Responses of Brassica rapa “Bokchoy” to Varying Light Intensities Grown Under Hydroponic System

Authors

  • Angel Lhi Dela Cruz Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Chinitt P. Sinco Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Ma. Lourdes S. Cantor Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Michelle T. Viña Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Jolai R. Garcia-Bolaños Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Rikka Bianca J. Condes Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.
  • Romeo Jr. B. Bordios Notre Dame of Midsayap College, Midsayap, Cotabato, Philippines.

DOI:

https://doi.org/10.54536/ajec.v1i2.486

Keywords:

Hydroponics, Brassica Rapa, Responses, The Interaction of Climate Change, Light Intensities To Plants , Hydroponic System

Abstract

Climate change compounds matters because agriculture is dependent on land. Soilless system production is attractive since it allows for the use of unproductive land for agriculture while reducing water use. The light intensities in one-, two-, and three-layer treatments affect Brassica rapa growth and development, according to the discussion and conclusions. The three-layer net group outgrew the one-layer control group in terms of growth and development. Brassica rapa's development and maturity were influenced by light intensities. Plant growth and yield improve as the number of Brassica rapa layers increases. Varying effects on plant output, fresh weight, water consumption, and leaf tissue in the intensities of light. The study discovered that light had an impact potentially in Brassica rapa in hydroponic systems. The temperature of the environment can stymie development, manufacturing, and diffusion. The findings indicate that the cultivar is more resistant to light stress.

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References

Ahmed, N. U., Park, J. I., Jung, H. J., Kang, K. K., Hur, Y., Lim, Y. P., & Nou, I. S. (2012). Molecular characterization of stress resistance-related chitinase genes of Brassica rapa. Plant Physiology and Biochemistry, 58, 106-115.

Aldrich, M. V., Gardea-Torresdey, J. L., Peralta-Videa, J. R., & Parsons, J. G. (2003). Uptake and reduction of Cr (VI) to Cr (III) by mesquite (Prosopis spp.): Chromate− plant interaction in hydroponics and solid media studied using XAS. Environmental science & technology, 37(9), 1859-1864.

Arshad, M., Saqib, M., Akhtar, J., & Asghar, M. (2010 ). Effect of Calcium on the Salt Tolerance of Different Wheat (Triticum aestivum L.) Genotypes. 1 Institute of Soil and Environmental Sciences, University of Agriculture, Faisalabad, Pakistan; 2 Department of Biochemistry, University of Agriculture, Faisalabad, Pakistan, 49(4), 497–504. https://ainfo.cnptia.embrapa.br/digital/bitstream/item/210654/1/Generation-mean-analysis.pdf

Ashraf, M., Rahmatulla, Ahmad, R., Bhatti, A. S., Afzal, M., Maqsood, M. A., & Kanwal, S. (2010). Amelioration of Salt Stress in Sugarcane (Saccharum officinarum L.) by Supplying Potassium and Silicon in Hydroponics. Science Direct, 20(2), 153–162. https://doi.org/10.1016/S1002-0160(10)60003-3

Cao, B., Lv, X., Chen, Z., & Xu, K. (2021a). Supplementing green light under strong sunlight improves growth and functional ingredients of ginger (Zingiber officinale Rosc.) in summer. Science Direct, 167, 113527. https://doi.org/10.1016/j.indcrop.2021.113527

Champolivier, L., & Merrien, A. (1996). Effects of water stress applied at different growth stages to Brassica napus L. var. oleifera on yield, yield components, and seed quality. European Journal of Agronomy, 5(3–4), 153–160. https://doi.org/10.1016/S1161-0301(96)02004-7

Dyer, M. H. (n.d.). Does Weather Affect Plant Growth: Effect of Temperature on Plants. Gardening Know How. Retrieved February 15, 2022, from https://www.gardeningknowhow.com/plant-problems/environmental/temperature-on-plants.htm

Foster, T., Brozovic, N., & Butler, A. P. (2015). Why well yield matters for managing agricultural drought risk. Weather Climate Extremes, 10,11–19. https://doi.org/10.1016/j.wace.2015.07.003

Hatfield, J. L., & Prueger, J. H. (2015). Temperature extremes: Effect on plant growth and development. Weather and climate extremes, 10, 4-10.

IIyas, M., Khan, W. A., Ali, T., Ahmad, N., Khan, Z., Fazal, H., Zaman, N., Ualiyeva, D., Ali, M., Amissah, O., & Rizwan, M. (2022). Cold Stress-induced Seed Germination and Biosynthesis of Polyphenolics Content in Medicinally Important Brassica rapa. Phytomedicine Plus, 2(1), 100185. https://doi.org/10.1016/j.phyplu.2021.100185

Ikka, T., Kobashi, Y., Luchi, S., Sakurai, N., Shibata, D., Kobayashi, M., & Koyama, H. (2007). Natural variation of Arabidopsis thaliana reveals that aluminum resistance and proton resistance are controlled by different genetic factors. Springer, 115, 709–719.https://doi.org/10.1007/s00122-007-0602-5

Kaur, P., & Gautam, V. (2021). Research patterns and trends in classification of biotic and abiotic stress in plant leaf. Materials Today: Proceedings, 45, 4377-4382.

Li, T., Heuvenlink, E., Noort, F. V., Kromdijk, J., & Marcelis, L. F. M. (2014). Responses of two Anthurium cultivars to high daily integrals of diffuse light. Scientia Horticulture, 179, 306–313. https://doi.org/10.1016/j.scienta.2014.09.039

McKenzie, R. H. (2017, November 22). Understanding the effects of sunlight, temperature and precipitation. https://www.topcropmanager.com/Back-to-Basics-20879/. https://www.topcropmanager.com/back-to-basics-20879/

Measuring Plant growth with Sunlight. (2019, March 25).Science Center. https://www.clearwaycommunitysolar.com/blog/science-center-home-experiments-for-kids/measuring-plant-growth-with-sunlight/

Park, J. E., Kim, J., Purevdorj, E., Son, Y. J., Nho, C. W., & Yoo, G. (2021). Effects of long light exposure and drought stress on plant growth and glucosinolate production in pak choi (Brassica rapa subsp. chinensis). Food Chemistry, 340, 128167.

Pavlovic, I., Pencik, A., Novak, O., Vujcic, V., Brkanac, S. R., Lepedus, H., Strnad, M., & Sondi, B. (2018). Short-term salt stress in Brassica rapa seedlings causes alterations in auxin metabolism. Plant Physiology and Biochemistry, 125, 74–84. https://doi.org/10.1016/j.plaphy.2018.01.026

Sahin, U., Ekinci, M., Ors, S., Turan, M., Yildiz, S., & Yildirim, E. (2018). Effects of individual and combined effects of salinity and drought on physiological, nutritional and biochemical properties of cabbage (Brassica oleracea var. capitata). Scientia Horticulturae, 240, 196-204.

Spehar, C. R., & Souza, L. A. C. (1995). Selecting soybean (Glycine max L. Merrill) tolerant to low-calcium stress in short-term hydroponics experiment. Kluver Academic Publishers, 106, 35–38. https://doi.org/10.1023/A:1003427826648

Satterthwaite, D., McGranahan, G., & Tacoli, C. (2010). Urbanization and its implications for food and farming. Urbanization and Its Implications for Food and Farming, 265, 2809–2820. https://royalsocietypublishing.org/doi/epdf/10.1098/rstb.2010.0136

Yan, L., Shah, T., Cheng, Y., Lu, Y., Zhang, X., & Zou, X. (2019). Physiological and molecular responses to cold stress in rapeseed (Brassica napus L.). Journal of Integrative Agriculture, 18(12), 2742–2752. https://doi.org/10.1016/S2095-3119(18)62147-1

Zabłudowska, E., Kowalska, J., Wojas, S., Skłodowska, A., & Antosiewicz, D. M. (2009). Search for a plant for phytoremediation–What can we learn from field and hydroponic studies?. Chemosphere, 77(3), 301-307.

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Published

2022-08-18

How to Cite

Dela Cruz, A. L., P. Sinco, C. ., S. Cantor, M. L. ., T. Viña, M. ., Garcia-Bolaños, J. R. ., J. Condes, R. B., & B. Bordios, R. J. . (2022). Responses of Brassica rapa “Bokchoy” to Varying Light Intensities Grown Under Hydroponic System. American Journal of Environment and Climate, 1(2), 15–22. https://doi.org/10.54536/ajec.v1i2.486