Key Laboratory of Functional Gene and Regulation Technologies under Chongqing Municipal Education Commission, Bioengineering College, Chongqing University, Chongqing 400044, China.
Université de Toulouse, INP-ENSA Toulouse, Génomique et Biotechnologie des Fruits, Avenue de l'Agrobiopole, BP 32607, Castanet-Tolosan, F-31326, France.
New Phytol. 2012 Apr;194(2):379-390. doi: 10.1111/j.1469-8137.2012.04053.x. Epub 2012 Mar 12.
The Aux/IAA genes encode a large family of short-lived proteins known to regulate auxin signalling in plants. Functional characterization of SlIAA15, a member of the tomato (Solanum lycopersicum) Aux/IAA family, shows that the encoded protein acts as a strong repressor of auxin-dependent transcription. The physiological significance of SlIAA15 was addressed by a reverse genetics approach, revealing that SlIAA15 plays multiple roles in plant developmental processes. The SlIAA15 down-regulated lines display lower trichome number, reduced apical dominance with associated modified pattern of axillary shoot development, increased lateral root formation and decreased fruit set. Moreover, the leaves of SlIAA15-inhibited plants are dark green and thick, with larger pavement cells, longer palisade cells and larger intercellular space of spongy mesophyll cells. The SlIAA15-suppressed plants exhibit a strong reduction in type I, V and VI trichome formation, suggesting that auxin-dependent transcriptional regulation is required for trichome initiation. Concomitant with reduced trichome formation, the expression of some R2R3 MYB genes, putatively involved in the control of trichome differentiation, is altered. These phenotypes uncover novel and specialized roles for Aux/IAAs in plant developmental processes, clearly indicating that members of the Aux/IAA gene family in tomato perform both overlapping and specific functions.
Aux/IAA 基因编码一大类短寿命蛋白,已知它们在植物中调节生长素信号。番茄(Solanum lycopersicum)Aux/IAA 家族成员 SlIAA15 的功能特征表明,编码的蛋白作为生长素依赖性转录的强抑制剂。通过反向遗传学方法解决了 SlIAA15 的生理意义,表明 SlIAA15 在植物发育过程中发挥多种作用。SlIAA15 下调系表现出较低的表皮毛数量、降低的顶端优势,伴发腋芽发育模式改变、增加侧根形成和降低结实率。此外,SlIAA15 抑制植物的叶片深绿色且厚实,有较大的扁平细胞,较长的栅栏细胞和较大的海绵状叶肉细胞的细胞间隙。SlIAA15 抑制植物的 I 型、V 型和 VI 型表皮毛形成强烈减少,表明生长素依赖性转录调控对于表皮毛起始是必需的。伴随着表皮毛形成减少,一些 R2R3 MYB 基因的表达发生改变,这些基因可能参与表皮毛分化的控制。这些表型揭示了 Aux/IAAs 在植物发育过程中的新的和专门的作用,清楚地表明番茄 Aux/IAA 基因家族的成员执行重叠和特定的功能。