Pengaruh Cahaya Artifisial terhadap Karakter Morfologi dan Genetik Bacopa caroliniana dalam Kultur Jaringan

https://doi.org/10.22146/veg.104665

Syakhril Alam(1), Laela Sari(2*), Nonon Saribanon(3), Wening Enggarini(4), Nurhamidar Rahman(5), Evan Maulana(6), Amalia Prihaningsih(7)

(1) Sekolah Pascasarjana, Universitas Nasional
(2) Pusat Riset Botani Terapan, Organisasi Riset Hayati dan Lingkungan, Badan Riset dan Inovasi Nasional
(3) Sekolah Pascasarjana, Universitas Nasional
(4) Pusat Riset Rekayasa Genetika, Organisasi Riset Hayati dan Lingkungan, Badan Riset dan Inovasi Nasional
(5) Pusat Riset Botani Terapan, Organisasi Riset Hayati dan Lingkungan, Badan Riset dan Inovasi Nasional
(6) Pusat Riset Botani Terapan, Organisasi Riset Hayati dan Lingkungan, Badan Riset dan Inovasi Nasional
(7) Fungsi Pengelolaan Layanan Laboratorium Genomik-Direktorat Pengelolaan Laboratorium, Fasilitas Riset dan Kawasan Sains dan Teknologi, Badan Riset dan Inovasi Nasional
(*) Corresponding Author

Abstract


Bacopa caroliniana has great potential in the fields of ecology, medicinal and ornamental, also has aesthetic value in the form of very rare small blue flowers. This beauty is highly sought after among aquatic lovers, for that genetic diversity is needed using the light spectrum. However, understanding of the influence of light spectrum on the growth and genetic characters of B. caroliniana using tissue culture. The research was carried out from March 2023 to January 2024 at the KST Soekarno National Research and Innovation Agency Laboratory, Cibinong, Bogor. Explants were grown in MS media (Murashige and Skoog) treated with white (control), blue, red and purple LED light. The design used in this research was a Completely Randomized Design (CRD) with one factor and six replications. Observations include plant height, number of leaves, number of axillary shoots, number of roots, as well as genetic analysis through DNA extraction, PCR and sequencing. The results showed that white light gave the best results on all morphological parameters, with the highest number of leaves (30,800), while purple light produced the lowest number of leaves (17,500). The ANOVA test showed that plant height did not differ significantly between treatments (Sig. = 0.137), indicating the adaptability of B. caroliniana to various light spectra. The research conclusions show that white light is optimal for increasing leaf number and photosynthetic capacity, which is highly relevant in tissu culture and aquaculture applications. Genetically, blue and white light treatment did not cause significant genetic changes, while red and purple light showed slight, temporary genetic changes, possibly influenced by epigenetic mechanisms.


Keywords


Bacopa caroliniana; genetic; in vitro; light spectrum; photosynthesis

Full Text:

PDF


References

Anindito, B., Sooai, A.G., Achlaq, M.M., Al-Azam, M.N., Winaya, A. and Maftuchah, M. 2018. Indoor Agriculture: Measurement of The Intensity of LED for Optimum Photosynthetic Recovery. In: 2018 5th International Conference on Electrical Engineering, Computer Science and Informatics (EECSI). IEEE. 356–361. doi: 10.1109/EECSI.2018.8752827.

Arifah, R.U., Sedjati, S., Supriyantini, E. dan Ridlo, A. 2019. Kandungan Klorofil dan Fukosantin serta Pertumbuhan Skeletonema costatum pada Pemberian Spektrum Cahaya Yang Berbeda. Buletin Oseanografi Marina 8(1):25. doi: 10.14710/buloma.v8i1.19986.

Bornette, G. and Puijalon, S. 2011. Response of aquatic plants to abiotic factors: a review. Aquatic Sciences 73(1): 1–14. doi: 10.1007/s00027-010-0162-7.

Carone, B., Fauquier, L., Habib, N., Shea, J., Hart, C., Li, R., Bock, C., Li, C., Gu, H., Zamore, P., Meissner, A., Weng, Z., Hofmann, H., Friedman, N., Rando, O. 2010. Paternally Induced Transgenerational Environmental Reprogramming of Metabolic Gene Expression in Mammals. Cell 143(7): 1084–1096. doi: 10.1016/j.cell.2010.12.008.

Cartika, I., Rahayu, S.T., Basuki, R.S. dan Soetiarso, T.A. 2022. Pertumbuhan dan Hasil Tanaman Bawang Putih pada Berbagai Penambahan Lama Penyinaran Lampu LED Putih. Jurnal Agronomi Indonesia (Indonesian Journal of Agronomy) 50(1): 57–64. doi: 10.24831/jai.v50i1.39300.

Cope, K.R. and Bugbee, B. 2013. Spectral Effects of Three Types of White Light-emitting Diodes on Plant Growth and Development: Absolute versus Relative Amounts of Blue Light. HortScience 48(4): 504–509. doi: 10.21273/HORTSCI.48.4.504.

Dar, F.A., Mushtaq, N.U., Saleem, S., Rehman, R.U., Dar, T.U.H. and Hakeem, K.R. 2022. Role of Epigenetics in Modulating Phenotypic Plasticity against Abiotic Stresses in Plants. International Journal of Genomics 2022. 1–13. doi: 10.1155/2022/1092894.

Fankhauser, C. and Casal, J.J. 2004. Phenotypic characterization of a photomorphogenic mutant. The Plant Journal 39(5): 747–760. doi: 10.1111/j.1365-313X.2004.02148.x.

Fiorucci, A.-S. and Fankhauser, C. 2017. Plant Strategies for Enhancing Access to Sunlight. Current Biology 27(17): R931–R940. doi: 10.1016/j.cub.2017.05.085.

García-Caparrós, P., Martínez-Ramírez, G., Almansa, E.M., Javier Barbero, F., Chica, R.M. and Teresa Lao, M. 2020. Growth, Photosynthesis, and Physiological Responses of Ornamental Plants to Complementation with Monochromic or Mixed Red-Blue LEDs for Use in Indoor Environments. Agronomy 10(2): 284. doi: 10.3390/agronomy10020284.

Gettys, L. and Torre, C.J.D. 2015. Lemon bacopa: Bacopa caroliniana. journals.flvc.org. 1–3. Available at: https://edis.ifas.ufl.edu/publication/AG392 [Accessed: 2 January 2024].

Herwitarahman, A., Poerwanto, R., Sopandie, D. dan Matra, D.D. 2021. Respon Fisiologi pada Pembibitan Mangga Kasturi (Mangifera casturi Kosterm) terhadap Aplikasi Cahaya LED (Light Emitting Diode). Jurnal Agronomi Indonesia (Indonesian Journal of Agronomy) 49(3): 302–307. doi: 10.24831/jai.v49i3.38250.

Hogewoning, S.W., Trouwborst, G., Maljaars, H., Poorter, H., van Ieperen, W. and Harbinson, J. 2010. Blue light dose-responses of leaf photosynthesis, morphology, and chemical composition of Cucumis sativus grown under different combinations of red and blue light. Journal of Experimental Botany 61(11): 3107–3117. doi: 10.1093/jxb/erq132.

Hou, J., Wang, S., Shan, G., Yuan, L., Wang, C., Zhu, S., Wang, X., Qiu, L. 2022. Identification of Low-Light-Resistant Germplasm and Related Loci of Soybean. Agronomy 12(7): 1483. doi: 10.3390/agronomy12071483.

Izzah, N., Nugraha, M.F.I. dan Lestari, R. 2022. Histo-anatomy and morphology of aquatic plants Bacopa amplexicaulis (Pursh) Wettst., Bacopa lanigera (Cham. & Schltdl.) Wettst., and Bacopa rotundifolia (Michx.) Wettst. IOP Conference Series: Earth and Environmental Science 1119(1): 012002. doi: 10.1088/1755-1315/1119/1/012002.

Jiang, W., Liu, T., Nan, W., Jeewani, D., Niu, Y., Li, C., Wang, Y., Shi, X., Wang, C., Wang, J., Li, Y., Gao, X., Wang, Z. 2018. Two transcription factors TaPpm1 and TaPpb1 co-regulate anthocyanin biosynthesis in purple pericarps of wheat. Journal of Experimental Botany 69(10): 2555–2567. doi: 10.1093/jxb/ery101.

Johkan, M., Shoji, K., Goto, F., Hashida, S. and Yoshihara, T. 2010. Blue Light-emitting Diode Light Irradiation of Seedlings Improves Seedling Quality and Growth after Transplanting in Red Leaf Lettuce. HortScience 45(12): 1809–1814. doi: 10.21273/HORTSCI.45.12.1809.

Jylhävä, J., Hjelmborg, J., Soerensen, M., Munoz, E., Tan, Q., Kuja-Halkola, R., Mengel-From, J., Christensen, K., Christiansen, L., Hägg, S., Pedersen, N., Reynolds, C. 2019. Longitudinal changes in the genetic and environmental influences on the epigenetic clocks across old age: Evidence from two twin cohorts. EBioMedicine 40: 710–716. doi: 10.1016/j.ebiom.2019.01.040.

Kopsell, D.A., Sams, C.E. and Morrow, R.C. 2015. Blue Wavelengths from LED Lighting Increase Nutritionally Important Metabolites in Specialty Crops. HortScience 50(9): 1285–1288. doi: 10.21273/HORTSCI.50.9.1285.

Kort, D.H., Panis, B., Deforce, D., Van Nieuwerburgh, F. and Honnay, O. 2019. Ecological divergence of DNA methylation patterns at distinct spatial scales. doi: 10.1101/832816.

Kou, H., Li, Y., Song, X., Ou, X., Xing, S., Ma, J., Von, W.D., Liu, B. 2011. Heritable alteration in DNA methylation induced by nitrogen-deficiency stress accompanies enhanced tolerance by progenies to the stress in rice (Oryza sativa L.). Journal of Plant Physiology 168(14): 1685–1693. doi: 10.1016/j.jplph.2011.03.017.

Lai, C., Pan, H., Zhang, J., Wang, Q., Que, Q., Pan, R., Lai, Z., Lai G. 2022. Light Quality Modulates Growth, Triggers Differential Accumulation of Phenolic Compounds, and Changes the Total Antioxidant Capacity in the Red Callus of Vitis davidii. Journal of Agricultural and Food Chemistry 70(41): 13264–13278. doi: 10.1021/acs.jafc.2c04620.

Lee, J.H. and Nam, S.Y. 2023. Vegetative Propagation of Six Pachyphytum Species as Influenced by Different LED Light Qualities. Horticultural Science and Technology 41(3): 237–249. doi: 10.7235/HORT.20230022.

Li, D., Linghu, S., Zhang, Y., Song, S., Cao, J., H, Zhang Y., Yu, F,. Han, Y. 2024. Genetic Map Construction and Primary Quantitative Trait Locus Analysis of Low-Light-Stress-Related Traits in Cucumber. Agronomy 14(5): 1061. doi: 10.3390/agronomy14051061.

Liu, S., Wang, X. and Peng, L. 2023. Comparative Transcriptomic Analysis of the Metabolism of Betalains and Flavonoids in Red Amaranth Hypocotyl under Blue Light and Dark Conditions. Molecules 28(15): 5627. doi: 10.3390/molecules28155627.

Liu, T.T., Chao, L.K.P., Hong, K.S., Huang, Y.J. and Yang, T.-S. 2019. Composition and Insecticidal Activity of Essential Oil of Bacopa caroliniana and Interactive Effects of Individual Compounds on the Activity. Insects 11(1): 23. doi: 10.3390/insects11010023.

Miao, K., Liu, S., Cao, W., Lv, J., Yu, C., Huang, T., Sun, D., Liao, C., Pang, Y., Hu, R., Pang, Z., Yu, M., Wang, H., Wu, X., Liu, Y., Gao, W., Li, L. 2024. Five years of change in adult twins: longitudinal changes of genetic and environmental influence on epigenetic clocks. BMC Medicine 22(1): 289. doi: 10.1186/s12916-024-03511-y.

Okazawa, T. and Nishijima, T. 2017. Effect of Low Light Intensity on Longevity of Flowering on Bedding Plants Targeted for Indoor Use. Japan Agricultural Research Quarterly: JARQ 51(3): 279–286. doi: 10.6090/jarq.51.279.

Ouzounis, T., Fretté, X., Ottosen, C. and Rosenqvist, E. 2015. Spectral effects of LEDs on chlorophyll fluorescence and pigmentation in Phalaenopsis Vivien and Purple Star. Physiologia Plantarum 154(2): 314–327. doi: 10.1111/ppl.12300.

Qin, H., Xu, Y., Liu, B., Gao, Y., Zheng, Y. and Li, Q. 2023. UV-A Supplement Improved Growth, Antioxidant Capacity, and Anthocyanin Accumulation in Purple Lettuce (Lactuca sativa L.). Horticulturae 9(6): 634. doi: 10.3390/horticulturae9060634.

Ramadani, S., Kristina, N., Syarif, A. dan Resigia, E. 2024. Pengaruh Warna Cahaya Terhadap Morfogenesis Eksplan Kalus Bawang Putih (Allium sativum L.) Secara In-Vitro. Jurnal Agroteknologi 14(2): 63. doi: 10.24014/ja.v14i2.25211.

Randall, W.C. and Lopez, R.G. 2015. Comparison of Bedding Plant Seedlings Grown Under Sole Source Light Emitting Diodes (LEDs) and Greenhouse Supplemental Lighting from LEDs and High-pressure Sodium Lamps. HortScience 50(5): 705–713. doi: 10.21273/HORTSCI.50.5.705.

Reynolds, C., Tan, Q., Munoz, E., Jylhävä. J,, Hjelmborg, J., Christiansen, L., Hägg, S., Pedersen, N. 2020. A decade of epigenetic change in aging twins: Genetic and environmental contributions to longitudinal DNA methylation. Aging Cell 19(8). doi: 10.1111/acel.13197.

Samur, G.A., Wijaya, I.M.A.S. dan Sulastri, N.N. 2023. Pengaruh Lama Penyinaran LED Merah Biru terhadap Pertumbuhan Pakcoy (Brassica rapa L). Jurnal BETA (Biosistem dan Teknik Pertanian) 12(1): 33. doi: 10.24843/JBETA.2024.v12.i01.p04.

Santoso, J. and Suhardjono, H. 2020. The Study of Color Spectrum Curs Value Against Sunlight Color and Artificial Light for Plant Growth. In: Nusantara Science and Technology Proceedings. Galaxy Science. 11–22. Available at: https://nstproceeding.com/index.php/nuscientech/article/view/279 [Accessed: 14 January 2025].

Secco, D., Wang, C., Shou, H., Schultz, M., Chiarenza, S., Nussaume, L., Ecker, J., Whelan, J., Lister, R. 2015. Stress induced gene expression drives transient DNA methylation changes at adjacent repetitive elements. eLife 4. doi: 10.7554/eLife.09343.

Sellaro, R., Crepy, M., Trupkin, S.A., Karayekov, E., Buchovsky, A.S., Rossi, C. and Casal, J.J. 2010. Cryptochrome as a Sensor of the Blue/Green Ratio of Natural Radiation in Arabidopsis. Plant Physiology 154(1): 401–409. doi: 10.1104/pp.110.160820.

Setyati, W.A., Pramesti, R., Pringgenies, D., Suryono, C.A., Irwani, I. dan Zainuddin, M. 2020. Efek Panjang Gelombang Terhadap Pertumbuhan Propagul Pada Kultur Jaringan Eucheuma cottonii Doty, 1885 (Rhodophyceae; Solieracea). Jurnal Kelautan Tropis 23(3): 349–356. doi: 10.14710/jkt.v23i3.7075.

Silva, D.F. da, Pio, R., Soares, J.D.R., Nogueira, P.V., Peche, P.M. and Villa, F. 2016. The production of Physalis spp. seedlings grown under different-colored shade nets. Acta Scientiarum. Agronomy 38(2): 257. doi: 10.4025/actasciagron.v38i2.27893.

Sundari, T. 2018. Penampilan Galur-Galur Kedelai Toleran Naungan Pada Uji Daya Hasil Pendahuluan Di Dua Lingkungan. Buletin Palawija 14(2): 63. doi: 10.21082/bulpa.v14n2.2016.p63-71.

Supriani, E., Budiyanto, S. and Sutarno, S. 2021. Respon Tanaman Selada Keriting Hijau Terhadap Penyinaran Lampu LED dan Konsentrasi CaCl2 pada Sistem Hidroponik. AGROVITAL : Jurnal Ilmu Pertanian 6(2): 99. doi: 10.35329/agrovital.v6i2.2713.

Tattini, M., Landi, M., Brunetti, C., Giordano, C., Remorini, D., Gould, K.S. and Guidi, L. 2014. Epidermal coumaroyl anthocyanins protect sweet basil against excess light stress: multiple consequences of light attenuation. Physiologia Plantarum 152(3): 585–598. doi: 10.1111/ppl.12201.

Walter, B.L.R. 2023. Blue Water Hyssop. Available at: https://www.socfindoconservation.co.id/plant/924 [Accessed: 10 November 2023].

Yan, Z., He, D., Niu, G., Zhou, Q. and Qu, Y. 2020. Growth, nutritional quality, and energy use efficiency in two lettuce cultivars as influenced by white plus red versus red plus blue LEDs. International Journal of Agricultural and Biological Engineering 13(2): 33–40. doi: 10.25165/j.ijabe.20201302.5135.

Yang, B., Zhou, X., Xu, R., Wang, J., Lin, Y., Pang, J., Wu, S., Zhong, F. 2016. Comprehensive Analysis of Photosynthetic Characteristics and Quality Improvement of Purple Cabbage under Different Combinations of Monochromatic Light. Frontiers in Plant Science 7. doi: 10.3389/fpls.2016.01788.

Zheng, X., Chen, L., Li, M., Lou, Q., Xia, H., Wang, P., Li, T., Liu, H., Luo, L. 2013. Transgenerational Variations in DNA Methylation Induced by Drought Stress in Two Rice Varieties with Distinguished Difference to Drought Resistance. PLoS ONE 8(11): e80253. doi: 10.1371/journal.pone.0080253.



DOI: https://doi.org/10.22146/veg.104665

Article Metrics

Abstract views : 0 | views : 0

Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 laela sari, Syakhril Alam, Nonon Saribanon, Media Fitri Isma Nugraha, Wening Enggarini, Nurhamidar Rahman, Evan Maulana, Amalia Prihaningsih

Creative Commons License
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.

VEGETALIKA journal indexed by: 

 

       

  

View My Stats