College of Horticulture, South China Agricultural University, Guangzhou 510642, China.
School of Bioscience and Engineering, Shaanxi University of Technology, Hanzhong 732001, China.
Int J Mol Sci. 2021 Dec 24;23(1):176. doi: 10.3390/ijms23010176.
Vacuolar invertase (VI) can irreversibly degrade sucrose into glucose and fructose and involve in plants abiotic-stress-tolerance. Cucumber ( L.) is susceptible to drought stress, especially during the seedling stage. To date, the involvement of VI in drought tolerance in cucumber seedlings is in urgent need of exploration. In the present study, a cucumber vacuolar invertase gene, , was isolated and functionally characterized. The results showed that (1) CsVI2 showed vacuolar invertase activity both in vivo and in vitro; (2) the transcript level of , along with VI activity, was significantly induced by drought stress. Moreover, the expression of sucrose synthase 3 () was increased and that of sucrose phosphate synthase 1 () was decreased after exposure to drought stress, which was followed by an increase in sucrose synthase activity and a decrease in sucrose phosphate synthase activity; (3) -overexpressing transformed cucumber seedlings showed enhanced vacuolar invertase activity and drought tolerance and 4) protein-protein interaction modelling indicated that a cucumber invertase inhibitor, CsINVINH3, can interact with CsVI2. In summary, the results indicate that CsVI2 as an invertase can regulate sucrose metabolism and enhance drought stress in cucumber seedlings.
液泡转化酶(VI)可将蔗糖不可逆地降解为葡萄糖和果糖,并参与植物的非生物胁迫耐受。黄瓜(L.)对干旱胁迫敏感,尤其是在幼苗期。迄今为止,VI 参与黄瓜幼苗的耐旱性仍亟待探索。本研究分离并功能表征了一个黄瓜液泡转化酶基因 。结果表明:(1)CsVI2 在体内和体外均具有液泡转化酶活性;(2)干旱胁迫显著诱导 基因的转录水平及其相应的 VI 活性。此外,干旱胁迫后蔗糖合酶 3 () 的表达增加,蔗糖磷酸合酶 1 () 的表达减少,随后蔗糖合酶活性增加,蔗糖磷酸合酶活性降低;(3)过表达转化的黄瓜幼苗表现出增强的液泡转化酶活性和耐旱性;(4)蛋白-蛋白相互作用模型表明,一种黄瓜转化酶抑制剂 CsINVINH3 可与 CsVI2 相互作用。综上所述,结果表明 CsVI2 作为一种转化酶可调节蔗糖代谢并增强黄瓜幼苗的干旱胁迫耐受能力。