Du Hui, Wang Gang, Pan Jian, Chen Yue, Xiao Tingting, Zhang Leyu, Zhang Keyan, Wen Haifan, Xiong Liangrong, Yu Yao, He Huanle, Pan Junsong, Cai Run
School of Agriculture and Biology, Shanghai Jiao Tong University, Shanghai, China.
State Key Laboratory of Vegetable Germplasm Innovation, Tianjin, China.
J Exp Bot. 2020 Oct 22;71(20):6297-6310. doi: 10.1093/jxb/eraa344.
Trichomes and fruit spines are important traits that directly affect the appearance quality and commercial value of cucumber (Cucumis sativus). Tril (Trichome-less), encodes a HD-Zip IV transcription factor that plays a crucial role in the initiation of trichomes and fruit spines, but little is known about the details of the regulatory mechanisms involved. In this study, analysis of tissue expression patterns indicated that Tril is expressed and functions in the early stages of organ initiation and development. Expression of Tril under the control of its own promoter (the TrilPro::Tril-3flag fragment) could partly rescue the mutant phenotypes of tril, csgl3 (cucumber glabrous 3, an allelic mutant of tril), and fs1 (few spines 1, a fragment substitution in the Tril promoter region), providing further evidence that Tril is responsible for the initiation of trichomes and fruit spines. In lines with dense spine, fs1-type lines, and transgenic lines of different backgrounds containing the TrilPro::Tril-3flag foreign fragment, spine density increased in conjunction with increases in Tril expression, indicating that Tril has a gene dosage effect on fruit spine density in cucumber. Numerous Spines (NS) is a negative regulatory factor of fruit spine density. Characterization of the molecular and genetic interaction between Tril and NS/ns demonstrated that Tril functions upstream of NS with respect to spine initiation. Overall, our results reveal a novel regulatory mechanism governing the effect of Tril on fruit spine development, and provide a reference for future work on breeding for physical quality in cucumber.
表皮毛和果实刺是直接影响黄瓜外观品质和商业价值的重要性状。Tril(无毛)编码一个HD-Zip IV转录因子,在表皮毛和果实刺的起始过程中起关键作用,但对其涉及的调控机制细节知之甚少。在本研究中,组织表达模式分析表明Tril在器官起始和发育的早期阶段表达并发挥作用。在其自身启动子(TrilPro::Tril-3flag片段)控制下的Tril表达可以部分挽救tril、csgl3(黄瓜无毛3,tril的等位突变体)和fs1(少刺1,Tril启动子区域的片段替换)的突变表型,进一步证明Tril负责表皮毛和果实刺的起始。在刺密集的品系、fs1型品系以及含有TrilPro::Tril-3flag外源片段的不同背景转基因品系中,刺密度随着Tril表达的增加而增加,表明Tril对黄瓜果实刺密度具有基因剂量效应。多刺(NS)是果实刺密度的负调控因子。Tril与NS/ns之间分子和遗传相互作用的表征表明,在刺的起始方面,Tril在NS的上游发挥作用。总体而言,我们的结果揭示了一种新的调控机制,该机制控制Tril对果实刺发育的影响,并为黄瓜物理品质育种的未来工作提供参考。