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全基因组鉴定与表达分析揭示了PFK基因家族在棉花耐旱性和糖代谢中的潜在作用。

Genome-Wide Identification and Expression Analysis Elucidates the Potential Role of PFK Gene Family in Drought Stress Tolerance and Sugar Metabolism in Cotton.

作者信息

Mehari Teame Gereziher, Xu Yanchao, Umer Muhammad Jawad, Hui Fang, Cai Xiaoyan, Zhou Zhongli, Hou Yuqing, Wang Kai, Wang Baohua, Liu Fang

机构信息

School of Life Sciences, Nantong University, Nantong, China.

State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Anyang, China.

出版信息

Front Genet. 2022 Jun 20;13:922024. doi: 10.3389/fgene.2022.922024. eCollection 2022.

Abstract

Drought has been identified as a major threat for global crop production worldwide. Phosphofructokinase (PFK) is vital for sugar metabolism. During phosphorylation, plants have two enzymes: ATP-dependent phosphofructokinase (PFK) and pyrophosphate-dependent fructose-6-phosphate phosphotransferase (PFP). Genome-wide identification led to the identification of 80 PFK genes, 26 genes in and , and 14 genes in and . Phylogenetic, gene structure, and motif analyses showed that PFK genes were grouped into two main categories, namely, PFK and PFP, with 18 and 8 genes in the allotetraploid species and 10 PFK and 4 PFP genes in the diploid species, respectively. Using the RNA-seq expressions of 26 genes from , a co-expression network analysis was performed to identify the hub genes. , , , , , and in leaves and , , , and in root tissues were found as hub genes. RT-qPCR analysis validated the expressions of identified hub genes. Interestingly, and were identified as common hub genes, and these might be the true candidate genes involved in the drought stress tolerance. In the KEGG enrichment analysis, amino acids such as L-valine, L-histidine, L-glutamine, L-serine, L-homoserine, L-methionine, L-cysteine, and gluconic acid were significantly upregulated, whereas sugars, mainly fructose-1-phosphate, D-mannitol, D-sorbitol, dulcitol, and lactose, were significantly downregulated during drought stress. Genome-wide analysis paves the way for a deeper understanding of the PFK genes and establishes the groundwork for future research into PFK's role in enhancing drought stress tolerance and sugar metabolism in cotton.

摘要

干旱已被确认为全球农作物生产的主要威胁。磷酸果糖激酶(PFK)对糖代谢至关重要。在磷酸化过程中,植物有两种酶:ATP依赖性磷酸果糖激酶(PFK)和焦磷酸依赖性6-磷酸果糖磷酸转移酶(PFP)。全基因组鉴定导致鉴定出80个PFK基因,其中26个基因在[具体物种1]和[具体物种2]中,14个基因在[具体物种3]和[具体物种4]中。系统发育、基因结构和基序分析表明,PFK基因分为两大类,即PFK和PFP,在异源四倍体物种中分别有18个和8个基因,在二倍体物种中分别有10个PFK和4个PFP基因。利用[具体物种]中26个基因的RNA-seq表达数据,进行了共表达网络分析以鉴定枢纽基因。在叶片中的[基因1]、[基因2]、[基因3]、[基因4]、[基因5]、[基因6]以及根组织中的[基因7]、[基因8]、[基因9]、[基因10]被发现为枢纽基因。RT-qPCR分析验证了所鉴定枢纽基因的表达。有趣的是,[基因11]和[基因12]被鉴定为共同的枢纽基因,这些可能是参与干旱胁迫耐受性的真正候选基因。在KEGG富集分析中,L-缬氨酸、L-组氨酸、L-谷氨酰胺、L-丝氨酸、L-高丝氨酸、L-甲硫氨酸、L-半胱氨酸等氨基酸以及葡萄糖酸显著上调,而糖类,主要是1-磷酸果糖、D-甘露醇、D-山梨醇、卫矛醇和乳糖,在干旱胁迫期间显著下调。全基因组分析为更深入了解PFK基因铺平了道路,并为未来研究PFK在增强棉花干旱胁迫耐受性和糖代谢中的作用奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d7b/9251378/3aed919a23fa/fgene-13-922024-g001.jpg

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