Yang Gang, Chen Bi-Xia, Chen Tao, Chen Jia-Hui, Lin Xiang-Yu, Yue Xiu-Le, An Li-Zhe, Zhang Hua
Key Laboratory of Cell Activities and Stress Adaptations, Ministry of Education, School of Life Sciences, Lanzhou University, Lanzhou, 730000, China.
College of Life Science and Technology, Gansu Agricultural University, Lanzhou, 730070, China.
J Integr Plant Biol. 2022 May;64(5):965-978. doi: 10.1111/jipb.13243.
Auxin and auxin-mediated signaling pathways are known to regulate lateral root development. Although exocytic vesicle trafficking plays an important role in recycling the PIN-FORMED (PIN) auxin efflux carriers and in polar auxin transport during lateral root formation, the mechanistic details of these processes are not well understood. Here, we demonstrate that BYPASS1-LIKE (B1L) regulates lateral root initiation via exocytic vesicular trafficking-mediated PIN recycling in Arabidopsis thaliana. b1l mutants contained significantly more lateral roots than the wild type, primarily due to increased lateral root primordium initiation. Furthermore, the auxin signal was stronger in stage I lateral root primordia of b1l than in those of the wild type. Treatment with exogenous auxin and an auxin transport inhibitor indicated that the lateral root phenotype of b1l could be attributed to higher auxin levels and that B1L regulates auxin efflux. Indeed, compared to the wild type, C-terminally green fluorescent protein-tagged PIN1 and PIN3 accumulated at higher levels in b1l lateral root primordia. B1L interacted with the exocyst, and b1l showed defective PIN exocytosis. These observations indicate that B1L interacts with the exocyst to regulate PIN-mediated polar auxin transport and lateral root initiation in Arabidopsis.
已知生长素及生长素介导的信号通路可调控侧根发育。尽管胞吐囊泡运输在侧根形成过程中对PIN形成蛋白(PIN)生长素外流载体的循环利用及生长素极性运输起着重要作用,但这些过程的机制细节尚不清楚。在此,我们证明了拟南芥中类旁路1(B1L)通过胞吐囊泡运输介导的PIN循环来调控侧根起始。b1l突变体的侧根数量显著多于野生型,这主要是由于侧根原基起始增加所致。此外,b1l突变体I期侧根原基中的生长素信号比野生型更强。用外源生长素和生长素运输抑制剂处理表明,b1l的侧根表型可归因于较高的生长素水平,且B1L调控生长素外流。实际上,与野生型相比,C端带有绿色荧光蛋白标签的PIN1和PIN3在b1l侧根原基中积累水平更高。B1L与外被体相互作用,且b1l表现出PIN胞吐缺陷。这些观察结果表明,B1L与外被体相互作用,以调控拟南芥中PIN介导的生长素极性运输和侧根起始。