College of Chemistry and Life Sciences, Zhejiang Normal University, Jinhua, 321004, China.
College of Chemistry and Life Sciences, Zhejiang Normal University, Jinhua, 321004, China; Zhejiang Provincial Key Laboratory of Biotechnology on Specialty Economic Plants, Zhejiang Normal University, Jinhua, 321004, China.
Plant Physiol Biochem. 2021 Apr;161:200-209. doi: 10.1016/j.plaphy.2021.02.010. Epub 2021 Feb 15.
Endosome trafficking has been reported to play an essential role in pollen tube polar growth and NtGNL1 (Nicotiana tabacum GNOM-LIKE 1) regulates the polar growth through endosome trafficking. However, the regulation network and detailed molecular mechanisms underlying endosome trafficking remain unclear. Here, comparative proteomic analysis was carried out to survey the overall effect of NtGNL1 on pollen tube polar growth and NtGNL1-dependent endosome trafficking. With multiple comparative systems (RNAi, Wild type, and BFA or wortmannin treatments), 481 distinct proteins were identified including 43 common DEPs (differentially expressed proteins), of which 16 significant DEPs were common among RNAi, BFA, and wortmannin treated pollen tubes, indicating their close relation to the endosome trafficking. GO annotation indicates that the vesicle trafficking of gnl1 pollen tubes differs from that of the BFA and wortmannin treated pollen tubes in the COPII-coated vesicle budding process. KEGG pathway analysis suggests that the Pentose phosphate pathway is critical for the NtGNL1-dependent endosome trafficking. Yeast two-hybrid further confirmed that the NtGNL1-Sec7 domain interacted strongly with VPS32.2, TCTP, PIS2, and PDIL2-1, suggesting that the core functional region of NtGNL1 is the Sec7 domain. Therefore, NtGNL1 likely functions via its Sec7 binding with these proteins to affect endosome trafficking. Our results provide a clear outline of proteins involving in NtGNL1-dependent endosome trafficking and valuable clues for understanding the regulatory mechanism of NtGNL1 guided pollen tube polar growth.
内体运输被报道在花粉管极性生长中起着重要作用,而 NtGNL1(Nicotiana tabacum GNOM-LIKE 1)通过内体运输调节极性生长。然而,内体运输的调控网络和详细的分子机制仍不清楚。在这里,进行了比较蛋白质组学分析,以调查 NtGNL1 对花粉管极性生长的整体影响和 NtGNL1 依赖的内体运输。通过多个比较系统(RNAi、野生型和 BFA 或渥曼青霉素处理),鉴定了 481 种不同的蛋白质,包括 43 种共同的 DEPs(差异表达蛋白),其中 16 种显著的 DEPs 在 RNAi、BFA 和渥曼青霉素处理的花粉管中是共同的,表明它们与内体运输密切相关。GO 注释表明,gnl1 花粉管的囊泡运输在 COPII 包被囊泡出芽过程中与 BFA 和渥曼青霉素处理的花粉管不同。KEGG 通路分析表明,戊糖磷酸途径对于 NtGNL1 依赖的内体运输至关重要。酵母双杂交进一步证实,NtGNL1-Sec7 结构域与 VPS32.2、TCTP、PIS2 和 PDIL2-1 强烈相互作用,表明 NtGNL1 的核心功能区域是 Sec7 结构域。因此,NtGNL1 可能通过其 Sec7 与这些蛋白的结合来影响内体运输。我们的研究结果为参与 NtGNL1 依赖的内体运输的蛋白质提供了清晰的轮廓,并为理解 NtGNL1 指导花粉管极性生长的调控机制提供了有价值的线索。