Genome-wide analysis of plant-type II Ca2+ATPases gene family from rice and Arabidopsis: Potential role in abiotic stresses

拟南芥 生物 ATP酶 非生物胁迫 遗传学 水稻 基因组 同源(生物学) 基因 序列分析 保守序列 型三磷酸腺脢 肽序列 生物化学 突变体
作者
Kazi Md. Kamrul Huda,Sandep Yadav,Mst. Sufara Akhter Banu,Dipesh Kumar Trivedi,Narendra Tuteja
出处
期刊:Plant Physiology and Biochemistry [Elsevier BV]
卷期号:65: 32-47 被引量:56
标识
DOI:10.1016/j.plaphy.2013.01.002
摘要

The Plant Ca2+ATPases are members of the P-type ATPase superfamily and play essential roles in pollen tube growth, vegetative development, inflorescence architecture, stomatal opening or closing as well as transport of Ca2+, Mn2+ and Zn2+. Their role in abiotic stress adaptation by activation of different signaling pathways is emerging. In Arabidopsis, the P-type Ca2+ATPases can be classified in two distinct groups: type IIA (ECA) and type IIB (ACA). The availability of rice genome sequence allowed performing a genome-wide search for P-type Ca2+ATPases proteins, and the comparison of the identified proteins with their homologs in Arabidopsis model plant. In the present study, we identified the P-type II Ca2+ATPases from rice by analyzing their phylogenetic relationship, multiple alignment, cis-regulatory elements, protein domains, motifs and homology percentage. The phylogenetic analysis revealed that rice type IIA Ca2+ATPases clustered with Arabidopsis type IIA Ca2+ATPases and showed high sequence similarity within the group, whereas rice type IIB Ca2+ATPases presented variable sequence similarities with Arabidopsis type IIB members. The protein homology modeling, identification of putative transmembrane domains and conserved motifs of rice P-type II Ca2+ATPases provided information on their functions and structural architecture. The analysis of P-type II Ca2+ATPases promoter regions in rice showed multiple stress-induced cis-acting elements. The expression profile analysis indicated vital roles of P-type II Ca2+ATPases in stress signaling, plant development and abiotic stress responses. The comprehensive analysis and expression profiling provided a critical platform for functional characterization of P-type II Ca2+ATPase genes that could be applied in engineering crop plants with modified calcium signaling and homeostatic pathways.
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