Mulati Nuerkaimaier, Li Zhong-Qi, Zhang Yan-Ru, Yang Ya-Lan, Li Li, Li Xue, Guo Jiang-Fan, He Jun-Min, Zheng Bo-Wen
School of Life Sciences, Shaanxi Normal University, Xi'an, Shaanxi, China.
College of Life and Geographic Sciences, Kashi University, Kashi, Xinjiang, China.
Plant Cell Environ. 2024 Dec;47(12):5039-5052. doi: 10.1111/pce.15075. Epub 2024 Aug 13.
In the investigation of heterotrimeric G protein-mediated signal transduction in planta, their roles in the transmittance of low K stimuli remain to be elucidated. Here, we found that the primary root growth of wild-type Arabidopsis was gradually inhibited with the decrease of external K concentrations, while the primary root of the mutants for G protein β subunit AGB1 and γ subunits AGG1, AGG2 and AGG3 could still grow under low K conditions (LK). Exogenous NAA application attenuated primary root elongation in agb1 and agg1/2/3 but promoted the growth in wild-type seedlings under LK stress. Using ProDR5:GFP, ProPIN1:PIN1-GFP and ProPIN2:PIN2-GFP reporter lines, a diminishment in auxin concentration at the radicle apex and a reduction in PIN1and PIN2 efflux carrier abundance were observed in wild-type roots under LK, a phenomenon not recorded in the agb1 and agg1/2/3. Further proteolytic and transcriptional assessments revealed an enhanced degradation of PIN1 and a suppressed expression of PIN2 in the wild-type background under LK, contrasting with the stability observed in the agb1 and agg1/2/3 mutants. Our results indicate that the G protein β and γ subunits play pivotal roles in suppressing of Arabidopsis root growth under LK by modulating auxin redistribution via alterations in PIN1 degradation and PIN2 biosynthesis.
在植物中异源三聚体G蛋白介导的信号转导研究中,它们在低钾刺激传递中的作用仍有待阐明。在此,我们发现野生型拟南芥的初生根生长随着外部钾浓度的降低而逐渐受到抑制,而G蛋白β亚基AGB1和γ亚基AGG1、AGG2及AGG3的突变体的初生根在低钾条件下仍能生长。在低钾胁迫下,外源施加萘乙酸(NAA)减弱了agb1和agg1/2/3突变体的初生根伸长,但促进了野生型幼苗的生长。使用ProDR5:GFP、ProPIN1:PIN1-GFP和ProPIN2:PIN2-GFP报告株系,在低钾条件下野生型根中观察到胚根顶端生长素浓度降低以及PIN1和PIN2外排载体丰度下降,而在agb1和agg1/2/3突变体中未观察到这种现象。进一步的蛋白水解和转录评估显示,在低钾条件下野生型背景中PIN1的降解增强且PIN2的表达受到抑制,这与在agb1和agg1/2/3突变体中观察到的稳定性形成对比。我们的结果表明,G蛋白β和γ亚基通过改变PIN1降解和PIN2生物合成来调节生长素重新分布,从而在低钾条件下抑制拟南芥根生长中起关键作用。