Lotus (Nelumbo nucifera): a multidisciplinary review of its cultural, ecological, and nutraceutical significance

Hang Yang, Simai He, Qi Feng, Zisen Liu, Shibin Xia, Qiaohong Zhou, Zhenbin Wu, Yi Zhang

Bioresources and Bioprocessing ›› 2024, Vol. 11 ›› Issue (1) : 18.

Bioresources and Bioprocessing All Journals
Bioresources and Bioprocessing ›› 2024, Vol. 11 ›› Issue (1) : 18. DOI: 10.1186/s40643-024-00734-y
Review

Lotus (Nelumbo nucifera): a multidisciplinary review of its cultural, ecological, and nutraceutical significance

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Abstract

This comprehensive review systematically examines the multifarious aspects of Nelumbo nucifera, elucidating its ecological, nutritional, medicinal, and biomimetic significance. Renowned both culturally and scientifically, Nelumbo nucifera manifests remarkable adaptability, characterized by its extensive distribution across varied climatic regions, underpinned by its robust rhizome system and prolific reproductive strategies. Ecologically, this species plays a crucial role in aquatic ecosystems, primarily through biofiltration, thereby enhancing habitat biodiversity. The rhizomes and seeds of Nelumbo nucifera are nutritionally significant, being rich sources of dietary fiber, essential vitamins, and minerals, and have found extensive culinary applications. From a medicinal perspective, diverse constituents of Nelumbo nucifera exhibit therapeutic potential, including anti-inflammatory, antioxidant, and anti-cancer properties. Recent advancements in preservation technology and culinary innovation have further underscored its role in the food industry, highlighting its nutritional versatility. In biomimetics, the unique "lotus effect" is leveraged for the development of self-cleaning materials. Additionally, the transformation of Nelumbo nucifera into biochar is being explored for its potential in sustainable environmental practices. This review emphasizes the critical need for targeted conservation strategies to protect Nelumbo nucifera against the threats posed by climate change and habitat loss, advocating for its sustainable utilization as a species of significant value.

Keywords

Nelumbo nucifera / Ecological adaptation / Sustainable utilization / Nutritional value / Medicinal properties

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Hang Yang, Simai He, Qi Feng, Zisen Liu, Shibin Xia, Qiaohong Zhou, Zhenbin Wu, Yi Zhang. Lotus (Nelumbo nucifera): a multidisciplinary review of its cultural, ecological, and nutraceutical significance. Bioresources and Bioprocessing, 2024, 11(1): 18 https://doi.org/10.1186/s40643-024-00734-y

References

[]
Abd Rasid NS, Naim MN, Che Man H, Abu Bakar NF, Mokhtar MN. Evaluation of surface water treated with lotus plant Nelumbo nucifera. J Environ Chem Eng, 2019, 7.
CrossRef Google scholar
[]
Abraham EM, Ganopoulos I, Giagourta P, Osathanunkul M, Bosmali I, Tsaftaris A, Papaioannou A, Madesis P. Genetic diversity of Lotus corniculatus in relation to habitat type, species composition and species diversity. Biochem Syst Ecol, 2015, 63: 59-67.
CrossRef Google scholar
[]
Ali S, Khan AS, Anjum MA, Nawaz A, Naz S, Ejaz S, Hussain S. Effect of postharvest oxalic acid application on enzymatic browning and quality of lotus (Nelumbo nucifera Gaertn.) root slices. Food Chem, 2020, 312.
CrossRef Google scholar
[]
Andjelković U, Gavrović-Jankulović M, Martinović T, Josić D. Omics methods as a tool for investigation of food allergies. TrAC-Trend Anal Chem, 2017, 96: 107-115.
CrossRef Google scholar
[]
Atchudan R, Jebakumar Immanuel Edison TN, Perumal S, Vinodh R, Babu RS, Sundramoorthy AK, Renita AA, Lee YR. Facile synthesis of nitrogen-doped porous carbon materials using waste biomass for energy storage applications. Chemosphere, 2022, 289.
CrossRef Google scholar
[]
Atchudan R, Perumal S, Edison TNJI, Albasher G, Sundramoorthy AK, Vinodh R, Lee YR. Lotus-biowaste derived sulfur/nitrogen-codoped porous carbon as an eco-friendly electrocatalyst for clean energy harvesting. Environ Res, 2022, 214.
CrossRef Google scholar
[]
Bai H, Zhang L, Gu D. Micrometer-sized spherulites as building blocks for lotus leaf-like superhydrophobic coatings. Appl Surf Sci, 2018, 459: 54-62.
CrossRef Google scholar
[]
Benammar C, Hichami A, Yessoufou A, Simonin A-M, Belarbi M, Allali H, Khan NA. Zizyphus lotus L. (Desf) modulates antioxidant activity and human T-cell proliferation. BMC Complement Altern Med, 2010, 10: 54.
CrossRef Google scholar
[]
Cancio I, González-Robles A, Bastida JM, Manzaneda AJ, Salido T, Rey PJ. Habitat loss exacerbates regional extinction risk of the keystone semiarid shrub Ziziphus lotus through collapsing the seed dispersal service by foxes (Vulpes vulpes). Biodivers Conserv, 2016, 25: 693-709.
CrossRef Google scholar
[]
Chaudhari D, Kiran S, Choudhary A, Silveira K, Narwade N, Dhotre D, Khazir J, Mir BA, Shouche YS, Rahi P. Prokaryotic communities adapted to microhabitats on the Indian lotus (Nelumbo nucifera) growing in the high-altitude urban Dal Lake. Int Microbiol, 2023, 26: 257-267.
CrossRef Google scholar
[]
Chen Y, Fan G, Wu H, Wu Y, Mitchell A. Separation, identification and rapid determination of liensine, isoliensinine and neferine from embryo of the seed of Nelumbo nucifera Gaertn. by liquid chromatography coupled to diode array detector and tandem mass spectrometry. J Pharm Biomed Anal, 2007, 43: 99-104.
CrossRef Google scholar
[]
Chen Z, Liu T, Tang J, Zheng Z, Wang H, Shao Q, Chen G, Li Z, Chen Y, Zhu J, Feng T. Characteristics and mechanisms of cadmium adsorption from aqueous solution using lotus seedpod-derived biochar at two pyrolytic temperatures. Environ Sci Pollu Res, 2018, 25: 11854-11866.
CrossRef Google scholar
[]
Chen L, Jeng D, Liao C, Tong D. Wave-induced seabed response around a dumbbell cofferdam in non-homogeneous anisotropic seabed. J Mar Sci Eng, 2019, 7: 189.
CrossRef Google scholar
[]
Chen Y, Wang W, Fan X, Sun J, Li W, Li X, Liu Y. Genetic discontinuities and abundant historical gene flow in wild lotus Nelumbo nucifera populations from the Yangtze River. Aquat Bot, 2019, 158.
CrossRef Google scholar
[]
Chen H, Li J, Yao R, Yan S, Wang Q. Mechanism of lipid metabolism regulation by soluble dietary fibre from micronized and non-micronized powders of lotus root nodes as revealed by their adsorption and activity inhibition of pancreatic lipase. Food Chem, 2020, 305.
CrossRef Google scholar
[]
Chen C, Li G, Zhu F. A novel starch from lotus (Nelumbo nucifera) seeds: composition, structure, properties and modifications. Food Hydrocolloid, 2021, 120.
CrossRef Google scholar
[]
Chen S, Li X, Wu J, Li J, Xiao M, Yang Y, Liu Z, Cheng Y. Plumula nelumbinis: a review of traditional uses, phytochemistry, pharmacology, pharmacokinetics and safety. J Ethnopharmacol, 2021, 266.
CrossRef Google scholar
[]
Chen X, Wan S, Ding J, Jin T, Lu L, Qian Y. Oxygen-sulfur-phosphorus co-doped activated carbon derived from lotus stamens for high-performance supercapacitors. Chinese J Anal Chem, 2021, 49: 75-81.
[]
Chen C, Cheng I, Chen J. Facile method to convert petal effect surface to lotus effect surface for superhydrophobic polydimethylsiloxane. Surf Interfaces, 2022, 30.
CrossRef Google scholar
[]
Chen L, Song H, Xin J, Dong G, Xu F, Su Y, Yang M, Sun H. Comprehensive genome-wide identification and functional characterization of MAPK cascade gene families in Nelumbo. Int J Biol Macromol, 2023, 233.
CrossRef Google scholar
[]
Dang L, Guo J-K, Kong L-B. Design and preparation of lotus root knot Hierarchical porous carbon by highly efficient chemistry activation for electric double layer capacitors. ChemElectroChem, 2021, 8: 4062-4071.
CrossRef Google scholar
[]
Deng J, Su M, Zhang X, Liu X, Damaris RN, Lv S, Yang P. Proteomic and metabolomic analyses showing the differentially accumulation of NnUFGT2 is involved in the petal red-white bicolor pigmentation in lotus (Nelumbo nucifera). Plant Physiol Biochem, 2023, 198.
CrossRef Google scholar
[]
Dhull SB, Chandak A, Collins MN, Bangar SP, Chawla P, Singh A. Lotus seed starch: a novel functional ingredient with promising properties and applications in food—a review. Starch - Stärke, 2022, 74: 2200064.
CrossRef Google scholar
[]
Dhull SB, Chandak A, Chawla P, Goksen G, Rose PK, Rani J. Modifications of native lotus (Nelumbo nucifera G.) rhizome starch and its overall characterization: a review. Int J Biol Macromol, 2023, 253.
CrossRef Google scholar
[]
Dong C, Wang Z, Qin L, Zhang C, Cao L, Li H, Ma X. Overexpression of geranyl diphosphate synthase 1 (NnGGPPS1) from Nelumbo nucifera enhances carotenoid and chlorophyll content and biomass. Gene, 2023, 881.
CrossRef Google scholar
[]
Fan S, Liu H, Zheng G, Wang Y, Wang S, Liu Y, Liu X, Wan Y. Differences in phytoaccumulation of organic pollutants in freshwater submerged and emergent plants. Environ Pollut, 2018, 241: 247-253.
CrossRef Google scholar
[]
Fang Y, Ali A, Gao Y, Zhao P, Li R, Li X, Liu J, Luo Y, Peng Y, Wang H, Liu H, Zhang Z, Pan J. Preparation and characterization of MgO hybrid biochar and its mechanism for high efficient recovery of phosphorus from aqueous media. Biochar, 2022, 4: 40.
CrossRef Google scholar
[]
Fang X, Liu Z, Xiao H, Torki M, Orsat V, Raghavan GSV, Xiao H, Wang H. Performance assessment of an evacuated tube solar-electric hybrid dryer for lotus seeds drying: moisture removal behavior, GHG emission and thermodynamic analysis. J Clean Prod, 2023, 406.
CrossRef Google scholar
[]
Fu Y, Liu F, Li S, Tian D, Dong L, Chen Y, Su Y. Genetic diversity of the wild Asian lotus (Nelumbo nucifera) from Northern China. Hortic Plant J, 2021, 7: 488-500.
CrossRef Google scholar
[]
Fukagawa NK, McKillop K, Pehrsson PR, Moshfegh A, Harnly J, Finley J. USDA’s FoodData Central: what is it and why is it needed today?. Am J Clin Nutr, 2022, 115: 619-624.
CrossRef Google scholar
[]
Gowthami R, Sharma N, Pandey R, Agrawal A. A model for integrated approach to germplasm conservation of Asian lotus (Nelumbo nucifera Gaertn.). Genet Resour Crop Evol, 2021, 68: 1269-1282.
CrossRef Google scholar
[]
Guo HB. Cultivation of lotus (Nelumbo nucifera Gaertn. ssp. nucifera) and its utilization in China. Genet Resour Crop Evol, 2009, 56: 323-330.
CrossRef Google scholar
[]
Guo Z, Liu W. Biomimic from the superhydrophobic plant leaves in nature: binary structure and unitary structure. Plant Sci, 2007, 172: 1103-1112.
CrossRef Google scholar
[]
Guo M, Wu J, Li F, Guo Q, Fan H, Zhao H. A low-cost lotus leaf-based carbon film for solar-driven steam generation. New Carbon Mater, 2020, 35: 436-443.
CrossRef Google scholar
[]
Han X, Liang Q, Rashid A, Qayum A, Rehman A, Zhong M, Sun Y, Liu Y, Ma H, Miao S, Ren X. The effects of different hydrocolloids on lotus root starch gelatinization and gels properties. Int J Biol Macromol, 2024, 257.
CrossRef Google scholar
[]
He Z, Dong T, Wang T, Chen W, Liu X, Li L. Genetic variation of the novel Badnaviruses infecting Nelumbo Nucifera based on the RT/RNase H coding region sequences. Hortic Plant J, 2020, 6: 335-342.
CrossRef Google scholar
[]
Hou Y, Liang Y, Hu H, Tao Y, Zhou J, Cai J. Facile preparation of multi-porous biochar from lotus biomass for methyl orange removal: kinetics, isotherms, and regeneration studies. Bioresour Technol, 2021, 329.
CrossRef Google scholar
[]
Huang H, Huang C, Xu C, Liu R. Development and characterization of lotus-leaf-inspired bionic antibacterial adhesion film through beeswax. Food Packaging Shelf Life, 2022, 33.
CrossRef Google scholar
[]
Huang K, Huang J, Zhao J, Gu Z, Wu J. Natural lotus root-based scaffolds for bone regeneration. Chin Chem Lett, 2022, 33: 1941-1945.
CrossRef Google scholar
[]
Ibrahim RE, Fouda MMS, Younis EM, Abdelwarith AA, Salem GA, Elkady AA, Ismail SH, Davies SJ, Abdel Rahman AN. The anti-bacterial efficacy of zinc oxide nanoparticles synthesized by Nelumbo nucifera leaves against Clostridium perfringes challenge in Oreochromis niloticus. Aquaculture, 2024, 578.
CrossRef Google scholar
[]
Islam MR, Zhang Y, Li Z, Liu H, Chen J, Yang X. Genetic diversity, population structure, and historical gene flow of Nelumbo lutea in USA using microsatellite markers. Aquat Bot, 2020, 160.
CrossRef Google scholar
[]
Jiang X, Wang L, Wang E, Zhang G, Chen B, Wang M, Li F. Flavonoid glycosides and alkaloids from the embryos of Nelumbo nucifera seeds and their antioxidant activity. Fitoterapia, 2018, 125: 184-190.
CrossRef Google scholar
[]
Jin Q, Wang Y, Li X, Wu S, Wang Y, Luo J, Mattson N, Xu Y. Interactions between ethylene, gibberellin and abscisic acid in regulating submergence induced petiole elongation in Nelumbo nucifera. Aquat Bot, 2017, 137: 9-15.
CrossRef Google scholar
[]
Khrolenko YA, Yatsunskaya MS, Gorpenchenko TY, Bezdeleva TA. Development of Nelumbo komarovii Grossh. (Nelumbonaceae) from seeds under artificial conditions. Inland Water Biol, 2019, 12: 18-25.
CrossRef Google scholar
[]
Kim T, Kim HJ, Cho SK, Kang WY, Baek H, Jeon HY, Kim B, Kim D. Nelumbo nucifera extracts as whitening and anti-wrinkle cosmetic agent. Korean J Chem Eng, 2011, 28: 424-427.
CrossRef Google scholar
[]
Klicova M, Oulehlova Z, Klapstova A, Hejda M, Krejcik M, Novak O, Mullerova J, Erben J, Rosendorf J, Palek R, Liska V, Fucikova A, Chvojka J, Zvercova I, Horakova J. Biomimetic hierarchical nanofibrous surfaces inspired by superhydrophobic lotus leaf structure for preventing tissue adhesions. Mater Des, 2022, 217.
CrossRef Google scholar
[]
Koch K, Bhushan B, Barthlott W. Diversity of structure, morphology and wetting of plant surfaces. Soft Matter, 2008, 4: 1943-1963.
CrossRef Google scholar
[]
Kumarihamy M, León F, Pettaway S, Wilson L, Lambert JA, Wang M, Hill C, McCurdy CR, ElSohly MA, Cutler SJ, Muhammad I. In vitro opioid receptor affinity and in vivo behavioral studies of Nelumbo nucifera flower. J Ethnopharmacol, 2015, 174: 57-65.
CrossRef Google scholar
[]
Lamprecht I, Seymour RS, Schultze-Motel P. Direct and indirect calorimetry of thermogenic flowers of the sacred lotus, Nelumbo nucifera. Thermochim Acta, 1998, 309: 5-16.
CrossRef Google scholar
[]
La-ongsri W, Trisonthi C, Balslev H. Management and use of Nelumbo nucifera Gaertn. in Thai wetlands. Wetl Ecol Manag, 2009, 17: 279-289.
CrossRef Google scholar
[]
Lee H-E, Han M-S, Nam S-H. Anticariogenic activity of Nelumbo nucifera leaf extract in oral healthcare. Technol Health Care, 2019, 27: 487-497.
CrossRef Google scholar
[]
Li Y, Smith T, Svetlana P, Yang J, Jin J, Li C. Paleobiogeography of the lotus plant (Nelumbonaceae: Nelumbo) and its bearing on the paleoclimatic changes. Palaeogeogr Palaeocl, 2014, 399: 284-293.
CrossRef Google scholar
[]
Li C, Mo H, Tian D, Xu Y, Meng J, Tilt K. Genetic diversity and structure of American lotus (Nelumbo lutea Willd.) in North America revealed from microsatellite markers. Sci Hortic, 2015, 189: 17-21.
CrossRef Google scholar
[]
Li P, Hu H, Luo S, Zhang L, Gao J. Shelf life extension of fresh lotus pods and seeds (Nelumbo nucifera Gaertn.) in response to treatments with 1-MCP and lacquer wax. Postharvest Biol Tec, 2017, 125: 140-149.
CrossRef Google scholar
[]
Li Y, Hu L, Shen B, Dai C, Xu Q, Liu D, Jiang J, Li Y, Xu M. Rib-like hierarchical porous carbon as reservoir for long-life and high-rate Li-Te batteries. Electrochim Acta, 2017, 250: 10-15.
CrossRef Google scholar
[]
Li S, Chen A, Chen Y, Yang Y, Zhang Q, Luo S, Ye M, Zhou Y, An Y, Huang W, Xuan T, Pan Y, Xuan X, He H, Wu J. Lotus leaf inspired antiadhesive and antibacterial gauze for enhanced infected dermal wound regeneration. Chem Eng J, 2020, 402.
CrossRef Google scholar
[]
Li S, Li J, Zhu Z, Cheng S, He J, Lamikanra O. Soluble dietary fiber and polyphenol complex in lotus root: preparation, interaction and identification. Food Chem, 2020, 314.
CrossRef Google scholar
[]
Li H, Yang X, Zhang Y, Gao Z, Liang Y, Chen J, Shi T. Nelumbo genome database, an integrative resource for gene expression and variants of Nelumbo nucifera. Sci Data, 2021, 8: 38.
CrossRef Google scholar
[]
Li J, Jiao W, Wang Y, Yin Y, He X. Spraying pressure-tuning for the fabrication of the tunable adhesion superhydrophobic coatings between Lotus effect and Petal effect and their anti-icing performance. Chem Eng J, 2022, 434.
CrossRef Google scholar
[]
Li Z, Zhao K, Wang Y, Zheng Z, Zhang C, Gao Y, Du F. Droplet splash and spread on superhydrophobic lotus leaves: direct regulation by tuning the chain length of surfactant. Colloid Surface A, 2022, 648.
CrossRef Google scholar
[]
Li D, Xu C, Zhang H, Li J, Liu F, Huang J, Guo Z. Biomimetic Kevlar aerogel for sewage treatment and all-day fresh water production. Sep Purif Technol, 2023, 315.
CrossRef Google scholar
[]
Li S, Gu Q, Li Z, Zeng Q, Zhong H, Liu M, Chen J, Zhou Y, Liu S, Hu S. The effects of lotus-fish co-culture on the gut microbiome of Hefang crucian carp (Carassis auratus). Reprod Breed, 2023, 3: 143-151.
CrossRef Google scholar
[]
Lin Z, Zhang C, Cao D, Damaris RN, Yang P. The latest studies on lotus (Nelumbo nucifera)-an emerging horticultural model plant. Int J Mol Sci, 2019, 20: 3680.
CrossRef Google scholar
[]
Liu S, Li D, Huang B, Chen Y, Lu X, Wang Y. Inhibition of pancreatic lipase, α-glucosidase, α-amylase, and hypolipidemic effects of the total flavonoids from Nelumbo nucifera leaves. J Ethnopharmacol, 2013, 149: 263-269.
CrossRef Google scholar
[]
Liu R, Shi H, Wang Y, Chen S, Deng J, Liu Y, Li S, Chan Z. Comparative physiological analysis of lotus (Nelumbo nucifera) cultivars in response to salt stress and cloning of NnCIPK genes. Sci Hortic, 2014, 173: 29-36.
CrossRef Google scholar
[]
Liu J, Kattel G, Arp HPH, Yang H. Towards threshold-based management of freshwater ecosystems in the context of climate change. Ecol Model, 2015, 318: 265-274.
CrossRef Google scholar
[]
Liu A, Tian D, Xiang Y, Mo H. Effects of biochar on growth of Asian lotus (Nelumbo nucifera Gaertn.) and cadmium uptake in artificially cadmium-polluted water. Sci Hortic, 2016, 198: 311-317.
CrossRef Google scholar
[]
Liu X, Li N, Du F, Li X, Chang Y, Shi N, Ding Y, Yao D. ‘Zijin Chuoying’: a multicolored and duplicate-layered flowered lotus cultivar. HortScience, 2017, 52: 313-315.
CrossRef Google scholar
[]
Liu J, Dong B, Cui Y, Zhou W, Liu F. An exploration of plant characteristics for plant species selection in wetlands. Ecol Eng, 2020, 143.
CrossRef Google scholar
[]
Liu J, Wang Y, Zhang M, Wang Y, Deng X, Sun H, Yang D, Xu L, Song H, Yang M. Color fading in lotus (Nelumbo nucifera) petals is manipulated both by anthocyanin biosynthesis reduction and active degradation. Plant Physiol Biochem, 2022, 179: 100-107.
CrossRef Google scholar
[]
Liu F, Dai Y, Hoang TN, Puripunyavanich V, Chukiatman PW, Qin M, Fu Y, Chen Y, Tian D. Genetic diversity and inferred ancestry of Asian lotus (Nelumbo nucifera) germplasms in Thailand and Vietnam. Plant Diversity, 2023, 45: 69-79.
CrossRef Google scholar
[]
Liu Q, Wang L, Zhang D. Characterization of the phytochemical content, antioxidant activity and inhibition capacity against α-glucosidase of different flower parts of seven lotuses (Nelumbo). Sci Hortic, 2023, 316.
CrossRef Google scholar
[]
Liu Q, Zhang D, Liu F, Liu Z, Wang X, Yang Y, Li S, Li H, Tian D, Wang L. Quercetin-derivatives painting the yellow petals of American lotus (Nelumbo lutea) and enzymatic basis for their accumulation. Hortic Plant J, 2023, 9: 169-182.
CrossRef Google scholar
[]
Lu B, Nzei JM, Li Z, Chen J, Yang X, Perleberg DJ. Population genetics of Nelumbo lutea (American lotus) near its northwestern range limit. Aquat Bot, 2023, 188.
CrossRef Google scholar
[]
Ma T, Zhou Y, Sheng P, Jiang H. Archaeobotanical evidence reveals the early history of sacred lotus (Nelumbo nucifera Gaertn.) use in China. Genet Resour Crop Evol, 2023, 70: 2055-2062.
CrossRef Google scholar
[]
Marmouzi I, Kharbach M, El Jemli M, Bouyahya A, Cherrah Y, Bouklouze A, Vander Heyden Y, Faouzi MEA. Antidiabetic, dermatoprotective, antioxidant and chemical functionalities in Zizyphus lotus leaves and fruits. Ind Crop Prod, 2019, 132: 134-139.
CrossRef Google scholar
[]
Matthews PD, Haas GJ. Antimicrobial activity of some edible plants: lotus (Nelumbo nucifera), coffee, and others. J Food Prot, 1993, 56: 66-68.
CrossRef Google scholar
[]
Min T, Niu L, Feng X, Yi Y, Wang L, Zhao Y, Wang H. The effects of different temperatures on the storage characteristics of lotus (Nelumbo nucifera Gaertn.) root. Food Chem, 2021, 348.
CrossRef Google scholar
[]
Ming R, . Genome of the long-living sacred lotus (Nelumbo nucifera Gaertn.). Genome Biol, 2013, 14: R41.
CrossRef Google scholar
[]
Mizuno K, Abukawa K, Kashima T, Asada A, Fujimoto Y, Shimada T. Quantification of whooper swan damage to lotus habitats using high-resolution acoustic imaging sonar in Lake Izunuma. Japan Aquat Bot, 2013, 110: 48-54.
CrossRef Google scholar
[]
Mohd Zaini NS, Abdelazim Elkwiee AA, Naim MN, Abu Bakar NF. Role of nanoclay surface charge for phytoremediation process enhancement. J Water Process Eng, 2021, 40.
CrossRef Google scholar
[]
Moon SW, Ahn C-B, Oh Y, Je J-Y. Lotus (Nelumbo nucifera) seed protein isolate exerts anti-inflammatory and antioxidant effects in LPS-stimulated RAW264.7 macrophages via inhibiting NF-κB and MAPK pathways, and upregulating catalase activity. Int J Biol Macromol, 2019, 134: 791-797.
CrossRef Google scholar
[]
Mukherjee PK, Saha K, Pal M, Saha BP. Effect of Nelumbo nucifera rhizome extract on blood sugar level in rats. J Ethnopharmacol, 1997, 58: 207-213.
CrossRef Google scholar
[]
Mukherjee PK, Mukherjee D, Maji AK, Rai S, Heinrich M. The sacred lotus (Nelumbo nucifera)– phytochemical and therapeutic profile. J Pharm Pharmacol, 2009, 61: 407-422.
CrossRef Google scholar
[]
Nakamura S, Nakashima S, Tanabe G, Oda Y, Yokota N, Fujimoto K, Matsumoto T, Sakuma R, Ohta T, Ogawa K, Nishida S, Miki H, Matsuda H, Muraoka O, Yoshikawa M. Alkaloid constituents from flower buds and leaves of sacred lotus (Nelumbo nucifera, Nymphaeaceae) with melanogenesis inhibitory activity in B16 melanoma cells. Bioorg Med Chem, 2013, 21: 779-787.
CrossRef Google scholar
[]
Ono Y, Hattori E, Fukaya Y, Imai S, Ohizumi Y. Anti-obesity effect of Nelumbo nucifera leaves extract in mice and rats. J Ethnopharmacol, 2006, 106: 238-244.
CrossRef Google scholar
[]
Park S-Y, Moon H-T, Kim J-S, Lee J-H (2023): Assessing the Impact of Human-Induced and Climate Change-Driven Streamflow Alterations on Freshwater Ecosystems. Ecohydrol. Hydrobiol.
[]
Park JJ, Lee WY. Softening of lotus root and carrot using freeze-thaw enzyme infusion for texture-modified foods. Food Biosci, 2020, 35.
CrossRef Google scholar
[]
Pinardi M, Bresciani M, Villa P, Cazzaniga I, Laini A, Tóth V, Fadel A, Austoni M, Lami A, Giardino C. Spatial and temporal dynamics of primary producers in shallow lakes as seen from space: intra-annual observations from Sentinel-2A. Limnologica, 2018, 72: 32-43.
CrossRef Google scholar
[]
Premathilake R, Seneviratne S. Cultural implication based on pollen from the ancient mortuary complex in Sri Lanka. J Archaeol Sci, 2015, 53: 559-569.
CrossRef Google scholar
[]
Pu J, Kong W, Lu C, Wang Z. Directly carbonized lotus seedpod shells as high-stable electrode material for supercapacitors. Ionics, 2015, 21: 809-816.
CrossRef Google scholar
[]
Punia Bangar S, Dunno K, Kumar M, Mostafa H, Maqsood S. A comprehensive review on lotus seeds (Nelumbo nucifera Gaertn.): Nutritional composition, health-related bioactive properties, and industrial applications. J Funct Foods, 2022, 89.
CrossRef Google scholar
[]
Pyne ME, Gold ND, Martin VJJ. Pathway elucidation and microbial synthesis of proaporphine and bis-benzylisoquinoline alkaloids from sacred lotus (Nelumbo nucifera). Metab Eng, 2023, 77: 162-173.
CrossRef Google scholar
[]
Qi S, Zhou D. Lotus seed epicarp extract as potential antioxidant and anti-obesity additive in Chinese Cantonese Sausage. Meat Sci, 2013, 93: 257-262.
CrossRef Google scholar
[]
Qiu ZZ, Chin KB. Evaluation of antioxidant activities of lotus rhizome root powder prepared by different drying conditions and its application to raw and cooked pork patties. Food Packag Shelf, 2022, 33.
CrossRef Google scholar
[]
Qiu ZZ, Chin KB. Effect of sodium alginate active film incorporating different lotus rhizome root powders on the physicochemical properties and shelf-life of low-fat model sausages. Food Packag Shelf, 2022, 33.
CrossRef Google scholar
[]
Rao L, Zhu Y, Duan Z, Xue T, Duan X, Wen Y, Kumar AS, Zhang W, Xu J, Hojjati-Najafabadi A. Lotus seedpods biochar decorated molybdenum disulfide for portable, flexible, outdoor and inexpensive sensing of hyperin. Chemosphere, 2022, 301.
CrossRef Google scholar
[]
Rehmani MS, Xian B, Wei S, He J, Feng Z, Huang H, Shu K. Seedling establishment: the neglected trait in the seed longevity field. Plant Physiol Biochem, 2023, 200.
CrossRef Google scholar
[]
Salaemae N, Satoh S, Imsabai W, Takeda S, Kaewsuksaeng S. The combination of EthylBloc Sachet and 2,4-pyridinedicarboxylic acid reduces petal blackening and prolongs vase life of cut flowers of lotus (Nelumbo nucifera Gaerth) cvs. Sattabongkot and Saddhabutra Sci Hortic, 2018, 240: 133-138.
CrossRef Google scholar
[]
Salaemae N, Takeda S, Kubo N, Kaewsuksaeng S. Molecular phylogeny and postharvest morphology of petals in two major Nelumbo nucifera cultivars in Thailand. Agric Nat Resour, 2018, 52: 45-52.
[]
Sano N, Rajjou L, North HM, Debeaujon I, Marion-Poll A, Seo M. Staying alive: molecular aspects of seed longevity. Plant Cell Physiol, 2015, 57: 660-674.
CrossRef Google scholar
[]
Seo DC, DeLaune RD, Han MJ, Lee YC, Bang SB, Oh EJ, Chae JH, Kim KS, Park JH, Cho JS. Nutrient uptake and release in ponds under long-term and short-term lotus (Nelumbo nucifera) cultivation: Influence of compost application. Ecol Eng, 2010, 36: 1373-1382.
CrossRef Google scholar
[]
Shafique M, Xue X, Luo X. An overview of carbon sequestration of green roofs in urban areas. Urban for Urban Green, 2020, 47.
CrossRef Google scholar
[]
Shahzad MA, Ahmad N, Ismail T, Manzoor MF, Ismail A, Ahmed N, Akhtar S. Nutritional composition and quality characterization of lotus (Nelumbo nucifera Gaertn.) seed flour supplemented cookies. J Food Meas Charact, 2021, 15: 181-188.
CrossRef Google scholar
[]
Sharma BR, Kim MS, Rhyu DY. Nelumbo Nucifera leaf extract attenuated pancreatic ß-cells toxicity induced by interleukin-1ß and interferon-γ, and increased insulin secrection of pancreatic ß-cells in streptozotocin-induced diabetic rats. J Tradit Chin Med, 2016, 36: 71-77.
CrossRef Google scholar
[]
Sharma BR, Gautam LNS, Adhikari D, Karki R. A comprehensive review on chemical profiling of Nelumbo Nucifera: potential for drug development. Phytother Res, 2017, 31: 3-26.
CrossRef Google scholar
[]
Sheng J, Li X, Zhang D. Gibberellins, brassinolide, and ethylene signaling were involved in flower differentiation and development in Nelumbo nucifera. Hortic Plant J, 2022, 8: 243-250.
CrossRef Google scholar
[]
Shen-Miller J, Lindner P, Xie Y, Villa S, Wooding K, Clarke SG, Loo RRO, Loo JA. Thermal-stable proteins of fruit of long-living sacred lotus Nelumbo nucifera Gaertn var. Chuina antique. Trop Plant Biol, 2013, 6: 69-84.
CrossRef Google scholar
[]
Shi L, Tu F, Luo Y. Energy absorption characteristics of the bionic lotus petiole structure under transverse load. Thin Wall Struct, 2023, 187.
CrossRef Google scholar
[]
Showkat QA, Majid D, Makroo HA, Dar BN. Physico-mechanical characterization of different grades of Lotus rhizome (Nelumbo nucifera Gaertn) for valorisation and smart post-harvest management. Appl Food Res, 2021, 1.
CrossRef Google scholar
[]
Song Y-R, Han A-R, Lim T-G, Lee E-J, Hong H-D. Isolation, purification, and characterization of novel polysaccharides from lotus (Nelumbo nucifera) leaves and their immunostimulatory effects. Int J Biol Macromol, 2019, 128: 546-555.
CrossRef Google scholar
[]
Speck O, Speck T. Functional morphology of plants – a key to biomimetic applications. New Phytol, 2021, 231: 950-956.
CrossRef Google scholar
[]
Srivastav AD, Singh V, Singh D, Giri BS, Singh D. Analysis of natural wax from Nelumbo nucifera leaves by using polar and non-polar organic solvents. Process Biochem, 2021, 106: 96-102.
CrossRef Google scholar
[]
Srivastav AD, Singh V, Singh D, Singh S, Patel SK, Kumar D, Yadav S, Giri BS, Singh D. Nelumbo nucifera leaves as source of water-repellent wax: extraction through polar and non-polar organic solvents. J Indian Chem Soc, 2022, 99.
CrossRef Google scholar
[]
Sugimoto Y, Furutani S, Itoh A, Tanahashi T, Nakajima H, Oshiro H, Sun S, Yamada J. Effects of extracts and neferine from the embryo of Nelumbo nucifera seeds on the central nervous system. Phytomedicine, 2008, 15: 1117-1124.
CrossRef Google scholar
[]
Sun S, Li H, Guo Y, Mi H, He P, Zheng G, Liu C, Shen C. Superefficient and robust polymer coating for bionic manufacturing of superwetting surfaces with “rose petal effect” and “lotus leaf effect”. Prog Org Coat, 2021, 151.
CrossRef Google scholar
[]
Sun X, Sun Z, Saleh ASM, Lu Y, Zhang X, Ge X, Shen H, Yu X, Li W. Effects of various microwave intensities collaborated with different cold plasma duration time on structural, physicochemical, and digestive properties of lotus root starch. Food Chem, 2023, 405.
CrossRef Google scholar
[]
Tang C, Xie B, Sun Z. Antibacterial activity and mechanism of B-type oligomeric procyanidins from lotus seedpod on enterotoxigenic Escherichia coli. J Funct Foods, 2017, 38: 454-463.
CrossRef Google scholar
[]
Thongtha S, Teamkao P, Boonapatcharoen N, Tripetchkul S, Techkarnjararuk S, Thiravetyan P. Phosphorus removal from domestic wastewater by Nelumbo nucifera Gaertn. and Cyperus alternifolius L. J Environ Manag, 2014, 137: 54-60.
CrossRef Google scholar
[]
Tian Y, Yang H, Wu S, Yan J, Cen K, Luo T, Xiong G, Hou Y, Bo Z, Ostrikov K. Beyond lotus: plasma nanostructuring enables efficient energy and water conversion and use. Nano Energy, 2019, 66.
CrossRef Google scholar
[]
Tsuruta Y, Nagao K, Kai S, Tsuge K, Yoshimura T, Koganemaru K, Yanagita T. Polyphenolic extract of lotus root (edible rhizome of Nelumbo nucifera) alleviates hepatic steatosis in obese diabetic db/db mice. Lipids Health Dis, 2011, 10: 202.
CrossRef Google scholar
[]
van Schaik S, Helman-Ważny A, Nöller R. Writing, painting and sketching at Dunhuang: assessing the materiality and function of early Tibetan manuscripts and ritual items. J Archaeol Sci, 2015, 53: 110-132.
CrossRef Google scholar
[]
Vo HTM, van Halsema G, Hellegers P, Wyatt A, Nguyen QH. The emergence of lotus farming as an innovation for adapting to climate change in the upper Vietnamese Mekong Delta. Land, 2021, 10: 350.
CrossRef Google scholar
[]
Vogel S, Hadacek F. Contributions to the functional anatomy and biology of Nelumbo nucifera (Nelumbonaceae) III. An ecological reappraisal of floral organs. Plant Syst Evol, 2004, 249: 173-189.
CrossRef Google scholar
[]
Wang C, Su W. Understanding acid pretreatment of lotus leaves to prepare hard carbons as anodes for sodium ion batteries. Surf Coat Technol, 2021, 415.
CrossRef Google scholar
[]
Wang R, Zhao J. A good sound in the right place: exploring the effects of auditory-visual combinations on aesthetic preference. Urban for Urban Green, 2019, 43.
CrossRef Google scholar
[]
Wang M, Shi J, Wang L, Hu Y, Ye X, Liu D, Chen J. Inhibitory kinetics and mechanism of flavonoids from lotus (Nelumbo nucifera Gaertn.) leaf against pancreatic α-amylase. Int J Biol Macromol, 2018, 120: 2589-2596.
CrossRef Google scholar
[]
Wang Y, Shen Z, Li J, Liang T, Lin X, Li Y, Zeng W, Zou Q, Shen J, Wang X. Phytochemicals, biological activity, and industrial application of lotus seedpod (Receptaculum Nelumbinis): a review. Front Nutr, 2022, 9: 1022794.
CrossRef Google scholar
[]
Wang C, Lee S, Huang Y. Nitrogen-doped 3-D porous carbon network derived from lotus leaves as interlayer for lithium sulfur batteries. Mater Chem Phys, 2023, 300.
CrossRef Google scholar
[]
Wu C, Yang M, Lee Y-J, Wang C. Nelumbo nucifera leaf polyphenol extract inhibits breast cancer cells metastasis in vitro and in vivo through PKCα targeting. J Funct Foods, 2017, 37: 480-490.
CrossRef Google scholar
[]
Wu R, Wang Y, Xue X, An F, Hu T, Gao J. High selectivity and removal efficiency of lotus root-based activated carbon towards Fe(III) in La(III) solution. Korean J Chem Eng, 2018, 35: 757-763.
CrossRef Google scholar
[]
Wu X, Zhang C, Tian Z, Cai J. Large-surface-area carbons derived from lotus stem waste for efficient CO2 capture. New Carbon Mater, 2018, 33: 252-261.
CrossRef Google scholar
[]
Wu F, Zhang M, Bai Y, Wang X, Dong R, Wu C. Lotus seedpod-derived hard carbon with hierarchical porous structure as stable anode for sodium-ion Batteries. ACS Appl Mater Interfaces, 2019, 11: 12554-12561.
CrossRef Google scholar
[]
Wu L, Cai Y, Wang S, Li Z. Doping of nitrogen into biomass-derived porous carbon with large surface area using N2 non-thermal plasma technique for high-performance supercapacitor. Int J Hydrogen Energy, 2021, 46: 2432-2444.
CrossRef Google scholar
[]
Wu Y, Wu S, Shi Y, Jiang L, Yang J, Wang X, Zhu K, Zhang H, Zhang J. Integrated metabolite profiling and transcriptome analysis reveal candidate genes involved in the formation of yellow Nelumbo nucifera. Genomics, 2022, 114.
CrossRef Google scholar
[]
Xie L, Li Q, Demir M, Yu Q, Hu X, Jiang Z, Wang L. Lotus seed pot-derived nitrogen enriched porous carbon for CO2 capture application. Colloid Surf A, 2022, 655.
CrossRef Google scholar
[]
Xu S, Wang Y, Wang Y, Zhao Y, Gao Y. Seasonal influence of reed (phragmites australis) and lotus (nelumbo nucifera) on urban wetland of Yi river. Appl Ecol Environ Res, 2019, 17: 7891-7900.
CrossRef Google scholar
[]
Yang M, Han Y, Xu L, Zhao J, Liu Y. Comparative analysis of genetic diversity of lotus (Nelumbo) using SSR and SRAP markers. Sci Hortic, 2012, 142: 185-195.
CrossRef Google scholar
[]
Yang M, Liu F, Han Y, Xu L, Juntawong N, Liu Y. Genetic diversity and structure in populations of Nelumbo from America, Thailand and China: implications for conservation and breeding. Aquat Bot, 2013, 107: 1-7.
CrossRef Google scholar
[]
Yang J, Zhang Y, Jiang L, Li C, Sun Z, Zhang Y, Lin T, Jiang Y, Liu B. A triple combination strategy of UHPLC-MSn, hypolipidemic activity and transcriptome sequencing to unveil the hypolipidemic mechanism of Nelumbo nucifera alkaloids. J Ethnopharmacol, 2022, 282.
CrossRef Google scholar
[]
Yang Y, Liu R, Han Y, Wu W, Fang X, Mu H, Gao H, Chen H. Critical taste substances and regulatory pathways of fresh lotus seed pulps at different ripeness stages. Postharvest Biol Tec, 2023, 205.
CrossRef Google scholar
[]
Ye Z, Dai W, Jin X, Gituru RW, Wang Q, Yang C. Competition and facilitation among plants for pollination: can pollinator abundance shift the plant–plant interactions?. Plant Ecol, 2014, 215: 3-13.
CrossRef Google scholar
[]
Ye X, Wu L, Zhu M, Wang Z, Huang Z, Wang M. Lotus pollen-derived hierarchically porous carbons with exceptional adsorption performance toward Reactive Black 5: isotherms, kinetics and thermodynamics investigations. Sep Purif Technol, 2022, 300.
CrossRef Google scholar
[]
Yoo D, Kim SJ, Joung Y, Jang S, Choi D, Kim DS. Lotus leaf-inspired droplet-based electricity generator with low-adhesive superhydrophobicity for a wide operational droplet volume range and boosted electricity output. Nano Energy, 2022, 99.
CrossRef Google scholar
[]
Younis IY, Farag MA, Elgamal AM, Mohsen E. Untargeted metabolites profiling of volatile and non-volatile components of Egyptian lotus (Nelumbo nucifera Gaertn.) using UHPLC/PDA/ESI-MS and solid-phase microextraction (SPME) GC/MS in relation to its antiaging and anti-inflammatory effects. Ind Crop Prod, 2023, 197.
CrossRef Google scholar
[]
Yu Y, Lai S, Chang C, Chen W, Wu S, Lu C. Peptidomic analysis of low molecular weight antioxidative peptides prepared by lotus (Nelumbo nucifera Gaertn) seed protein hydrolysates. LWT, 2021, 144.
CrossRef Google scholar
[]
Yuan T, Wang Q, Li W, Guo C, Zhang T, Liu J. Water quality, nutrient budgets and growth performance in yellow catfish (Pelteobagrus fulvidraco Richardson) and lotus (Nelumbo nucifera Gaertn) co-culture systems. Aquac Res, 2019, 50: 3050-3059.
CrossRef Google scholar
[]
Zahoor M, Yousaf Z, Yasin H, Shinwari ZK, Haroon M, Saleh N, Younas A, Aftab A, Shamsheer B, Qamar NR, Rashid M. Ethnobotanicals and commercial trends of herbal markets in Punjab. Pakistan J Herb Med, 2021, 26.
CrossRef Google scholar
[]
Zang D, Xun X, Gu Z, Dong J, Pan T, Liu M. Fabrication of superhydrophobic self-cleaning manganese dioxide coatings on Mg alloys inspired by lotus flower. Ceram Int, 2020, 46: 20328-20334.
CrossRef Google scholar
[]
Zhang Y, Lu X, Zeng S, Huang X, Guo Z, Zheng Y, Tian Y, Zheng B. Nutritional composition, physiological functions and processing of lotus (Nelumbo nucifera Gaertn.) seeds: a review. Phytochem Rev, 2015, 14: 321-334.
CrossRef Google scholar
[]
Zhang D, Chen Q, Liu Q, Liu F, Cui L, Shao W, Wu S, Xu J, Tian D. Histological and cytological characterization of anther and appendage development in Asian lotus (Nelumbo nucifera Gaertn). Int J Mol Sci, 2019, 20: 1015.
CrossRef Google scholar
[]
Zhang Y, Ji Z, Pei Y. Nutrient removal and microbial community structure in an artificial-natural coupled wetland system. Process Saf Environ Prot, 2021, 147: 1160-1170.
CrossRef Google scholar
[]
Zhang L, Yu X, Yagoub AEA, Xia G, Zhou C. Effect of vacuum impregnation assisted probiotics fermentation suspension on shelf life quality of freshly cut lotus root. Food Chem, 2022, 381.
CrossRef Google scholar
[]
Zhang G, Hou X, Tao D. The living past: a mural tomb of nomadic elite in the capital Pingcheng of the northern Wei empire (398–494 CE). Archaeol Res Asia, 2023, 33.
CrossRef Google scholar
[]
Zhao X, Zhao R, Yang X, Sun L, Bao Y, Shuai Liu Y, Blennow A, Liu X. Recent advances on bioactive compounds, biosynthesis mechanism, and physiological functions of Nelumbo nucifera. Food Chem, 2023, 412.
CrossRef Google scholar
[]
Zhou Y, Chen H, Chu P, Li Y, Tan B, Ding Y, Tsang EWT, Jiang L, Wu K, Huang S. NnHSP17.5, a cytosolic class II small heat shock protein gene from Nelumbo nucifera, contributes to seed germination vigor and seedling thermotolerance in transgenic Arabidopsis. Plant Cell Rep, 2012, 31: 379-389.
CrossRef Google scholar
[]
Zhou Z, Li S, Ke W, Peng J, Chang H, Zhang X, Guo H. Polyphenol oxidase activity in harvest rhizome of lotus (Nelumbo nucifera Gaertn. ssp. nucifera) and its relationship with morphological characteristics. Sci Hortic, 2014, 179: 85-90.
CrossRef Google scholar
[]
Zhou H, Hou T, Gao Z, Guo X, Wang C, Wang J, Liu Y, Liang X. Discovery of eight alkaloids with D1 and D2 antagonist activity in leaves of Nelumbo nucifera Gaertn using FLIPR assays. J Ethnopharmacol, 2021, 278.
CrossRef Google scholar
[]
Zhou J, Jiang X, Chen Y, Lin S, Lu C. N, P self-doped porous carbon material derived from lotus pollen for highly efficient ethanol-water mixtures photocatalytic hydrogen production. Nanomaterials, 2022, 12: 1744.
CrossRef Google scholar
[]
Zhou S, Wang W, Xu X. Robust superhydrophobic magnetic melamine sponge inspired by lotus leaf surface for efficient continuous oil–water separation. Sep Purif Technol, 2023, 311.
CrossRef Google scholar
[]
Zhu F. Structures, properties, and applications of lotus starches. Food Hydrocolloid, 2017, 63: 332-348.
CrossRef Google scholar
[]
Zhu Z, Li S, He J, Thirumdas R, Montesano D, Barba FJ. Enzyme-assisted extraction of polyphenol from edible lotus (Nelumbo nucifera) rhizome knot: Ultra-filtration performance and HPLC-MS2 profile. Food Res Int, 2018, 111: 291-298.
CrossRef Google scholar

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