Copper mitigates salinity stress by regulating water status, photosynthetic pigments and ion homeostasis and increases the yield of Eggplant (Solanum melongena).


Journal

BMC plant biology
ISSN: 1471-2229
Titre abrégé: BMC Plant Biol
Pays: England
ID NLM: 100967807

Informations de publication

Date de publication:
05 Oct 2024
Historique:
received: 03 05 2024
accepted: 24 09 2024
medline: 5 10 2024
pubmed: 5 10 2024
entrez: 4 10 2024
Statut: epublish

Résumé

Eggplant (Solanum melongena) is moderately sensitive to salinity. Seed priming and exogenous supplementation are technique that enhances germination, growth, and crop yield by overcoming salt stress. Therefore, this study was designed to understand the role of seed priming and copper (Cu) supplementation in modulating salt tolerance in eggplant. When exposed to salt stress, eggplant seedlings showed significantly higher Na

Identifiants

pubmed: 39367326
doi: 10.1186/s12870-024-05625-0
pii: 10.1186/s12870-024-05625-0
doi:

Substances chimiques

Copper 789U1901C5
Water 059QF0KO0R
Ions 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

927

Informations de copyright

© 2024. The Author(s).

Références

Brenes M, Solana A, Boscaiu M, Fita A, Vicente O, Calatayud Á, et al. Physiological and biochemical responses to salt stress in cultivated eggplant. Agronomy. 2020;10(5):651.
doi: 10.3390/agronomy10050651
Mennella G, Lo Scalzo R, Fibiani M, D’Alessandro A, Francese G, Toppino L, et al. Chemical and bioactive quality traits during fruit ripening in eggplant (S. melongena L.) and allied species. J Agric Food Chem. 2012;60(47):11821–31.
doi: 10.1021/jf3037424
Plazas M, López Gresa MP, Vilanova S, Torres C, Hurtado M, Gramazio P, et al. Diversity and relationships in key traits for functional and apparent quality in a collection of eggplant: Fruit phenolics content, antioxidant activity, polyphenol oxidase activity, and browning. J Agric Food Chem. 2013;61:8871–9.
doi: 10.1021/jf402429k
Shahzad K, Siddiqi EH, Ahmad S, Zeb U, et al. Exogenous application of indole-3-acetic acid to ameliorate salt induced harmful effects on four eggplants (Solanum melongena L.) varieties. Sci Horticul. 2022;292:110662.
doi: 10.1016/j.scienta.2021.110662
Gonçalves MCR, Diniz MFM, et al. Modesto Efeito Hipolipemiante do extrato seco de berinjela (Solanum melongena L.) em mulheres dislepidemias, sob controle nutricional. Rev Bras Farm. 2006;16:656–63.
doi: 10.1590/S0102-695X2006000500012
Hegazi AM, El-Shraiy AM, Ghoname A. 2015 Alleviation of salt stress adverse effect and enhancing phenolic anti-oxidant content of eggplant by seaweed extract. Gesunde Pflanzen. 2015;67:21–31.
doi: 10.1007/s10343-014-0333-x
Shahbaz M, Mushtaq Z, Andaz F, Masood A. Does proline application ameliorate adverse effects of salt stress on growth, ions and photosynthetic ability of eggplant (Solanum melongena L)? Sci Horticu. 2013;164:507–11.
doi: 10.1016/j.scienta.2013.10.001
Abbas W, Ashraf M, Akram NA. Alleviation of salt-induced adverse effects in eggplant (Solanum melongena L.) by glycinebetaine and sugarbeet extracts. Sci Hortic. 2010;125:188–95.
doi: 10.1016/j.scienta.2010.04.008
Munns R, Tester M. Mechanisms of salinity tolerance. Annu Rev Plant Biol. 2008;59:651–81.
doi: 10.1146/annurev.arplant.59.032607.092911
Qadir M, Oster JD, Schubert S, et al. Sodicity-induced land degradation and its sustainable management: problems and prospects. Land Degrad Dev. 2008;19(4):429–53.
doi: 10.1002/ldr.853
Grattan SR, Grieve CM. Salinity–mineral nutrient relations in horticultural crops. Sci Hortic. 1999;78(1–4):127–57.
Mittler R. Oxidative stress, antioxidants, and stress tolerance. Trends Plant Sci. 2002;7(9):405–10.
doi: 10.1016/S1360-1385(02)02312-9
Koca M, Bor M, Ozdemir F, Turkan I. The effect of salt stress on lipid peroxidation, antioxidative enzymes and proline content of sesame cultivars. Environ Exp Bot. 2007;60(3):344–51.
doi: 10.1016/j.envexpbot.2006.12.005
Jaleel CA, Gopi R, Sankar B, Manivannan P, et al. Studies on germination, seedling vigour, lipid peroxidation, and proline metabolism in Catharanthus roseus seedlings under salt stress. S Afr J Bot. 2007;73(2):190–5.
doi: 10.1016/j.sajb.2006.11.001
Ashraf M, Harris PJC. Potential biochemical indicators of salinity tolerance in plants. Plant Sci. 2004;166(1):3–16.
doi: 10.1016/j.plantsci.2003.10.024
Ahmed M, Abdel-Fattah GG, Holford P, Korany SM, et al. Funneliformis constrictum modulates polyamine metabolism to enhance tolerance of Zea mays L. to salinity. Microbiol Res. 2023;266:127254.
doi: 10.1016/j.micres.2022.127254
Ulhassan Z, Yang S, He D, Khan AR, et al. Seed priming with nano-silica effectively ameliorates chromium toxicity in Brassica napus. J Hazard Mater. 2023;458:131906.
doi: 10.1016/j.jhazmat.2023.131906
Sheteiwy MS, Ahmed M, Korany SM, Alsherif EA, et al. Arbuscular Mycorrhizal Fungus Rhizophagus irregularis impacts on physiological and biochemical responses of ryegrass and chickpea plants under beryllium stress. Environ Pollut. 2022;315:120356.
doi: 10.1016/j.envpol.2022.120356
Gao C, Sheteiwy MS, Han J, Dong Z, et al. Polyamine biosynthetic pathways and their relation with the cold tolerance of maize (Zea mays L.) seedlings. Plant Signal Behav. 2020;15(11):1807722.
doi: 10.1080/15592324.2020.1807722
AbdElgawad H, Ahmed M, Mohammed AE, Alotaibi MO, et al. Increasing atmospheric CO
doi: 10.1016/j.chemosphere.2022.134044
Alhasany AR, Noaema AH, Alhmadi HB. The role of spraying copper and zinc on the growth and yield of Vicia faba L. IOP Conf Ser : Mater Sci Eng. 2019;571(1):012048.
doi: 10.1088/1757-899X/571/1/012048
Khan RA, Khan A, Qadri TA, Iftikhar M. Response of wheat (Triticum aestivum L.) to Zinc Sulphate and Copper Sulphate under salt stress. Pure Appl Biol. 2020;9(4):2648–58.
doi: 10.19045/bspab.2020.90281
Sariñana-Navarrete MdlÁ, Benavides-Mendoza A, González-Morales S, Juárez-Maldonado A, Preciado-Rangel P, Sánchez-Chávez E, et al. Selenium seed priming and biostimulation influence the seed germination and seedling morphology of jalapeño (Capsicum annuum L). Horticulturae. 2024;10:119.
doi: 10.3390/horticulturae10020119
Abdel Latef AAH, Tahjib-Ul-Arif M, Rhaman MS. Exogenous auxin-mediated salt stress alleviation in Faba Bean (Vicia faba L). Agronomy. 2021;11:547.
doi: 10.3390/agronomy11030547
Mady E, Abd El-Wahed AHM, Awad AH, Asar TO, Al-Farga A, Abd El-Raouf HS, et al. Evaluation of salicylic acid effects on growth, biochemical, yield, and anatomical characteristics of eggplant (Solanum melongena L.) plants under salt stress conditions. Agronomy. 2023;13:2213.
doi: 10.3390/agronomy13092213
Dutta T, Neelapu NRR, Surekha C. Iron, zinc, and copper application in overcoming environmental stress. In: Roychoudhury A, Tripathi DK, editors. Protective chemical agents in the amelioration of plant abiotic stress: biochemical and molecular perspectives. United States: John Wiley & Sons Ltd; 2020. pp. 582–96.
doi: 10.1002/9781119552154.ch29
Mohammadi Z, Kalat SN, Haghaghi RS. Effect of copper sulfate and salt stress on seed germination and proline content of psyllium (Plantago psyllium). Am Eurasian J Agric Environ Sci. 2013;13(2):148–52.
Syuhada N, Jahan MS, Khandaker MM. Application of copper increased corn yield through enhancing physiological functions. Aust J Basic Appl Sci. 2014;8(16):282–6.
Mehrizi MH, Shariatmadari H, Khoshgoftarmanesh AH, Dehghani F. Copper effects on growth, lipid peroxidation, and total phenolic content of rosemary leaves under salinity stress. J Agric Sci Technol. 2012;14:205–12.
Iqbal MN, Rasheed R, Ashraf MY. Exogenously applied zinc and copper mitigate salinity effect in maize (Zea mays L.) by improving key physiological and biochemical attributes. Environ Sci Pollut Res. 2018;25:23883–96.
doi: 10.1007/s11356-018-2383-6
Ayub Q, Mehmood A, Hayat U, Shahzad Q, Ahmad S. Effect of salinity on physiological and biochemical attributes of different Brinjal (Solanum melongena L.) cultivars. Pure Appl Biol. 2020;9(4):2190–8.
doi: 10.19045/bspab.2020.90234
Imran S, Mahamud MA, Paul NC, Chakrobortty J, Sarker P, Paul S, et al. Seed priming and exogenous application of citric acid enhance seedling growth and photosynthetic pigments and mitigate oxidative damage of soybean (Glycine max) under salt stress. Arch Biol Sci. 2023;75(4):407–18.
doi: 10.2298/ABS230804033I
Mondal MRI, Islam MS, Jalil MAB, Rahman MM, Alam MS, Rahman MHH. Krishi projukti hatboi (Handbook of Agro-technology). 5th ed. Bangladesh: Bangladesh Agricultural Research Institute, Gazipur-1701; 2011 2011. p 407–8.
Mostofa MG, Fujita M. Salicylic acid alleviates copper toxicity in rice (Oryza sativa L.) seedlings by up-regulating antioxidative and glyoxalase systems. Ecotoxicology. 2013;22:959–73.
doi: 10.1007/s10646-013-1073-x
Lichtenthaler H. Chlorophylls and carotenoids: pigments of photosynthetic biomembranes. Methods Enzymol. 1987;148:350–82.
doi: 10.1016/0076-6879(87)48036-1
Singh D, Chonkar PK, Dwivedi BS. Soil Plant Water Analysis: A Method Manual. New Delhi, India: Westville Publishing House; 2005 1999. p 200.
Page AL, Miller RH, Keeny DR. Methods of Soil Analysis. In: Page AL, editor. Part-2: Chemical and Microbiological properties. 2nd ed. Madison, Wisconsin, USA: American Society Agronomy Inc; 1982. pp. 252–5.
Negi P, Pandey M, Dorn KM, Nikam AA, Devarumath RM, Srivastava AK, et al. Transcriptional reprogramming and enhanced photosynthesis drive inducible salt tolerance in sugarcane mutant line M4209. J Exp Bot. 2020;71(19):6159–73.
doi: 10.1093/jxb/eraa339
Park HJ, Kim WY, Yun DJ. A role for GIGANTEA: keeping the balance between flowering and salinity stress tolerance. Plant Signal Behav. 2013;8(7):e24820.
doi: 10.4161/psb.24820
Zafar S, Perveen S, Kamran Khan M, Shaheen MR, Hussain R, Sarwar N, et al. Effect of zinc nanoparticles seed priming and foliar application on the growth and physio-biochemical indices of spinach (Spinacia oleracea L.) under salt stress. PLoS ONE. 2022;17(2):Article0263194.
doi: 10.1371/journal.pone.0263194
Ali Q, Daud MK, Haider MZ, Ali S, Rizwan M, Aslam N, et al. Seed priming by sodium nitroprusside improves salt tolerance in wheat (Triticum aestivum L.) by enhancing physiological and biochemical parameters. Plant Physiol Biochem. 2017;119:50–8.
doi: 10.1016/j.plaphy.2017.08.010
Kataria S, Baghel L, Guruprasad KN. Pre-treatment of seeds with static magnetic field improves germination and early growth characteristics under salt stress in maize and soybean. Biocatal Agric Biotechnol. 2017;10:83–90.
doi: 10.1016/j.bcab.2017.02.010
Hussain S, Khalid MF, Hussain M, et al. Role of micronutrients in salt stress tolerance to plants. In: Hasanuzzaman M, Fujita M, Oku H, Nahar K, Hawrylak-Nowak B, editors. Plant nutrients and abiotic stress tolerance. Singapore: Springer; 2018.
Ahmad I, Zhu G, Zhou G, Song X, Hussein Ibrahim ME, Ibrahim Salih EG. Effect of N on growth, antioxidant capacity, and chlorophyll content of sorghum. Agronomy. 2022;12(2):501.
doi: 10.3390/agronomy12020501
Teh CY, Shaharuddin NA, Ho CL, Mahmood M. Exogenous proline significantly affects the plant growth and nitrogen assimilation enzymes activities in rice (Oryza sativa) under salt stress. Acta Physiol Plant. 2016;38:1–10.
doi: 10.1007/s11738-016-2163-1
Feghhenabi F, Hadi H, Khodaverdiloo H, Genuchten MT. Seed priming alleviated salinity stress during germination and emergence of wheat (Triticum aestivum L). Agric Water Manag. 2020;231:106022.
doi: 10.1016/j.agwat.2020.106022
Chakrobortty J, Imran S, Mahamud MA, Sarker P, Paul NC. Effect of citric acid (CA) priming and exogenous application on germination and early seedling growth of okra (Abelmoschus esculentus L.) plants under salinity stress condition. Arch Agricu Environ Sci. 2022;7(3):318–26.
doi: 10.26832/24566632.2022.070303
Neumann PM. Inhibition of root growth by salinity stress: toxicity or an adaptive biophysical response? In: Baluška F, Čiamporová M, Gašparíková O, Barlow PW, editors. Structure and function of roots developments in plant and soil sciences. Dordrecht: Springer; 1995. pp. 299–304.
doi: 10.1007/978-94-017-3101-0_39
Iqbal S, Khan AM, Dilshad I, Moatter K, Ahmed T, Gilani SA. 84. Influence of seed priming with CuSO
Begum N, Gul H, Hamayun M, Rahman IU, Ijaz F, Sohail ZI, et al. Influence of seed priming with ZnSO and CuSO on germination. Middle East J Sci Res. 2014;22(6):879–85.
Sheteiwy MS, An J, Yin M, Jia X, Guan Y, He F, et al. Cold plasma treatment and exogenous salicylic acid priming enhances salinity tolerance of Oryza sativa seedlings. Protoplasma. 2019;256:79–99.
doi: 10.1007/s00709-018-1279-0
Khan RA, Khan A, Qadri TA. Influence of seed priming with FeSO4 on germination, growth and biochemical aspects of mung bean (Vigna radiata L.) grown under NaCl stress. J Biosci Appl Res. 2019;5(4):519–32.
doi: 10.21608/jbaar.2019.115569
Hong WANG, Jin JY. Effects of zinc deficiency and drought on plant growth and metabolism of reactive oxygen species in maize (Zea mays L). Agricu Sci China. 2007;6(8):988–95.
doi: 10.1016/S1671-2927(07)60138-2
Ahmad I, Zhu G, Zhou G, Younas MU, Suliman ME, Liu J, et al. Integrated approaches for increasing plant yield under salt stress. Front Plant Sci. 2023;14:1215343.
doi: 10.3389/fpls.2023.1215343
Khan MAH, Baset Mia MA, Quddus MA, Sarker KK, Rahman M, Skalicky M, et al. Salinity-induced physiological changes in pea (Pisum sativum L.): germination rate, biomass accumulation, relative water content, seedling vigor and salt tolerance index. Plants. 2022;11(24):3493.
doi: 10.3390/plants11243493
Ma Y, Wei Z, Liu J, Liu X, Liu F. Growth and physiological responses of cotton plants to salt stress. J Agron Crop Sci. 2021;207(3):565–76.
doi: 10.1111/jac.12484
Clemens S, Palmgren MG, Krämer U. A long way ahead: understanding and engineering plant metal accumulation. Trends Plant Sci. 2013;18(2):92–101.
doi: 10.1016/j.tplants.2012.08.003
Maksymiec W. Effect of copper on cellular processes in higher plants. Photosynthetica. 1997;34(3):321–42.
doi: 10.1023/A:1006818815528
Jin X, Chen H, Shi Y, Bai L, Hou L, Zhang Y. Effect of citric acid seed priming on the growth and physiological characteristics of tomato seedlings under low phosphorus stress. Chin J Eco-Agric. 2021;29(7):1159–70.
Ahanger MA, Agarwal RM. Salinity stress induced alterations in antioxidant metabolism and nitrogen assimilation in wheat (Triticum aestivum L) as influenced by potassium supplementation. Plant Physiol Biochem. 2017;115:449–60.
doi: 10.1016/j.plaphy.2017.04.017
Tania SS, Rhaman MS, Rauf F, Rahaman MM, et al. Alleviation of salt-inhibited germination and seedling growth of kidney bean by seed priming and exogenous application of salicylic acid (SA) and hydrogen peroxide (H
doi: 10.3390/seeds1020008
Parvin K, Hasanuzzaman M, Bhuyan MB, et al. Comparative physiological and biochemical changes in tomato (Solanum lycopersicum L.) under salt stress and recovery: role of antioxidant defense and glyoxalase systems. Antioxidants. 2019;8(9):350.
doi: 10.3390/antiox8090350
Sheteiwy MS, Shao H, Qi W, Daly P, Sharma A, Shaghaleh H, et al. Seed priming and foliar application with jasmonic acid enhance salinity stress tolerance of soybean (Glycine max L.) seedlings. J Sci Food Agric. 2021;101(5):2027–41.
doi: 10.1002/jsfa.10822
Yakoubi F, Babou FZ, Belkhodja M. Effects of gibberellic and abscisic acids on germination and seedling growth of okra (Abelmoschus esculentus L.) under salt stress. Pertanika J Trop Agric. 2019;42(2):JTAS–1587.
El-Dakak RA, Badr RH, Zeineldein MH, Swedan EA, Batrawy OE, Hassaballah AF, et al. Effect of chilling and salinity stress on photosynthetic performance and ultrastructure of chloroplast in faba beans (Vicia faba L.) leaves. Rend Lincei Scienze Fis E Naturali. 2023;34:447–56.
doi: 10.1007/s12210-022-01131-3
Ferdous J, Mannan MA, Haque MM, Mamun MA, Alam MS. Chlorophyll content, water relation traits and mineral ions accumulation in soybean as influenced by organic amendments under salinity stress. Aust J Crop Sci. 2018;12(12):1806–12.
doi: 10.21475/ajcs.18.12.12.p942
Hamani AKM, Wang G, Soothar MK, Shen X, Gao Y, Qiu R, et al. Responses of leaf gas exchange attributes, photosynthetic pigments and antioxidant enzymes in NaCl-stressed cotton (Gossypium hirsutum L.) seedlings to exogenous glycine betaine and salicylic acid. BMC Plant Biol. 2020;20(1):1–14.
doi: 10.1186/s12870-020-02624-9
Kamiab F. Exogenous melatonin mitigates the salinity damages and improves the growth of pistachio under salinity stress. J Plant Nutr. 2020;43(10):1468–84.
doi: 10.1080/01904167.2020.1730898
Babaei M, Shabani L, Hashemi-Shahraki S. Improving the effects of salt stress by β-carotene and gallic acid using increasing antioxidant activity and regulating ion uptake in Lepidium sativum L. Bot Stud. 2022;63(1):22.
doi: 10.1186/s40529-022-00352-x
Babaei S, Niknam V, Behmanesh M. Nitric oxide induced carotenoid contents in Crocus sativus under salinity. Nat Prod Res. 2021;35(5):888–92.
doi: 10.1080/14786419.2019.1608544
Yruela I. Copper in plants. Braz J Plant Physiol. 2005;17:145–56.
doi: 10.1590/S1677-04202005000100012
Parihar P, Singh S, Singh R, et al. Effect of salinity stress on plants and its tolerance strategies: a review. Environ Sci Pollut Res. 2015;22(6):4056–75.
doi: 10.1007/s11356-014-3739-1
Marschner P, editor. Marschner’s Mineral Nutrition of higher plants. 3rd ed. Amsterdam, Netherlands: Elsevier, Academic; 2012.
Abbas F, Al-Jbawi E, Ibrahim M. Growth and chlorophyll fluorescence under salinity stress in sugar beet (Beta vulgaris L). Int J Environ. 2014;3(1):1–9.
doi: 10.3126/ije.v3i1.9937
Bedirhanoğlu V, Yang H, Shukla MK. Reducing water salinity at flowering stage decreases days to flowering and promotes plant growth and yield in Chile pepper. Hort Sci. 2022;57(9):1128–34.
Balasankar D, Praneetha S, Armugam T, Manivannan N, et al. Assessment of salinity tolerance in Chilli (Capsicum annuum L.) genotypes. Internat J Chem Stud. 2017;5(6):1194–8.
Turhan A, Seniz V, Kuscu H. Genotypic variation in the response of tomato to salinity. Afr J Biotechnol. 2009;8(6):1062–8.
Sahoo S, Borgohain P, Saha B, Moulick D, et al. Seed priming and seedling pre-treatment induced tolerance to drought and salt stress: recent advances. In: Hasanuzzaman M, Fotopoulos V, editors. Priming and pretreatment of seeds and seedlings: implication in plant stress tolerance and enhancing Productivity in Crop plants. Singapore: Springer; 2019. pp. 253–63.
doi: 10.1007/978-981-13-8625-1_12
Ullah N, Basit A, Ahmad I, Ullah I, Shah ST, Mohamed HI, et al. Mitigation the adverse effect of salinity stress on the performance of the tomato crop by exogenous application of Chitosan. Bull Natl Res Cent. 2020;44:1–11.
doi: 10.1186/s42269-020-00435-4
Sarker P, Imran S, Mahamud MA, Paul NC, Chakrobortty J, Rabbi RHM. Exogenous application of synthetic auxin (2, 4-dichlorophenoxyacetic acid) impacts on growth, yield, and nutritional parameters of lentil (Lens culinaris M). J Plant Nutr. 2023;46(19):4559–72.
doi: 10.1080/01904167.2023.2238755
Peña-Calzada K, Olivera‐Viciedo D, Calero‐Hurtado A, Mello Prado R, Habermann E, Lata Tenesaca LF, et al. Silicon mitigates the negative impacts of salt stress in soybean plants. J Sci Food Agric. 2023;13(9):4360–70.
doi: 10.1002/jsfa.12503
Carillo P, Annunziata MG, Pontecorvo G, Fuggi A, Woodrow P. Salinity stress and salt tolerance. In: Shanker A, Venkateswarlu B, editors. Abiotic stress in plants-mechanisms and adaptations. Volume 1. Rijeka: Intechopen; 2011. pp. 21–38.
Zeeshan M, Lu M, Sehar S, Holford P, Wu F. Comparison of biochemical, anatomical, morphological, and physiological responses to salinity stress in wheat and barley genotypes deferring in salinity tolerance. Agronomy. 2020;10(1):127.
doi: 10.3390/agronomy10010127
Iqra L, Rashid MS, Ali Q, Latif I, Mailk A. Evaluation for Na
Selvamani S, Senthil A, Ravichandran V, Djanaguiraman M, Anitha K, Shanmugam PM, et al. Mitigation of salinity stress by application of plant growth promoting substances in rice. Int J Environ Clim. 2023;13(10):2175–85.
doi: 10.9734/ijecc/2023/v13i102879
Gupta B, Huang B. Mechanism of salinity tolerance in plants: physiological, biochemical, and molecular characterization. Int J Genomics. 2014;2014:701596.
doi: 10.1155/2014/701596
Shabala S, Cuin TA. Potassium transport and plant salt tolerance. Physiol Plant. 2008;133(4):651–69.
doi: 10.1111/j.1399-3054.2007.01008.x
Quamruzzaman M, Manik SN, Shabala S, Zhou M. Improving performance of salt-grown crops by exogenous application of plant growth regulators. Biomolecules. 2021;11(6):788.
doi: 10.3390/biom11060788

Auteurs

Shahin Imran (S)

Department of Agronomy, Khulna Agricultural University, Khulna, 9100, Bangladesh. shahinimran124@gmail.com.

Prosenjit Sarker (P)

Department of Genetics and Plant Breeding, Khulna Agricultural University, Khulna, 9100, Bangladesh.

Md Asif Mahamud (MA)

Department of Agricultural Chemistry, Khulna Agricultural University, Khulna, 9100, Bangladesh.

Newton Chandra Paul (NC)

Department of Agronomy, Khulna Agricultural University, Khulna, 9100, Bangladesh.

Jotirmoy Chakrobortty (J)

Department of Soil Science, Khulna Agricultural University, Khulna, 9100, Bangladesh.

Israt Jahan Harine (IJ)

Department of Soil Science, Khulna Agricultural University, Khulna, 9100, Bangladesh.

Md Arifur Rahman (MA)

Department of Agricultural Chemistry, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh.

Mehdi Rahimi (M)

Department of Biotechnology, Institute of Science and High Technology and Environmental Sciences, Graduate University of Advanced Technology, Kerman, Iran. mehdi83ra@yahoo.com.

Articles similaires

Photosynthesis Ribulose-Bisphosphate Carboxylase Carbon Dioxide Molecular Dynamics Simulation Cyanobacteria
Animals Dietary Fiber Dextran Sulfate Mice Disease Models, Animal
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria

A key role for P2RX5 in brown adipocyte differentiation and energy homeostasis.

Maria Razzoli, Seth McGonigle, Bhavani Shankar Sahu et al.
1.00
Animals Adipocytes, Brown Mice Cell Differentiation Male

Classifications MeSH