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KNOX转录因子ClSP激活ClAPRR2以调控西瓜深绿条纹的形成。

The KNOX transcription factor ClSP activates ClAPRR2 to regulate dark green stripe formation in watermelon.

作者信息

Yue Zhen, Fu Yanan, Dai Xue, Chen Yingda, Guo Chenxi, Zhang Ruiqing, Huang Xin, Feng Mengjiao, Yan Xing, Wang Zhongyuan, Yu Rong, Liu Shi, Li Hao, Zhang Xian, Yuan Li, Wei Chunhua

机构信息

Hainan Institute of Northwest A&F University, Sanya, Hainan, China.

State Key Laboratory of Crop Stress Biology in Arid Areas, College of Horticulture, Northwest A&F University, Yangling, Shaanxi, China.

出版信息

Plant Biotechnol J. 2025 Aug;23(8):3012-3023. doi: 10.1111/pbi.70127. Epub 2025 May 9.

Abstract

As a prominent external feature of watermelon, the stripe pattern exhibits remarkable phenotypic diversity, directly impacting commercial value through consumer preference. However, the genetic and molecular mechanisms underlying this important agronomic trait in watermelon remain poorly understood. In this study, we discovered that the total chlorophyll content in dark green stripes (DGS) was significantly higher than that in light green stripes (LGS) or reticular green stripes (RGS). Moreover, the number and size of chloroplasts were significantly increased in the DGS. Genetic analysis identified the KNOX TF ClSP as the most likely candidate for regulating watermelon dark green stripe formation, whose functional disruption substantially impaired chlorophyll biosynthesis and chloroplast development, converting dark green stripes into reticulate stripes. Through transcriptome analysis, we identified approximately 94 differently expressed genes (DEGs) that contain the KNOX TF binding cis-element 'TGAC' in their promoters. Among these genes, the expression pattern of ARABIDOPSIS PSEUDO RESPONSE REGULATOR 2-LIKE (APRR2-like) TF ClAPRR2 closely mirrored that of ClSP, displaying significantly down-regulated transcriptional expression in LGS compared to DGS. Utilizing Y1H, GUS activity, DLR and EMSA assays, we confirmed that ClSP activates the transcriptional activity of ClAPRR2 through promoter binding. Collectively, we propose a potential working model for the ClSP-ClAPRR2 module, which regulates the chlorophyll synthesis and chloroplast development in watermelon fruits, providing new insights into the mechanisms underlying stripe pattern formation.

摘要

作为西瓜显著的外部特征,条纹图案表现出显著的表型多样性,通过消费者偏好直接影响商业价值。然而,西瓜这一重要农艺性状的遗传和分子机制仍知之甚少。在本研究中,我们发现深绿色条纹(DGS)中的总叶绿素含量显著高于浅绿色条纹(LGS)或网状绿色条纹(RGS)。此外,DGS中叶绿体的数量和大小显著增加。遗传分析确定KNOX转录因子ClSP是调控西瓜深绿色条纹形成的最可能候选基因,其功能破坏严重损害叶绿素生物合成和叶绿体发育,使深绿色条纹转变为网状条纹。通过转录组分析,我们鉴定出约94个差异表达基因(DEG),其启动子中含有KNOX转录因子结合顺式元件“TGAC”。在这些基因中,拟南芥类伪响应调节因子2(APRR2-like)转录因子ClAPRR2的表达模式与ClSP密切相似,与DGS相比,在LGS中其转录表达显著下调。利用酵母单杂交(Y1H)、GUS活性、双荧光素酶报告基因(DLR)和电泳迁移率变动分析(EMSA)实验,我们证实ClSP通过与启动子结合激活ClAPRR2的转录活性。总体而言,我们提出了ClSP-ClAPRR2模块的潜在工作模型,该模型调控西瓜果实中的叶绿素合成和叶绿体发育,为条纹图案形成的潜在机制提供了新见解。

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