Vinodh Kumar P N, Mallikarjuna Mallana Gowdra, Jha Shailendra Kumar, Mahato Anima, Lal Shambhu Krishan, K R Yathish, Lohithaswa Hirenallur Chandappa, Chinnusamy Viswanathan
Division of Genetics, ICAR - Indian Agricultural Research Institute, New Delhi 110012, India; ICAR - Indian Agricultural Research Institute, Jharkhand, India.
Division of Genetics, ICAR - Indian Agricultural Research Institute, New Delhi 110012, India.
Int J Biol Macromol. 2023 Feb 28;229:539-560. doi: 10.1016/j.ijbiomac.2022.12.326. Epub 2023 Jan 2.
Sugars Will Eventually be Exported Transporters (SWEETs) are the novel sugar transporters widely distributed among living systems. SWEETs play a crucial role in various bio-physiological processes, viz., plant developmental, nectar secretion, pollen development, and regulation of biotic and abiotic stresses, in addition to their prime sugar-transporting activity. Thus, in-depth structural, evolutionary, and functional characterization of maize SWEET transporters was performed for their utility in maize improvement. The mining of SWEET genes in the latest maize genome release (v.5) showed an uneven distribution of 20 ZmSWEETs. The comprehensive structural analyses and docking of ZmSWEETs with four sugars, viz., fructose, galactose, glucose, and sucrose, revealed frequent amino acid residues forming hydrogen (asparagine, valine, serine) and hydrophobic (tryptophan, glycine, and phenylalanine) interactions. Evolutionary analyses of SWEETs showed a mixed lineage with 50-100 % commonality of ortho-groups and -sequences evolved under strong purifying selection (Ka/Ks < 0.5). The duplication analysis showed non-functionalization (ZmSWEET18 in B73) and neo- and sub-functionalization (ZmSWEET3, ZmSWEET6, ZmSWEET9, ZmSWEET19, and ZmSWEET20) events in maize. Functional analyses of ZmSWEET genes through co-expression, in silico expression and qRT-PCR assays showed the relevance of ZmSWEETs expression in regulating drought, heat, and waterlogging stress tolerances in maize. The first ever ZmSWEET-regulatory network revealed 286 direct (ZmSWEET-TF: 140 ZmSWEET-miRNA: 146) and 1226 indirect (TF-TF: 597; TF-miRNA: 629) edges. The present investigation has given new insights into the complex transcriptional and post-transcriptional regulation and the regulatory and functional relevance of ZmSWEETs in assigning stress tolerance in maize.
糖最终输出转运蛋白(SWEETs)是广泛分布于生物系统中的新型糖转运蛋白。除了其主要的糖转运活性外,SWEETs在各种生物生理过程中发挥着关键作用,即植物发育、花蜜分泌、花粉发育以及生物和非生物胁迫的调控。因此,对玉米SWEET转运蛋白进行了深入的结构、进化和功能表征,以用于玉米改良。在最新的玉米基因组版本(v.5)中挖掘SWEET基因,发现20个ZmSWEETs分布不均。对ZmSWEETs与四种糖(即果糖、半乳糖、葡萄糖和蔗糖)进行的全面结构分析和对接,揭示了形成氢键(天冬酰胺、缬氨酸、丝氨酸)和疏水键(色氨酸、甘氨酸和苯丙氨酸)相互作用的常见氨基酸残基。SWEETs的进化分析表明,其具有混合谱系,直系同源组和序列的50 - 100%具有共同性,且在强纯化选择(Ka/Ks < 0.5)下进化。重复分析显示玉米中存在非功能化事件(B73中的ZmSWEET18)以及新功能化和亚功能化事件(ZmSWEET3、ZmSWEET6、ZmSWEET9、ZmSWEET19和ZmSWEET20)。通过共表达、电子表达和qRT-PCR分析对ZmSWEET基因进行功能分析,结果表明ZmSWEETs的表达与调节玉米的干旱、高温和涝渍胁迫耐受性相关。首个ZmSWEET调控网络揭示了286条直接连接(ZmSWEET - 转录因子:140;ZmSWEET - 微小RNA:146)和1226条间接连接(转录因子 - 转录因子:597;转录因子 - 微小RNA:629)。本研究为ZmSWEETs在赋予玉米胁迫耐受性方面的复杂转录和转录后调控以及调控和功能相关性提供了新的见解。