Deng Shurong, Sun Jian, Zhao Rui, Ding Mingquan, Zhang Yinan, Sun Yuanling, Wang Wei, Tan Yeqing, Liu Dandan, Ma Xujun, Hou Peichen, Wang Meijuan, Lu Cunfu, Shen Xin, Chen Shaoliang
College of Biological Sciences and Technology, Beijing Forestry University, Beijing 100083, People's Republic of China (S.D., R.Z., Y.Z., Y.S., W.W., Y.T., D.L., X.M., M.W., C.L., X.S., S.C.);College of Life Science, Jiangsu Normal University, Xuzhou 221116, People's Republic of China (J.S.);College of Agricultural and Food Science, Zhejiang Agricultural and Forestry University, Hangzhou 311300, People's Republic of China (M.D.); andNational Engineering Research Center for Information Technology in Agriculture, Beijing 100097, People's Republic of China (P.H.).
College of Biological Sciences and Technology, Beijing Forestry University, Beijing 100083, People's Republic of China (S.D., R.Z., Y.Z., Y.S., W.W., Y.T., D.L., X.M., M.W., C.L., X.S., S.C.);College of Life Science, Jiangsu Normal University, Xuzhou 221116, People's Republic of China (J.S.);College of Agricultural and Food Science, Zhejiang Agricultural and Forestry University, Hangzhou 311300, People's Republic of China (M.D.); andNational Engineering Research Center for Information Technology in Agriculture, Beijing 100097, People's Republic of China (P.H.)
Plant Physiol. 2015 Sep;169(1):530-48. doi: 10.1104/pp.15.00581. Epub 2015 Jul 29.
Apyrase and extracellular ATP play crucial roles in mediating plant growth and defense responses. In the cold-tolerant poplar, Populus euphratica, low temperatures up-regulate APYRASE2 (PeAPY2) expression in callus cells. We investigated the biochemical characteristics of PeAPY2 and its role in cold tolerance. We found that PeAPY2 predominantly localized to the plasma membrane, but punctate signals also appeared in the endoplasmic reticulum and Golgi apparatus. PeAPY2 exhibited broad substrate specificity, but it most efficiently hydrolyzed purine nucleotides, particularly ATP. PeAPY2 preferred Mg(2+) as a cofactor, and it was insensitive to various, specific ATPase inhibitors. When PeAPY2 was ectopically expressed in Arabidopsis (Arabidopsis thaliana), cold tolerance was enhanced, based on root growth measurements and survival rates. Moreover, under cold stress, PeAPY2-transgenic plants maintained plasma membrane integrity and showed reduced cold-elicited electrolyte leakage compared with wild-type plants. These responses probably resulted from efficient plasma membrane repair via vesicular trafficking. Indeed, transgenic plants showed accelerated endocytosis and exocytosis during cold stress and recovery. We found that low doses of extracellular ATP accelerated vesicular trafficking, but high extracellular ATP inhibited trafficking and reduced cell viability. Cold stress caused significant increases in root medium extracellular ATP. However, under these conditions, PeAPY2-transgenic lines showed greater control of extracellular ATP levels than wild-type plants. We conclude that Arabidopsis plants that overexpressed PeAPY2 could increase membrane repair by accelerating vesicular trafficking and hydrolyzing extracellular ATP to avoid excessive, cold-elicited ATP accumulation in the root medium and, thus, reduced ATP-induced inhibition of vesicular trafficking.
腺苷三磷酸双磷酸酶(Apyrase)和细胞外ATP在介导植物生长和防御反应中起着关键作用。在耐寒杨树胡杨(Populus euphratica)中,低温会上调愈伤组织细胞中APYRASE2(PeAPY2)的表达。我们研究了PeAPY2的生化特性及其在耐寒性中的作用。我们发现PeAPY2主要定位于质膜,但在内质网和高尔基体中也出现点状信号。PeAPY2表现出广泛的底物特异性,但它最有效地水解嘌呤核苷酸,尤其是ATP。PeAPY2优先选择Mg(2+)作为辅因子,并且对各种特异性ATP酶抑制剂不敏感。当PeAPY2在拟南芥(Arabidopsis thaliana)中异位表达时,基于根生长测量和存活率,耐寒性得到增强。此外,在冷胁迫下,与野生型植物相比,PeAPY2转基因植物维持了质膜完整性,并显示出冷诱导的电解质渗漏减少。这些反应可能是通过囊泡运输进行有效质膜修复的结果。事实上,转基因植物在冷胁迫和恢复过程中显示出加速的内吞作用和外排作用。我们发现低剂量的细胞外ATP加速了囊泡运输,但高剂量的细胞外ATP抑制了运输并降低了细胞活力。冷胁迫导致根培养基中细胞外ATP显著增加。然而,在这些条件下,PeAPY2转基因株系比野生型植物对细胞外ATP水平具有更好的控制。我们得出结论,过表达PeAPY2的拟南芥植物可以通过加速囊泡运输和水解细胞外ATP来增加膜修复,以避免根培养基中因寒冷诱导的ATP过度积累,从而减少ATP对囊泡运输的抑制作用。