Black rice Oryza sativa is primarily grown in East and North East of India. This variety could not become popular due to low yield and being expensive. It is rich in three kinds of Anthocyanin contents which exhibit great impact on human health. Four different kinds of ZnO nanomaterial were prepared at variable temperature ranging from 250 °C to 500 °C . The Interaction of black rice grain with nanozinc material leads to the observation that seeds germinated early. Rooting development was higher. Better effects were observed while those interacted with nanomaterial prepared at 350 °C . In the present study the aim was to enhance the yield and value addition. To best of our knowledge this is the first scientific attempt [see also patent filed Varma et al. 2019]. The mechanism involved needs further elaborate elucidation. We hope that the goal can also be achieved by interaction of seeds with mycosymbiont—Piriformospora indica (Serendipita indica) a potent cultivable mycorrhiza. The precise objective of this communication is to illustrate the interaction of black rice seed with several synthesized nano zinc material which varied in shape, size and diameter.
Anupam, C. (2015) Black Beauty. https://www.downtoearth.org.in/news/food/black-beauty-52195
Annie, P. (2019) Black Rice Nutrition: What You Need to Know about “Forbidden Rice”. https://draxe.com/black-rice-nutrition-forbidden-rice-benefits
Ujjawal, K. (2016) Black Rice. Springer, Berlin.
Bernice, C. (2016) Molecular Basis of Nutrition and Aging Science Direct. https://www.sciencedirect.com/topics/agricultural-and-biological-sciences/black-rice
Min-Kyoung, K., Han-ah, K., Kwangoh, K., et al. (2008) Identification and Quantification of Anthocyanin Pigments in Colored Rice. Nutrition Research and Practice, 2, 46-49. https://doi.org/10.4162/nrp.2008.2.1.46
Kamal, P. (2014) Summary of Cyanidin. https://examine.com/supplements/cyanidin
Arshiya, S. (2019). https://www.stylecraze.com/articles/health-benefits-of-black-rice/#gref
Jillian, L. (2018) 10 Powerful Zinc Benefits, Including Fighting Cancer. https://draxe.com/zinc-benefits
Chaffee, B.W. and King, J.C. (2012) Effect of Zinc Supplementation on Pregnancy and Infant Outcomes: A Systematic Review. Paediatric and Perinatal Epidemiology, 26, 118-137. https://www.ncbi.nlm.nih.gov/pubmed/22742606 https://doi.org/10.1111/j.1365-3016.2012.01289.x
Wakeel, A., Farooq, M., Bashir, K. and Ozturk, L. (2018) Micronutrient Malnutrition and Biofortification: Recent Advances and Future Perspectives. In: Hossain, M.A., Kamiya, T., Burritt, D.J., Tran, L.P. and Fujiwara, T., Eds., Plant Micronutrient Use Efficiency, Academic Press, Cambridge, 225-243.
Saeed, A. (2013) Zinc Status in South Asian Populations—An Update. Journal of Health, Population and Nutrition, 31, 139-149. https://doi.org/10.3329/jhpn.v31i2.16378
Tamanna, B., Kavita, M., Manika, K., Ram, P. and Ajit, V. (2015) Biosynthesis of Zinc Oxide Nanoparticles from Azadirachta indica for Antibacterial and Photocatalytic Applications. Material Science in Semiconductor Processing, 32, 55-61. https://doi.org/10.1016/j.mssp.2014.12.053
Tamanna, B.M.K., Rishabh, S., Patel, S., Reddy, R., Anand, S. and Ajit, V. (2015) A Comparative Study of Pure and Copper (Cu)-Doped ZnO-Nanorods for Antibacterial and Photocatalytic Applications with Their Mechanism of Action. Journal of Nanoparticle Research, 17, 288. https://doi.org/10.1007/s11051-015-3093-3
Rishabh, S., Uma, S.S., Ajit, V. and Manika, K. (2016) Visible Light Induced Bactericidal and Photocatalytic Activity of Hydrothermally Synthesized BiVO4 Nano-Octahedrals. Journal of Photochemistry & Photobiology B: Biology, 162, 266-272. https://doi.org/10.1016/j.jphotobiol.2016.06.035
Rishabh, S., Manika, K., Islam, S., Uma, S. and Ajit, V. (2017) Aspect Ratio Dependent Photo Induced Antimicrobial and Photocatalyticorganic Pollutant Degradation Efficiency of ZnO-Nanorods. Research on Chemical Intermediates, 43, 5345-5364. https://doi.org/10.1007/s11164-017-2930-7
Hilbert, M., Voll, L.M., Hofmann, J. and Zuccaro, A. (2013) Growth Assay and Detection of TRP and Indole Derivatives in Piriformospora indica Culture Supernatant by LC-MS/MS. Bio-Protocol, 3, e800. https://doi.org/10.21769/BioProtoc.800
Uma, S., Manika, K., Ram, P. and Ajit, V. (2017) Impact of Synergistic Association of ZnO-Nanorods and Symbiotic Fungus Piriformospora indica DSM 11827 on Brassica oleracea var. botrytis (Broccoli). Frontiers in Microbiology, 8, 1909.
Uma, A.K.M., Manika, K. and Ajit, V. (2018) Zinc Oxide Nanorods for Fungus Productivity and Broccoli (Brassica oleracea var. botrytis) Development. International Classification, Patent No. 201611027833A.
Ajit, V., Vinod, K., Suman and Ram, P. (2015) A Nanomaterial Based Culture Medium for Microbial Growth Enhancement. India Patent No. 267958.
Pérez-de-Luque, A. (2017). https://www.frontiersin.org/articles/10.3389/fenvs.2017.00012/full#h1
Terekhova, V., et al. (2017) Engineered Nanomaterials, Effects on Soil Properties: Problems and Advances in Investigation. In: Ghorbanpour, M., Manika, K. and Varma, A., Eds., Nanoscience and Plant-Soil Systems, Springer, Berlin, Vol. 48, 115-136
Sridhar, C. (2012) Effect of Nanoparticles for the Maintenance of Tomato Seed Vigour and Viability. M.Sc. Thesis, Tamil Nadu Agricultural University, Coimbatore.
Nair, R.S.H., et al. (2010) Nanoparticulate Material Delivery to Plants. Plant Science, 179, 154-163.
Anandaraj, K. and Natarajan, N. (2017) Effect of Nanoparticles for Seed Quality Enhancement in Onion [Allium cepa (Linn) cv. CO (On)]5. International Journal of Current Microbiology and Applied Sciences, 6, 3714-3724. https://doi.org/10.20546/ijcmas.2017.611.435
Maryam, H., Zahra, A. and Mozafarian, M. (2012) The Effect of N-Si on Tomato Seed Germination under Salinity Levels. Journal of Biodiversity and Environmental Sciences, 6, 87-90.
Bhuyan, S.K., et al. (2015) Interaction of Piriformospora indica with Azotobacter chroococcum. Scientific Reports, 5, Article No. 13911.
Ajit, V., Janardhanan, R., Kharkwal, H., et al. (2019) Novel Rice Based Fortified Food Targeting Micro- and Macro-Nutritional Deficiencies in Malnourished Children and Women.
Savita, V., et al. (1998) Piriformospora indica, gen. etsp. nov., a New Root-Colonizing Fungus. Mycologia USA, 90, 896-903. https://doi.org/10.1080/00275514.1998.12026983
Michael, W., et al. (2016) Sebacinales—One Thousand and One Interactions with Land plants. New Phytologist, 211, 20-40. https://doi.org/10.1111/nph.13977