The Effect of Salinity and Light on the Density of Spirulina Platensis, by using Walne Media

Authors

  • Nur Jihan Fareranty Piu Postgraduate Program in Marine Science, State University of Gorontalo
  • Yuniarti Koniyo Postgraduate Program in Marine Science, State University of Gorontalo
  • Azis Salam Postgraduate Program in Marine Science, State University of Gorontalo

Keywords:

Spirulinaplatensis, Salinity, Light, Density, Walne Media

Abstract

This study aims to determine the effect of salinity on walne media on the density of spirulina platensis, determine the effect of light intensity on walne media on the density of spirulina platensis, and determine the effect of the combination of salinity and light intensity on the density of spirulina platensis. The research was carried out in December 2021 - January 2022 at the Takalar Brackish Water Cultivation Fisheries Center. The method used is an experiment withThe experimental design was a completely randomized design with a factorial pattern, salinity factor (S) with 3 levels (10 ppt, 20 ppt, and 30 ppt), and light factor (C) with 3 levels (16 watts, 21 watts, and 36 watts). . The results of the analysis of variance (ANOVA) showed salinity has no significant effect on walne media on the density of Spirulina platensis. light intensity has a significant effect on walne media on the density of Spirulina platensis no effect the combination of salinity and light intensity on the density of Spirulina platensis on Walne media. Good growth yield of spirulina platensis was 272,505 cells/ml (30 ppt salinity and 36 watts of light).

References

Ahmad, S. (2008). Influence of light quality and intensity in the cultivation of Spirulina platensis from Toliara (Madagascar) in a closed system. Journal of Chemical Technology & Biotechnology, 83(May), 1163–1169. https://doi.org/10.1002/jctb

Ali, SK, & Saleh, AM (2012). Spirulina - An overview. International Journal of Pharmacy and Pharmaceutical Sciences, 4(SUPPL.3), 9–15. https://doi.org/10.1201/9780203025901.ch14

ana evita, Yunita Maimunah, HS (2020). THE USE OF LAMTORO (Leucaena Leucocephala) LEAF EXTRACT AS A FERTILIZER WITH DIFFERENT SALINITY ON GROWTH RATE, BIOMASS AND CHLOROPHIL-A IN CHLORELLA VULGARIS MICROALGAE Ana. 5, 47–55.

Astiani, F., Dewiyanti, I., Mellisa Department of Aquaculture, S., Syiah Kuala, U., & Aceh, B. (2016). EFFECT OF DIFFERENT CULTURE MEDIA ON GROWTH RATE AND BIOMASS OF SPIRULINA sp. EFFECT OF DIFFERENT CULTURE MEDIA ON GROWTH RATE AND BIOMASS OF Spirulina sp. Scientific Journal of Marine and Fisheries Students Unsyiah, 1 (November), 441–447.

Benjamin, W. (2019). EFFECT OF DIFFERENT PHOTOPRIODES ON CULTURE OF Chlorella sp. WITH A CONTINUOUS PHOTOBIOREACTOR SYSTEM. 3, 1–9.

Buwono, NR, & Nurhasanah, RQ (2018a). Population Growth Study of Spirulina sp. on Different Cultural Scales
[Study of Spirulina sp. Population Growth in The Different Culture Scale]. Scientific Journal of Fisheries and Marine Affairs, 10(1), 26. https://doi.org/10.20473/jipk.v10i1.8516

Buwono, NR, & Nurhasanah, RQ (2018b). Study of population growth of spitulina sp. on different cultural scales. Scientific Journal of Fisheries and Marine Affairs, 10(1), 26–33.

Caturwati, LN, & Setyati, RH (2020). Optimization of Spirulina sp. Growth in Walne Media with Variation of Urea and NaHCO3 Supplements. Journal of Tropical Biodiversity and Biotechnology, 5(1), 53–58. https://doi.org/10.22146/jtbb.53635

Cells, S. (2009). USE OF TECHNICAL CULTURE MEDIA ON THE PRODUCTION AND NUTRITIONAL CONTENT OF Spirulina platensis Cells Using of Technical Culture Media on The Production and Nutrition Contents of. 4(2), 53–61.

Fakhri, M., Antika, PW, Ekawati, AW, & Arifin, NB (2020a). Growth, Pigment Content, and Protein of Spirulina platensis Cultured on Ca(NO3)2 with Different Doses. Journal of Aquaculture and Fish Health, 9(1), 38–47.

Fakhri, M., Antika, PW, Ekawati, AW, & Arifin, NB (2020b). Growth, Pigment Content, and Protein of Spirulina platensis Cultured On Ca(NO3)2 With Different Doses. Journal of Aquaculture and Fish Health, 9(1), 38–47.

Febriani, R., Hasibuan, S., & Syafriadiman. (2020). Effect of Different Salinity on Density and Carotenoid Content of Dunaliella salina. Journal of Fisheries and Marine Affairs, 25(1), 36–46.

Fithriani, D., Amini, S., Melanie, S., & Susilowati, R. (2015). Phytochemical Test, Total Phenol Content and Antioxidant Activity of Microalgae Spirulina sp., Chlorella sp., and Nannochloropsis sp. Journal of Postharvest and Marine and Fishery Biotechnology, 10(2), 101. https://doi.org/10.15578/jpbkp.v10i2.270

Grassi, TLM, Paiva, NM, Oliveira, DL, Taniwaki, F., Cavazzana, JF, da Costa Camargo, GCR, Diniz, JCP, Bermejo-Poza, R., Borghesi, R., Villarroel, M., & Ponsano , EHG (2020). Growth performance and flesh quality of tilapia (Oreochromis niloticus) fed low concentrations of Rubrivivax gelatinosus, Saccharomyces cerevisiae and Spirulina platensis. Aquaculture International, 28(3), 1305–1317. https://doi.org/10.1007/s10499-020-00527-y

Hariyati, R.-. (2012). Growth and Biomass of Spirulina sp in a Laboratory Scale. Biome: Biological Scientific Periodic, 10(1), 19. https://doi.org/10.14710/bioma.10.1.19-22

Hutami, H. (2015). Comparison of the growth rate of spirulina platensis at different temperatures in a laboratory scale. 4, 74–81.

Indrastuti, C., Muskananfola, MR, Studi, P., Sumberdaya, M., Department, P., Diponegoro, U., & Chlorophyll-a, K. (2014). STUDY OF DIFFERENT LIGHT INTENSITY ON THE CONCENTRATION OF chlorophyll-a ON GROWTH OF MICROALGAE Spirulina platensis IN LABORATORY SCALE. 3, 169–174.

Maulana, PM, Karina, S., & Mellisa, S. (2017). Utilization of Tofu Liquid Waste Fermentation Using EM4 As An Alternative Nutrient For Microalgae Spirulina sp. Unsyiah Marine and Fisheries Student Scientific Journal, 2(1), 104–112.

Merry. (2018). Effect of Salinity Differences on Biomass Growth of Spirulina plastensis Microalgae Cultivation. Merry, 3(2), . http://journal.stainkudus.ac.id/index.php/equilibrium/article/view/1268/1127%0Ahttp://publicacoes.cardiol.br/portal/ijcs/portugues/2018/v3103/pdf/3103009. pdf%0Ahttp://www.scielo.org.co/scielo.php?script=sci_arttext&pid=S0121-75772018000200067&lng=en&tlng=

Mutia, S., & Nedi, S. (2021). EFFECT OF NITRATE AND PHOSPATE CONCENTRATION ON Spirulina platensis WITH INDOOR SCALE. 4(April), 29–35.

Notonegoro, H., Setyaningsih, I., & Tarman, K. (2018). Active Compound Content of Spirulina platensis Grown on Walne Media with Different Concentrations of NaNO3. Journal of Postharvest and Marine and Fishery Biotechnology, 13(2), 111. https://doi.org/10.15578/jpbkp.v13i2.555

Pandey, JP, Pathak, N., & Tiwari, A. (2010). Standardization of pH and Light Intensity for the Biomass Production of Spirulina platensis. Journal of Algal Biomass Utilization, 1(2), 93–102.

Prayitno, J. (2016). Growth Patterns and Harvesting of Biomass in Microalgae Photobioreactors for Carbon Capture. Journal of Environmental Technology, 17(1), 45. https://doi.org/10.29122/jtl.v17i1.1464

Radmann, EM, Reinehr, CO, & Costa, JAV (2007). Optimization of the repeated batch cultivation of microalga Spirulina platensis in open raceway ponds. Aquaculture, 265(1–4), 118–126. https://doi.org/10.1016/j.aquaculture.2007.02.001

Rahayu Kusdarwati. (2011). The Effect of Light Color Differences on the Growth of Spirulina sp. , 66(July), 37–39.

Saniyatul et.al. (2018). Protein Content of Spirulina platensis In Culture Media With Nitrate Concentration. 7(2), 98–102.

Santosa, V., & Limantara, L. (2007). Spirulina Cultivation. Popular Biology Magazine, 1(2), 14–24.

Sari Afriani, Uju, & Setyaningsih, I. (2018). The chemical composition of plantesis spirulina cultivated in a photobioreactor with different photoperiods. Indonesian Journal of Fishery Products Processing, 21(3), 471–479.

Setyaningsih, I., & Saputra, AT (2011). CHEMICAL COMPOSITION AND PIGMENT CONTENT Spirulina fusiformis AT DIFFERENT HARVESTING AGES IN FERTILIZER MEDIA. Indonesian Journal of Fishery Products Processing, 14(1), 63–69. https://doi.org/10.17844/jphpi.v14i1.3430

Sinaga, R., Effendi, I., & Ambarsari, H. (2020). Spirulina platensis Growth in Polluted Domestic Waste Water Medium and Its Utilization As a Raw Material for Biogas Production. 3(April), 38–48.

suminto. (2011). USE OF TECHNICAL CULTURE MEDIA ON PRODUCTION AND NUTRITIONAL CONTENT OF Spirulina platensis CELLS. FISHERIES SAINTEK : Indonesian Journal of Fisheries Science and Technology, 4(2), 53–61. https://doi.org/10.14710/ijfst.4.2.53-61

Syaichurrozi, I., & Jayanudin, J. (2017). Cultivation of Spirulina Platensis In Nutritious Media Tofu And Synthetic Liquid Waste. Journal of Renewable Natural Materials, 5(2), 68–73. https://doi.org/10.15294/jbat.v5i2.7398

Utomo, NBP, Winarti, & Erlina, A. (2005). Growth of Spirulina platensis cultured with Inorganic Fertilizer (Urea, TSP and ZA) and Chicken Manure. Indonesian Aquaculture, 4(1), 63–67.

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Published

2022-05-28

How to Cite

Piu, N. J. F. ., Koniyo, Y. ., & Salam, A. . (2022). The Effect of Salinity and Light on the Density of Spirulina Platensis, by using Walne Media. European Multidisciplinary Journal of Modern Science, 1–16. Retrieved from https://emjms.academicjournal.io/index.php/emjms/article/view/480