Molecular characterization and expression patterns of MTP genes under heavy metal stress in mustard (Brassica juncea L.).


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
01 Aug 2024
Historique:
received: 20 04 2024
accepted: 29 07 2024
medline: 2 8 2024
pubmed: 2 8 2024
entrez: 1 8 2024
Statut: epublish

Résumé

Members of the Metal Tolerance Protein (MTP) family are critical in mediating the transport and tolerance of divalent metal cations. Despite their significance, the understanding of MTP genes in mustard (Brassica juncea) remains limited, especially regarding their response to heavy metal (HM) stress. In our study, we identified MTP gene sets in Brassica rapa (17 genes), Brassica nigra (18 genes), and B. juncea (33 genes) using the HMMER (Cation_efflux; PF01545) and BLAST analysis. For the 33 BjMTPs, a comprehensive bioinformatics analysis covering the physicochemical properties, phylogenetic relationships, conserved motifs, protein structures, collinearity, spatiotemporal RNA-seq expression, GO enrichment, and expression profiling under six HM stresses (Mn

Identifiants

pubmed: 39090207
doi: 10.1038/s41598-024-68877-8
pii: 10.1038/s41598-024-68877-8
doi:

Substances chimiques

Metals, Heavy 0
Plant Proteins 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

17857

Subventions

Organisme : Research Foundation of Education Bureau of Hunan Province, China
ID : 23B0809
Organisme : Research Foundation of Education Bureau of Hunan Province, China
ID : 22B0844
Organisme : National Natural Science Foundation of China
ID : 32371589
Organisme : Hunan Provincial Natural Science Foundation of China
ID : 2023JJ50083

Informations de copyright

© 2024. The Author(s).

Références

Tiwari, S. & Lata, C. Heavy metal stress, signaling, and tolerance due to plant-associated microbes: An overview. Front. Plant Sci. 9, 336111 (2018).
Riyazuddin, R. et al. A comprehensive review on the heavy metal toxicity and sequestration in plants. Biomolecules 12(1), 43 (2021).
pubmed: 35053191 pmcid: 8774178
Williams, L. E. & Mills, R. F. P(1B)-ATPases—An ancient family of transition metal pumps with diverse functions in plants. Trends Plant Sci. 10(10), 491–502 (2005).
pubmed: 16154798
Clemens, S. Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants. Biochimie 88(11), 1707–1719 (2006).
pubmed: 16914250
Öztürk, M., Ashraf, M., Aksoy, A., Ahmad, M.S.A. & Hakeem, K.R. Plants, pollutants and remediation. Berlin/Heidelberg, Germany: Springer Netherlands, pp. 251–268 (2015).
Zhang, Y., O’Loughlin, E. J. & Kwon, M. J. Antimony redox processes in the environment: A critical review of associated oxidants and reductants. J. Hazard. Mater. 431, 128607 (2022).
pubmed: 35359101
Vishwakarma, K. et al. Avenues of the membrane transport system in adaptation of plants to abiotic stresses. Crit. Rev. Biotechnol. 39(7), 861–883 (2019).
pubmed: 31362527
Yadav, B. et al. Plant mineral transport systems and the potential for crop improvement. Planta 253(45), 1–30 (2021).
Hall, J. L. & Williams, L. E. Transition metal transporters in plants. J. Exp. Bot. 54(393), 2601–2613 (2003).
pubmed: 14585824
Nies, D. H. & Silver, S. Ion efflux systems involved in bacterial metal resistances. J. Ind. Microbiol. 14, 186–199 (1995).
pubmed: 7766211
Gustin, J. L., Zanis, M. J. & Salt, D. E. Structure and evolution of the plant cation diffusion facilitator family of ion transporters. BMC Evol. Biol. 11(76), 1–13 (2011).
Kolaj-Robin, O., Russell, D., Hayes, K. A., Pembroke, J. T. & Soulimane, T. Cation diffusion facilitator family: Structure and function. FEBS Lett. 589(12), 1283–1295 (2015).
pubmed: 25896018
Montanini, B., Blaudez, D., Jeandroz, S., Sanders, D. & Chalot, M. Phylogenetic and functional analysis of the Cation Diffusion Facilitator (CDF) family: Improved signature and prediction of substrate specificity. BMC Genom. 8(107), 1–16 (2007).
Arrivault, S., Senger, T. & Krämer, U. The Arabidopsis metal tolerance protein AtMTP3 maintains metal homeostasis by mediating Zn exclusion from the shoot under Fe deficiency and Zn oversupply. Plant J. 46(5), 861–879 (2006).
pubmed: 16709200
Eroglu, S. et al. Metal Tolerance Protein 8 mediates manganese homeostasis and iron reallocation during seed development and germination. Plant Physiol. 174(3), 1633–1647 (2017).
pubmed: 28461400 pmcid: 5490884
Fujiwara, T. et al. A high molecular mass zinc transporter MTP12 forms a functional heteromeric complex with MTP5 in the Golgi in Arabidopsis thaliana. FEBS J. 282(10), 1965–1979 (2015).
pubmed: 25732056
Mourato, M. P. et al. Effect of heavy metals in plants of the genus Brassica. Int. J. Mol. Sci. 16(8), 17975–17998 (2015).
pubmed: 26247945 pmcid: 4581231
Małecka, A. et al. Activation of antioxidative and detoxificative systems in Brassica juncea L. plants against the toxicity of heavy metals. Sci. Rep. 11(1), 22345 (2021).
pubmed: 34785730 pmcid: 8595722
Yang, Z. et al. Metabolic profiles in the xylem sap of Brassica juncea exposed to cadmium. Physiol. Plant. 175(2), e13886 (2023).
pubmed: 36862032
Xu, J., Chai, T., Zhang, Y., Lang, M. & Han, L. The cation-efflux transporter BjCET2 mediates zinc and cadmium accumulation in Brassica juncea L. leaves. Plant Cell Rep. 28, 1235–1242 (2009).
pubmed: 19495770
Lang, M. et al. Functional characterization of BjCET3 and BjCET4, two new cation-efflux transporters from Brassica juncea L. J. Exp. Bot. 62(13), 4467–4480 (2011).
pubmed: 21652531 pmcid: 3170545
Han, L. et al. Identification and functional analysis of cation-efflux transporter 1 from Brassica juncea L. BMC Plant Biol. 22(1), 174 (2022).
pubmed: 35387616 pmcid: 8985314
Lu, M. & Fu, D. Structure of the zinc transporter YiiP. Science. 317(5845), 1746–1748 (2007).
pubmed: 17717154
Jogawat, A., Yadav, B. & Narayan, O. P. Metal transporters in organelles and their roles in heavy metal transportation and sequestration mechanisms in plants. Physiol. Plant. 173(1), 259–275 (2021).
pubmed: 33586164
Wang, Q. et al. Identification, classification, and expression analysis of the Triacylglycerol Lipase (TGL) Gene family related to abiotic stresses in Tomato. Int. J. Mol. Sci. 22(3), 1387 (2021).
pubmed: 33573234 pmcid: 7866549
Xu, G., Guo, C., Shan, H. & Kong, H. Divergence of duplicate genes in exon-intron structure. Proc. Natl. Acad. Sci. USA 109(4), 1187–1192 (2012).
pubmed: 22232673 pmcid: 3268293
Chen, Z. et al. Mn tolerance in rice is mediated by MTP8.1, a member of the cation diffusion facilitator family. J. Exp. Bot. 64(14), 4375–4387 (2013).
pubmed: 23963678 pmcid: 3808320
Zou, C. et al. Cis-regulatory code of stress-responsive transcription in Arabidopsis thaliana. Proc. Natl. Acad. Sci. 108(36), 14992–14997 (2011).
pubmed: 21849619 pmcid: 3169165
El-Sappah, A. H. et al. Genome-wide identification and expression analysis of metal tolerance protein (MTP) gene family in soybean (Glycine max) under heavy metal stress. Mol. Biol. Rep. 50(4), 2975–2990 (2023).
pubmed: 36653731
Wu, D. et al. OPT gene family analysis of potato (Solanum tuberosum) responding to heavy metal stress: Comparative omics and co-expression networks revealed the underlying core templates and specific response patterns. Int. J. Biol. Macromol. 188, 892–903 (2021).
pubmed: 34352321
Wang, X., Wang, C., Zhang, Z. & Shi, G. Genome-wide identification of metal tolerance protein genes in Peanut: differential expression in the root of two contrasting cultivars under metal stresses. Front. Plant Sci. 13, 791200 (2022).
pubmed: 35432419 pmcid: 9011049
Xie, T. et al. Genome-wide identification and expressional profiling of the metal tolerance protein gene family in Brassica napus. Genes (Basel) 13(5), 761 (2022).
pubmed: 35627146
Kang, L. et al. Genomic insights into the origin, domestication and diversification of Brassica juncea. Nat. Genet. 53(9), 1392–1402 (2021).
pubmed: 34493868 pmcid: 8423626
Vision, T. J., Brown, D. G. & Tanksley, S. D. The origins of genomic duplications in Arabidopsis. Science 290(5499), 2114–2117 (2000).
pubmed: 11118139
Schranz, M. E., Lysak, M. A. & Mitchell-Olds, T. The ABC’s of comparative genomics in the Brassicaceae: building blocks of crucifer genomes. Trends Plant Sci. 11(11), 535–542 (2006).
pubmed: 17029932
Laha, S. D., Dutta, S., Schäffner, A. R. & Malay, D. Gene duplication and stress genomics in Brassicas: Current understanding and future prospects. J. Plant Physiol. 255, 153293 (2020).
pubmed: 33181457
Shariatipour, N. & Heidari, B. Meta-analysis of expression of the stress tolerance associated genes and uncover their-regulatory elements in rice (L.). Open Bio. J. 13(1), 39–49 (2020).
Zhang, H. et al. Crucial abiotic stress regulatory network of NF-Y transcription factor in plants. Int. J. Mol. Sci. 24(5), 4426 (2023).
pubmed: 36901852 pmcid: 10002336
Soltis, D. E., Visger, C. J., Marchant, D. B. & Soltis, P. S. Polyploidy: Pitfalls and paths to a paradigm. Amer. J. Bot. 103(7), 1146–1166 (2016).
Segraves, K. A. The effects of genome duplications in a community context. New Phytol. 215(1), 57–69 (2017).
pubmed: 28418074
John, R., Ahmad, P., Gadgil, K. & Sharma, S. Heavy metal toxicity: Effect on plant growth, biochemical parameters and metal accumulation by Brassica juncea L. Int. J. Plant Prod. 3, 65–76 (2009).
Shekhawat, K., Rathore, S. S., Premi, O. P., Kandpal, B. K. & Chauhan, J. S. Advances in agronomic management of Indian mustard (Brassica juncea (L.) Czernj. Cosson): An overview. Int. J. Agric. 2012, 1–14 (2012).
Desbrosses-Fonrouge, A. G. et al. Arabidopsis thaliana MTP1 is a Zn transporter in the vacuolar membrane which mediates Zn detoxification and drives leaf Zn accumulation. FEBS Lett. 579(19), 4165–4174 (2005).
pubmed: 16038907
Menguer, P. K. et al. Functional analysis of the rice vacuolar zinc transporter OsMTP1. J. Exp. Bot. 64(10), 2871–2883 (2013).
pubmed: 23761487 pmcid: 3697945
Migocka, M. et al. Two metal-tolerance proteins, MTP1 and MTP4, are involved in Zn homeostasis and Cd sequestration in cucumber cells. J. Exp. Bot. 66(3), 1001–1015 (2015).
pubmed: 25422498
Chen, C. et al. TBtools-II: A “one for all, all for one” bioinformatics platform for biological big-data mining. Mol. Plant. 16(11), 1733–1742 (2023).
pubmed: 37740491
Kumar, S., Stecher, G. & Tamura, K. MEGA7: Molecular evolutionary genetics analysis version 7.0 for bigger datasets. Mol. Biol. Evol. 33(7), 1870–1874 (2016).
pubmed: 27004904 pmcid: 8210823
Yang, L. et al. Bioinformatic analysis of wheat metal tolerance protein (MTP) gene family and its role under stress. Acta Bot. Boreal. Occident. Sin. 40(7), 1123–1134 (2020) (In Chinese).
Xiao, L. et al. Mutations in the CDS and promoter of BjuA07. CLV1 cause a multilocular trait in Brassica juncea. Sci. Rep. 8(1), 5339 (2018).
pubmed: 29593311 pmcid: 5871799

Auteurs

Liang You (L)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Jialin Sheng (J)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Guoxiang Jiang (G)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Hao Chen (H)

College of Agronomy, Hunan Agricultural University, Changsha, 410128, China.

Yuhui Yuan (Y)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Sha Gong (S)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Mingli Yan (M)

Crop Research Institute, Hunan Academy of Agricultural Sciences, Changsha, 410125, China.

Junhe Hu (J)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Guohong Xiang (G)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Renyan Duan (R)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China.

Yong Chen (Y)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China. henon@163.com.

Xianjun Liu (X)

College of Agriculture and Biology, Key Laboratory of Development and Utilization and Quality and Safety Control of Characteristic Agricultural Resources in Central Hunan of College of Hunan Province, Hunan University of Humanities, Science and Technology, Loudi, 417000, Hunan, China. xjliu82@126.com.

Articles similaires

Genome, Chloroplast Phylogeny Genetic Markers Base Composition High-Throughput Nucleotide Sequencing
Animals Hemiptera Insect Proteins Phylogeny Insecticides
Amaryllidaceae Alkaloids Lycoris NADPH-Ferrihemoprotein Reductase Gene Expression Regulation, Plant Plant Proteins
Drought Resistance Gene Expression Profiling Gene Expression Regulation, Plant Gossypium Multigene Family

Classifications MeSH