HUBEI AGRICULTURAL SCIENCES ›› 2021, Vol. 60 ›› Issue (8): 5-7.doi: 10.14088/j.cnki.issn0439-8114.2021.08.001
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WANG Xin-yue, LIU Pei-yuan, YU Bing-qing, ZHANG Yan-feng, DING Bai-xiang, YAN Han-chi
Received:
2020-04-18
Published:
2021-05-07
CLC Number:
WANG Xin-yue, LIU Pei-yuan, YU Bing-qing, ZHANG Yan-feng, DING Bai-xiang, YAN Han-chi. Research advances in plant cyclic nucleotide-gated channels[J]. HUBEI AGRICULTURAL SCIENCES, 2021, 60(8): 5-7.
[1] BEAVO J A,BRUNTON L L.Cyclic nucleotide research——Still expanding after half a century[J]. Nature reviews molecular cell biology,2002,3(9):710-718. [2] GROSS I,DURNER J.In Search of enzymes with a role in 3′, 5′-cyclic guanosine monophosphate metabolism in plants[J]. Frontiers in plant science,2016,7:576. [3] CRANENK B, ZAGOTTAW N.CNG and HCN channels: Two peas, one pod[J]. Annual review of physiology,2006,68:375-401. [4] WITTERS E, VANHOUTTE K, DEWITTE W, et al.Analysis of cyclic nucleotides and cytokinins in minute plant samples using phase-system switching capillary electrospray-liquid chromatography-tandem mass spectrometry[J]. Phytochemical analysis,1999,10(3):143-151. [5] PANDEY G K,SHARMA M, JHA S K.Role of cyclic nucleotide gated channels in stress management in plants[J]. Current genomics,2016,17(4):315-329. [6] DUSZYN M, ŚWIEZAWSKA B, SZMIDT-JAWORSKA A, et al.Cyclic nucleotide gated channels (CNGCs) in plant signalling-currentknowledge and perspectives[J]. Journal of plant physiology,2019,241:153035. [7] SZMIDT-JAWORSK A, JAWORSKIK, TRETYNA, et al.Biochemical evidence for a cGMP-regulated protein kinase in [8] HUSSAIN J,CHEN J,LOCATO V, et al.Constitutive cyclic GMP accumulation in [9] ARAVIND L,PONTING C P.The GAF domain:An evolutionary link between diverse phototransducing proteins[J]. Trends in biochemical sciences,1997,22(12):458-459. [10] ŚWIEZAWSKA B,DUSZYN M, JAWORSKI K, et al.Downstream targets of cyclic nucleotides in plants[J]. Frontiers in plant science, 2018, 9:1428. [11] SCHUURINK R C,SHARTZER S F,FATH A,et al.Characterization of a calmodulin-binding transporter from the plasma membrane of barley aleurone[J]. Proceedings of the national academy of sciences,1998, 95(4):1944-1949. [12] NAWAZ Z,KAKAR K,SAANDM A, et al.Cyclic nucleotide-gated ion channel gene family in rice, identification, characterization and experimental analysis of expression response to plant hormones, biotic and abiotic stresses[J]. BMC genomics,2014,15(1):853. [13] SAANDM A,XU Y P,LI W, et al.Cyclic nucleotide gated channel gene family in tomato: Genome-wide identification and functional analyses in disease resistance[J]. Frontiers in plant science,2015,6:303. [14] CHEN J, YIN H, GU J, et al.Genomic characterization, phylogenetic comparison and differential expression of the cyclic nucleotide-gated channels gene family in pear ( [15] KAKAR K U, ZARQA N, KHADIJA K, et al.Comprehensive genomic analysis of the CNGC gene family in brassica oleracea:Novel insights into synteny, structures, and transcript profiles[J]. Genomics, 2017,18(1):869. [16] MÄSER P, THOMINE S, SCHROEDER J I, et al. Phylogenetic relationships within cation transporter families of [17] JIA G,ASHRAFUL I M,HAOCHENG L,et al.Genome-wide identification of cyclic nucleotide-gated ion channel gene family in wheat and functional analyses of TaCNGC14 and TaCNGC16[J]. Frontiers in plant science, 2018, 9:18. [18] FISCHER C,DEFALCO T A,KARIA P,et al.Calmodulin as a Ca2+-sensing subunit of arabidopsis cyclic nucleotide-gated channel complexes[J]. Plant & cell physiology,2017,58:1208-1221. [19] PAN Y,CHAI X,GAO Q,et al.Dynamic interactions of plant CNGC subunits and calmodulins drive oscillatory Ca2+ channel activities[J]. Developmental cell, 2019,48:710-725. [20] TIAN W,HOU C,REN Z,et al.A calmodulin-gated calcium channel links pathogen patterns to plant immunity[J]. Nature,2019,572(7767):131-135. [21] IZUMI M,YUICHI N,YOSHIKI N,et al.A cyclic nucleotide-gated channel, HvCNGC2-3, is activated by the co-presence of Na+ and K+ and permeable to Na+ and K+ non-selectively[J]. Plants, 2018, 7(3):61. [22] HUA B G, MERCIER R W, ZIELINSKI R E, et al.Functional interaction of calmodulin with a plant cyclicnucleotide gated cation channel[J]. Plant physiol biochem,2003,41:945-954. [23] CORNELIA F, ANNETTE K, STEFAN H, et al.An IQ domain mediates the interaction with calmodulin in a plant cyclic nucleotide-gated channel[J]. Plant and cell physiology,2013,4(4):573-584. [24] DEFALCO T A, MARSHALL C B, MUNRO K, et al.Multiple calmo -dulin-binding sites positively and negatively regulate arabidopsis cyclicnucleotide-gated channel12[J]. Plant cell,2016,28:1738-1751. [25] LENG Q, MERCIER R W,HUA B G, et al.Electrophysiological analysis of cloned cyclic nucleotide-gatedion channels[J]. Plant physiology, 2002, 128(2):400-410. [26] WANG Y,KANG Y,MA C, et al.CNGC2 is a Ca2+ influx channel that prevents accumulation of apoplastic Ca2+ in the leaf[J]. Plant physiology, 2017,173(2):1342-1354. [27] ZHANG H W,DONG C,ZHANG Y,et al.An apple cyclic nucleotide-gated ion channel gene highly responsive to botryosphaeria dothidea infection enhances the susceptibility of nicotiana benthamiana to bacterial and fungal pathogens[J]. Plant science:An international journal of experimental plant biology,2018,269:94-105. [28] WANG Y F,MUNEMASA S,NISHIMURA N, et al.Identification of cyclic GMP-activated nonselective Ca2+-permeable cationchannels and associated [29] ZHANG Z,HOU C,TIAN W,et al.Electrophysiological studies revealed cam1-mediated regulation of the calcium channel CNGC12[J]. Frontiers in plant science,2019,10:1090. [30] GONG D, CHI X, WEI J, et al.Modulation of cardiac ryanodine receptor 2 bycalmodulin[J]. Nature,2019,572(7769):347-351. [31] BOCKK W,HONYS D,WARDJ M,et al.Integrating membrane transport with male gametophyte development and function through transcriptomics[J]. Plant physiology, 2006, 140(4):1151-1168. [32] GAO Q F, GU L L, WANG H Q, et al.Cyclic nucleotide-gated channel 18 is an essential Ca2+ channel in pollen tube tips for pollen tube guidance to ovules in Arabidopsis[J]. Proceedings of the national academy of sciences,2016,113(11):3096-3101. [33] FORYUNA A,LEE J, UNG H, et al.Crossroads of stress responses,development and flowering regulation-the multiple roles of cyclic nucleotide gated ion channel2[J]. Plant signaling & behavior,2015,10(3):e989758. [34] LI X, BORSICS T,HARRINGTON H M, et al. [35] SANDERS D,MAATHUIS F J M, GOBERT A, et al. [36] SHIH H W,DEPEWC L,MILLER N D, et al.The cyclic nucleotide-gated channel CNGC14 regulates root gravitropism in [37] ZHANG S,PAN Y,TIAN W,et al. [38] NAWAZ Z, KAKAR K U, ULLAH R, et al.Genome-wide identification, evolution and expression analysis of cyclic nucleotide-gated channels in tobacco ( [39] CHARPENTIER M, SUN J, MARTINS T V, et al.Nuclear-localized cyclic nucleotide-gated channels mediate symbiotic calcium oscillations[J]. Science,2016,352(6289):1102-1105. [40] JIN Y, JING W, ZHANG Q, et al.Cyclic nucleotide gated channel10 negatively regulates salt tolerance by mediating Na+ transport in Arabidopsis[J]. Journal of plant research,2015,128(1):211-220. [41] KUGLER A, KOHLER B, PALME K, et al.Salt-dependent regulation of a CNG channel subfamily in arabidopsis[J]. BMC plant biology,2009,9(4):179-182. [42] PLWTT D C, MOLLER I S.Na+ transport in glycophytic plants:What we know and would like to know[J]. Plant cell & environment,2010,33(4):612-626. [43] MASSANGE-SANCHEZ J A, PALMEROS-SUAREZ P A, ESPITIA-RANGEL E, et al.Overexpression of grain amaranth ( [44] LADWIG F, DAHLKE R I,STUHRWOHLDT S, et al.Phytosulfokine regulates growth in Arabidopsis through a response module at the plasma membrane that includes cyclic nucleotide-gated channel17, H+-ATPase, and BAK1[J]. The plant cell,2015,27(6):1718-1729. [45] SUNKAR R,KAPLAN B,BOUCHE N,et al.Expression of a truncated tobacco NtCBP4 channel in transgenic plants and disruption of the homologous [46] HE X,ZHENG W,CAO F,et al.Identification and comparative analysis of the microRNA transcriptome in roots of two contrasting tobacco genotypes in response to cadmium stress[J]. Scientific reports,2016,6:32805. [47] MOON J Y, BELLOEIL C, IANNA M L, et al. [48] SINGH D,SINGH C K,TAUNK J,et al.Transcriptome analysis of lentil(Lens culinaris Medikus) in response to seedling drought stress[J]. BMC genomics,2017,18(1):206. [49] GAO F,HAN X,WU J,et al.A heat-activated calcium-permeable channel- [50] FINKA A, CUENDET A F H, MAATHUIS F J M,et al. Plasma membrane cyclic nucleotide gated calcium channels control land plant thermal sensing and acquired thermotolerance[J]. Plant cell,2012,24(8):3333-3348. [51] KATANO K, KATAOKA R, FUJII M,et al.Differences between seedlings and flowers in anti-ROS based heat responses of Arabidopsis plants deficient in cyclic nucleotide gated channel2[J]. Plant physiology & biochemistry, 2018,123:288-296. [52] THOEN M P,DAVILA OLIVAS N H,KLOTH K J,et al.Genetic architecture of plant stress resistance:Multi-trait genome-wide association mapping[J].New phytologist,2017,213(3):1346-1362. [53] WANG L X,LI M,LIU Z G,et al.Genome-wide identification of [54] SIVANKALYANI V,SELA N,FEYGENBERG O,et al.Transcriptome dynamics in mango fruit peel reveals mechanisms of chilling stress[J]. Frontiers in plant science,2016,7:1579. [55] DODD A N, KUDLA J, SANDERS D.The language of calcium signaling[J]. Annual review of plant biology, 2010,61(1):593-620. [56] SARA M, ELEONORA C, FRANCESCA S, et al.Development of a qPCR strategy to select bean genes involved in plant defense response and regulated by the trichoderma velutinum-rhizoctonia solani interaction[J]. Frontiers in plant science,2016,7:1109. [57] GUO S C, ZUO Y C, ZHANG Y F, et al.Large-scale transcriptome comparison of sunflower genes responsive to |
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