriptome sequencing of purple petal spot region in tree peony reveals differentially expressed anthocyanin structural genes[J].Frontiers in Plant Science,2015,6:964. |
| [4] | 成仿云.中国紫斑牡丹[M].北京:中国林业出版社,2005:88. |
| Cheng Fangyun.Chinese flare Mudan[M].Beijing:China Forestry Publishing House,2005:88. | |
| [5] | Wang L S, Hashimoto F, Shiraishi A,et al.Phenetics in tree peony species from China by flower pigment cluster analysis[J].Journal of Plant Research,2001,114(3):213-221. |
| [6] | Wang L S, Hashimoto F, Shiraishi A,et al.Chemical taxonomy of the Xibei tree peony from China by floral pigmentation[J].Journal of Plant Research,2004,117(1):47-55. |
| [7] | Zhang J J, Wang L S, Shu Q Y,et al.Comparison of anthocyanins in non-blotches and blotches of the petals of Xibei tree peony[J].Scientia Horticulturae,2007,114(2):104-111. |
| [8] | Shi Q Q, Yuan M, Wang S,et al.PrMYB5 activates anthocyanin biosynthetic PrDFR to promote the distinct pigmentation pattern in the petal of Paeonia rockii [J].Frontiers in Plant Science,2022,13:955590. |
| [9] | Shi Q Q, Li L, Zhang X X,et al.Biochemical and comparative transcriptomic analyses identify candidate genes related to variegation formation in Paeonia rockii [J].Molecules,2017,22(8):1364. |
| [10] | Qi Y Y, Lou Q, Li H B,et al.Anatomical and biochemical studies of bicolored flower development in Muscari latifolium [J].Protoplasma,2013,250(6):1273-1281. |
| [11] | Schindelin J, Arganda-Carreras I, Frise E,et al.Fiji:an open-source platform for biological-image analysis[J].Nature Methods,2012,9(7):676-682. |
| [12] | Zhang J, Wang L S, Gao J M,et al.Determination of anthocyanins and exploration of relationship between their composition and petal coloration in crape myrtle (Lagerstroemia hybrid)[J].Journal of Integrative Plant Biology,2008,50(5):581-588. |
| [13] | Hanbury A, Serra J.Mathematical morphology in the cielab space[J].Image Analysis & Stereology,2002,21(3):201. |
| [14] | Luo X N, Sun D Y, Wang S,et al.Integrating full-length transcriptomics and metabolomics reveals the regulatory mechanisms underlying yellow pigmentation in tree peony (Paeonia suffruticosa Andr.) flowers[J].Horticulture Research,2021,8:235. |
| [15] | Suzuki K, Suzuki T, Nakatsuka T,et al.RNA-seq-based evaluation of bicolor tepal pigmentation in Asiatic hybrid lilies (Lilium spp.)[J].BMC Genomics,2016,17(1):611. |
| [16] | Wang Z, Li X, Chen M M,et al.Molecular and metabolic insights into anthocyanin biosynthesis for spot formation on Lilium leichtlinii var.maximowiczii flower petals[J].International Journal of Molecular Sciences,2023,24(3):1844. |
| [17] | Xu L F, Yang P P, Feng Y Y,et al.Spatiotemporal transcriptome analysis provides insights into bicolor tepal development in Lilium “tiny padhye”[J].Frontiers in Plant Science,2017,8:398. |
| [18] | Zhu J, Wang Y Z, Wang Q Y,et al.The combination of DNA methylation and positive regulation of anthocyanin biosynthesis by MYB and bHLH transcription factors contributes to the petal blotch formation in Xibei tree peony[J].Horticulture Research,2023,10(7):uhad100. |
| [19] | Wilts B D, Rudall P J, Moyroud E,et al.Ultrastructure and optics of the prism-like petal epidermal cells of Eschscholzia californica (California poppy)[J].New Phytologist,2018,219(3):1124-1133. |
| [20] | 林登贵,曾丽,裴峰,等.万寿菊营养器官及舌状花解剖结构的研究[J].上海交通大学学报(农业科学版),2015,33(4):59-64. |
| Lin Denggui, Zeng Li, Pei Feng,et al.Anatomical structures of vegetative organs and ray floret in Tagetes erecta L.[J].Journal of Shanghai Jiao Tong University(Agricultural Science),2015,33(4):59-64. | |
| [21] | 殷涵泰,尹俊梅,廖易,等.基于秋石斛花朵颜色、色素分布及表皮细胞形态的表型分类[J].园艺学报,2021,48(10):1907-1920. |
| Yin Hantai, Yin Junmei, Liao Yi,et al.Phenotype classification based on flower color,pigment distribution and epidermal cell shape of Dendrobium hybrids[J].Acta Horticulturae Sinica,2021,48(10):1907-1920. | |
| [22] | Luan Y T, Tang Y H, Wang X,et al.Tree peony R2R3-MYB transcription factor PsMYB30 promotes petal blotch formation by activating the transcription of the anthocyanin synthase gene[J].Plant and Cell Physiology,2022,63(8):1101-1116. |
| [23] | Kicheva A, Briscoe J.Developmental pattern formation in phases[J].Trends in Cell Biology,2015,25(10):579-591. |
| [24] | Davies K M, Albert N W, Schwinn K E.From landing lights to mimicry:the molecular regulation of flower colouration and mechanisms for pigmentation patterning[J].Functional Plant Biology,2012,39(8):619-638. |
| [25] | Li Y, Kong F, Liu Z A,et al.PhUGT78A22, a novel glycosyltransferase in Paeonia ‘He Xie’, can catalyze the transfer of glucose to glucosylated anthocyanins during petal blotch formation[J].BMC Plant Biology,2022,22:405. |
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