RESPONSE OF TURMERIC SHOOT EXPLANT AFTER CYTOKININ WITH IN VITRO

Marhan Nurullia, Fakultas Pertanian Universitas Padjadjaran, Indonesia
Erni Suminar Suminar, Fakultas Pertanian Universitas Padjadjaran
Anne Nurani, Fakultas Pertanian Universitas Padjadjaran

Abstract


This study was aimed at determining the response of turmeric shoot explants after the provision of various types and concentrations of cytokinins in vitro. This experiment was conducted at the Tissue Culture Laboratory, Faculty of Agriculture, Padjadjaran University from January to April 2018. The data were analyzed using T-Test. The experimental method used in this research was Completely Randomized Design (CRD). Explant planting was carried out in Laminar Air Flow. The experiment consisted of 7 treatments consisting of 4 replications and each test consisted of 4 units. Observation of this experiment was carried out for 12 MST. The main observations were made on the data that were tested statistically namely the percentage of explant growing shoots, percentage of explant growing roots, shoot height, number of tuns, number of roots and root length. The treatments consisted of Control, 2.5 mg L-1 BAP, 5 mg L-1 BAP, 0.5 mg L-1 TDZ, 1 mg L-1 TDZ, 0.01 mg L-1 Zeatin and 0.1 mg L Zeatin -1. The results show that the treatment of 1 mg L-1 TDZ shows the best response to the growth of turmeric explants by increasing the number of turmeric shoot explants than the others.

RESPONS EKSPLAN TUNAS KUNYIT SETELAH SITOKININ SECARA IN VITRO

Tujuan dari penelitian ini yaitu untuk melihat respons eksplan tunas kunyit terhadap pemberian berbagai jenis dan konsentrasi sitokinin secara in vitro. Percobaan ini dilakukan di Laboratorium Kultur Jaringan, Fakultas Pertanian, Universitas Padjadjaran dari bulan Januari sampai April 2018. Hasil percobaan dianalisis dengan Sample T-Test. Metode percobaan yang digunakan dalam penelitian ini yaitu Rancangan Acak Lengkap (RAL). Penanaman eksplan dilakukan di dalam Laminar Air Flow. Percobaan terdiri dari 7 perlakuan sebanyak 4 ulangan dan setiap ulangan terdiri dari 4 unit. Pengamatan percobaan ini dilakukan selama 12 MST. Pengamatan utama dilakukan terhadap data-data yang diuji secara statistik yakni persentase eksplan tumbuh tunas, persentse eksplan tumbuh akar, tinggi tunas, jumlah tunas, jumlah akar dan panjang akar. Perlakuan terdiri dari Kontrol; 2,5 mg L-1 BAP; 5 mg L-1 BAP; 0,5 mg L-1 TDZ; 1 mg L-1 TDZ; 0,01 mg L-1 Zeatin; dan 0,1 mg L-1 Zeatin. Hasil penelitian menunjukkan bahwa perlakuan 1 mg L-1 TDZ menunjukkan respons yang lebih baik terhadap pertumbuhan eksplan kunyit dengan meningkatkan jumlah tunas eksplan tanaman kunyit daripada yang lainnya.


Keywords


turmeric, cytokinins, in vitro

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References


Arab, M. M., Yadollahi, A., Shojaeiyan, A., Shokri, S., & Ghojah, S. M. (2014). Effects of nutrient media, different cytokinin types and their concentrations on in vitro multiplication of G× N15 (hybrid of almond× peach) vegetative rootstock. Journal of Genetic Engineer-ing and Biotechnology, 12(2), 81-87.

Badan Pusat Statistik dan Direktorat Jendral. (2017). Produksi kunyit menurut provin-si, tahun 2012-2016. Jakarta: Kementrian Pertanian Republik Indonesia.

Casanova, E., Valdés, A. E., Fernández, B., Moysset, L., & Trillas, M. I. (2004). Levels and immunolocalization of endogenous cytokinins in thidiazuron-induced shoot organogenesis in carnation. Journal of plant physiology, 161(1), 95-104.

Das, A., Kesari, V., & Rangan, L. (2010). Plant regeneration in curcuma species and assessment of genetic stability of regenerated plants. Biologia Plantarum, 54(3), 423-429.

de Souza Ferrari, M. P., Antoniazzi, D., Nascimento, A. B., Franz, L. F., Bezerra, C. S., & Magalhães, H. E. M. (2016). Evaluation of new protocols to Curcuma longa micropropagation: a medicinal and ornamental specie. Journal of Medicinal Plants Research, 10(25), 367-376.

Guo, B., Abbasi, B. H., Zeb, A., Xu, L. L., & Wei, Y. H. (2011). Thidiazuron: A multi-dimensional plant growth regulator. African Journal of Biotechnology, 10(45), 8984-9000.

Hamirah, M. N., H. B. Sani., P. C. Boyce and S.L Sim. (2010). Micropropagation of red ginger (Zingiber montanum Koenig), a medicinal plant. AsPac J. Mol. Biol. Biotechnol, 18(1), 127-130.

Hoesen, D. S. H. (2004). Kultur in vitro eksplan rimpang zingiber zerumbet van aromaticum val. Berita Biologi, 7(3), 117-125.

Indah, P. N., & Ermavitalini, D. (2013). Induksi kalus daun nyamplung (Calo-phyllum inophyllum Linn.) pada beberapa kombinasi konsentrasi 6-benzylaminopurine (BAP) dan 2, 4-bichlorophenoxyacetic acid (2, 4-D). Jurnal Sains dan Seni ITS, 2(1), E1-E6.

Jones, B., Gunnerås, S. A., Petersson, S. V., Tarkowski, P., Graham, N., May, S., ... & Ljung, K. (2010). Cytokinin regulation of auxin synthesis in Arabidopsis involves a homeostatic feedback loop regulated via auxin and cytokinin signal transduction. The Plant Cell, 22(9), 2956-2969.

Kasutjianingati, R. P., Khumaida, N., & Efendi, D. (2010). Kemampuan pecah tunas dan kemampuan berbiak mother plant pisang Rajabulu (AAB) dan pisang Tanduk (AAB) dalam medium inisiasi in vitro. Agriplus, 20, 39-46.

Kristina, N. N., & Syahid, S. F. (2012). Pengaruh air kelapa terhadap multipli-kasi tunas in vitro, produksi rimpang, dan kandungan xanthorrhizol temulawak di lapangan. Jurnal Littri, 18(3), 125-134.

Lizawati. (2012). Induksi kalus embriogenik dari eksplan tunas apikal tanaman jarak pagar (Jatropha curcas L.) dengan penggunaan 2,4-D dan TDZ. Menara Perkebunan, 1(2), 75-87.

Mei, F. Y. (2012). In vitro regeneration of kunyit hitam (curcuma caesia roxb.) (Tesis tidak diterbitkan). Faculty of Resource Sciense & Technology, Malaysia.

Mutui, T., Mibus, H., & Serek, M. (2005). Effects of thidiazuron, ethylene, abscisic acid and dark storage on leaf yellowing and rooting of Pelargonium cuttings. The Journal of Horticultural Science and Biotechnology, 80(5), 543-550.

Oratmangun, K. M., Pandiangan, D., & Kandou, F. E. (2017). Deskripsi Jenis-Jenis Kontaminan Dari Kultur Kalus Catharanthus roseus (L.) G. Donnaman. Jurnal MIPA, 6(1), 47-52.

Rahayu, S., & Adil, W. H. (2012). The effect of BAP and Thidiazuron on in vitro growth of java turmeric (Curcuma xanthorrhiza Roxb). Plant Science, 7(10), 820-824.

Rahimi, S., Naderi, R., Ghaemaghami, S. A., Kalatejari, S., & Farham, B. (2013). Study on effects of different Plant Growth Regulators types in shoot regeneration and node formation of Sutsuki Azalea (Rhododendron indicum): A commercially important bonsai. Procedia Engineering, 59, 240-246.

Rainiyati, L., & Kristiana, M. (2009). Peranan IAA dan BAP terhadap perkembangan nodul pisang (Musa AAB) raja nangka secara in vitro. Jurnal Agronomi, 13(1), 51-57.

Sajid, Z. A., & Aftab, F. (2009). Effect of thidiazuron (TDZ) on in ivtro micro-propagation of solanum tuberosum L. cvx desire and cardinal. Pak. J. Bot., 41(4), 1811-1815.

Shofiyani, A., & Damajanti, N. (2017). Pengembangan metode sterilisasi pada berbagai eksplan guna meningkatkan keberhasilan kultur kalus kencur (Kaemferia galangal L). Agritech, 17(1), 55-64.

Singh, R., Chandra, R., Bose, M., & Luthra, P. M. (2002). Antibacterial activity of curcuma longa rhizome extract on pathogenic bacteria. Current Science, 83(6), 737-740.

Siregar, L. H., Siregar, L. A. M., & Putri, L. A. P. (2013). Pengaruh α-benzil amino purina dan α-asam asetat naftalena terhadap pertumbuhan akar boesenbergia flava secara in-vitro. Jurnal Online Agroekoteknologi, 1(3), 511-522.

Susilowati, A., & Listyawati, S. (2001). Keanekaragaman jenis mikroorganisme sumber kontaminasi kultur in vitro di Sub Lab Biologi Laboratorium MIPA Pusat UNS. Biodiversitas, 2(1), 110-114.

Untari, R., & Puspitaningtyas, D. M. (2006). The effect of some organic compounds and NAA application on the in vitro growth of the black orchid (Coelogyne pandurata Lindl.). Biodiversitas Journal of Biological Diversity, 7(4), 344-348.

Winarsih, W., Wientarsih, I., Handharyani, E., & Almira, R. M. (2010). Evaluasi aktivitas fraksi hexan rimpang kunyit (Curcuma longa) dalam persembuhan luka pada mencit. Jurnal Hemera Zoa, 1(2), 37-44.

Zheng, Y., Liu, Y., Ma, M., & Xu, K. (2008). Increasing in vitro microrhizome production of ginger (Zingiber officinale Roscoe). Acta physiologiae plantarum, 30(4), 513-519.




DOI: https://doi.org/10.21831/jps.v24i2.20475

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