Abstract:Calcium-dependent protein kinases (CDPKs or CPKs) function as Ca2+ sensors and effectors to directly translate Ca2+ signals into downstream phosphorylation signals. CDPKs are involved in plant growth and developmental processes, as well as responses to abiotic and biotic stresses. However, little information is available about the CDPK family in Saccharum plants. In this study, based on the published Saccharum spontaneum genome data, the CDPK gene family members of S. spontaneum were identified by bioinformatics methods, and a total of 90 CDPKs were identified, whose physical and chemical parameters, chromosomal locations, gene duplication, phylogenetic relationships, evolutionary characteristics, gene structure, and motif distribution were analyzed. Syntenic analysis showed that consensuses in CDPKs might have existed before the species divergence between S. spontaneum and Oryza sativa . The selection pressure analysis showed that CDPK genes in S. spontaneum were positively selected in the process of evolution and might play important roles in the evolution of plants. Transcriptome analysis showed that most SsCDPKs exhibited different expression levels in different tissues and developmental stages. In addition, many SsCDPKs in sugarcane hybrid variety Yuetang 55 (YT55) exhibited different expression profile under low-potassium and low-nitrogen treatments. The diverse expression of SsCDPKs suggested potential important function of SsCDPKs in regulating the development and responses to low-potassium and low-nitrogen stresses of Saccharum plants. This study provides a reference for further analysis of roles of Saccharum CDPK genes in the development and responses to nutrition stresses.
[1] 沙建川, 葛顺峰, 丰艳广, 等. 2018. 不同硝态氮供应水平对平邑甜茶生长及氮素吸收利用和分配特性的影响[J]. 中国农学通报, 34(03): 98-103. (Sha J C, Ge S F, Feng Y G, et al.2018. Effects on growth and 15N absorption, utilization and distribution of Malus hupehensis under different nitrate nitrogen levels[J]. Chinese Agricultural Science Bulletin, 34(03): 98-103.) [2] Bailey T L, Johnson J, Grant C E, et al.2015. The MEME suite[J]. Nucleic Acids Research, 43(W1): W39-W49. [3] Boudsocq M, Sheen J.2013. CDPKs in immune and stress signaling[J]. Trends in Plant Science, 18(1): 30-40. [4] Boudsocq M, Willmann M R, Mccormack M, et al.2010. Differential innate immune signaling via Ca2+ sensor protein kinases[J]. Nature, 464(7287): 418-422. [5] Cheng S, Willmann M R, Chen H, et al.2002. Calcium signaling through protein kinases. The Arabidopsis calcium-dependent protein kinase gene family[J]. Plant Physiology, 129(2): 469-485. [6] Coca M, San S B.2010. AtCPK1 calcium-dependent protein kinase mediates pathogen resistance in Arabidopsis[J]. Plant Journal, 63(3): 526-540. [7] Frattini M, Morello L, Breviario D.1999. Rice calcium-dependent protein kinase isoforms OsCDPK2 and OsCDPK11 show different responses to light and different expression patterns during seed development[J]. Plant Molecular Biology, 41(6): 753-764. [8] Gao W, Xu F, Guo D, et al.2018. Calcium-dependent protein kinases in cotton: Insights into early plant responses to salt stress[J]. BMC Plant Biology, 18(1): 15. [9] Klimecka M, Muszynska G.2007. Structure and functions of plant calcium-dependent protein kinases[J]. Acta Biochimica Polonica, 54(2): 219-233. [10] Kong X, Lv W, Jiang S, et al.2013. Genome-wide identification and expression analysis of calcium-dependent protein kinase in maize[J]. BMC Genomics, 14: 433. [11] Li M, Hu W, Ren L, et al.2020. Identification, expression, and interaction network analyses of the CDPK gene family reveal their involvement in the development, ripening, and abiotic stress response in banana[J]. Biochemical Genetics, 58(1): 40-62. [12] Li Y, Fei X, Dai H, et al.2019. Genome-wide identification of calcium-dependent protein kinases in Chlamydomonas reinhardtii and functional analyses in nitrogen deficiency-induced oil accumulation[J]. Frontiers in Plant Science, 10: 1147. [13] Morello L, Frattini M, Gianì S, et al.2000. Overexpression of the calcium-dependent protein kinase OsCDPK2 in transgenic rice is repressed by light in leaves and disrupts seed development[J]. Transgenic Research, 9(6): 453-462. [14] Myers C, Romanowsky S M, Barron Y D, et al.2009. Calcium-dependent protein kinases regulate polarized tip growth in pollen tubes[J]. The Plant Journal, 59(4): 528-539. [15] Ranty B, Aldon D, Cotelle V, et al.2016. Calcium sensors as key hubs in plant responses to biotic and abiotic stresses[J]. Frontiers in Plant Science, 7: 327. [16] Ray S, Agarwal P, Arora R, et al.2007. Expression analysis of calcium-dependent protein kinase gene family during reproductive development and abiotic stress conditions in rice (Oryza sativa L. ssp. indica)[J]. Molecular Genetics and Genomics, 278(5): 493-505. [17] Saijo Y, Hata S, Kyozuka J, et al.2000. Over-expression of a single Ca2+-dependent protein kinase confers both cold and salt/drought tolerance on rice plants[J]. The Plant Journal, 23(3): 319-327. [18] Shi S, Li S, Asim M, et al.2018. The Arabidopsis calcium-dependent protein kinases (CDPKs) and their roles in plant growth regulation and abiotic stress responses[J]. International Journal of Molecular Sciences, 19(7): 1900. [19] Tong X, Cao A, Wang F, et al.2019. Calcium-dependent protein kinase genes in Glycyrrhiza uralensis appear to be involved in promoting the biosynthesis of glycyrrhizic acid and flavonoids under salt stress[J]. Molecules, 24(9): 1837. [20] Valliyodan B, Nguyen H T.2006. Understanding regulatory networks and engineering for enhanced drought tolerance in plants[J]. Current Opinion in Plant Biology, 9(2): 189-195. [21] Wang J, Xu Y, Munyampundu J, et al.2016. Calcium-dependent protein kinase (CDPK) and CDPK-related kinase (CRK) gene families in tomato: Genome-wide identification and functional analyses in disease resistance[J]. Molecular Genetics and Genomics, 291(2): 661-676. [22] Wang J, Huang S, Zhang N, et al.2015. Genome-wide expression patterns of calcium-dependent protein kinases in Toxoplasma gondii[J]. Parasites & Vectors, 8(1): 304. [23] Wen F, Ye F, Xiao Z, et al.2020. Genome-wide survey and expression analysis of calcium-dependent protein kinase (CDPK) in grass Brachypodium distachyon[J]. BMC Genomics, 21(1): 1-17. [24] Zhang J, Zhang X, Tang H, et al.2018. Allele-defined genome of the autopolyploid sugarcane Saccharum spontaneum L.[J]. Nature Genetics, 50(11): 1565-1573. [25] Zhu S, Yu X, Wang X, et al.2007. Two calcium-dependent protein kinases, CPK4 and CPK11, regulate abscisic acid signal transduction in Arabidopsis[J]. The Plant Cell, 19(10): 3019-3036. [26] Zou J, Wei F, Wang C, et al.2010. Arabidopsis calcium-dependent protein kinase CPK10 functions in abscisic acid- and Ca2+-mediated stomatal regulation in response to drought stress[J]. Plant Physiology, 154(3): 1232-1243. [27] Zuo R, Hu R, Chai G, et al.2013. Genome-wide identification, classification, and expression analysis of CDPK and its closely related gene families in poplar (Populus trichocarpa)[J]. Molecular Biology Reports, 40(3): 2645-2662.