Cloning and in silico analysis revealed a genetic variation in osmotin-encoding genes in an Indonesian local cacao cultivar

https://doi.org/10.22146/ijbiotech.53937

Imam Bagus Nugroho(1*), Fahrurrozi Fahrurrozi(2)

(1) Indonesian Research Institute for Biotechnology and Bioindustry (IRIBB), Jalan Taman Kencana No 1, Bogor, Jawa Barat 16128, Indonesia
(2) Indonesian Institute of Sciences (LIPI), Jalan Raya Bogor Km. 46, Cibinong, Jawa Barat 16119, Indonesia
(*) Corresponding Author

Abstract


Theobroma cacao L. is an important Indonesian estate crop, which suffers from biotic and abiotic stresses. TcOSM, which encodes osmotin as a response to pathogens and environmental stresses, is, therefore, a focus of interest in this research, aiming to characterize TcOSM in an Indonesian local cacao cultivar. Bioinformatics queries for putative TcOSM were performed against the reference genome of a Criollo-type cacao cultivar. Based on nucleotide sequence determination, our results revealed two genes, TcOSM1 and TcOSM2, which have the highest similarity (≥ 90\%) to the cacao reference genes. Heterozygosity was detected in the TcOSM1-encoding gene, which contained two overlapping peaks in Sanger-sequencing chromatograms. One of the alleles resulted from a single nucleotide change (G to A), leading to a same-sense mutation that did not substitute corresponding alanine residue. Homology modeling using Phyre2 and structural alignment (superimposition) was conducted to examine the influence of genetic variations in TcOSM sequences upon the global protein structures. The result showed no significant changes (RMSD ≤ 0.206 Å, TM-score > 0.5) in tertiary protein structures. Altogether, this research succeeded in characterizing TcOSM while providing a fundamental study for future cacao biotechnology endeavors.

 


Keywords


Bioinformatic; heterozygosity; homology modeling; local cacao cultivar; pathogenesis-related proteins

Full Text:

PDF


References

Anil Kumar S, Hima Kumari P, Shravan Kumar G, Mohanalatha C, Kavi Kishor PB. 2015. Osmotin: a plant sentinel and a possible agonist of mammalian adiponectin. Front Plant Sci. 6: 163. Bailey BA, Evans HC, Phillips-Mora W, Ali SS, Meinhardt LW. 2018. Moniliophthora roreri, causal agent of cacao frosty pod rot. Mol Plant Pathol. 19(7): 1580–1594. Campos MA, S.G.Ribeiro, Rigden DJ, Monte DC, de Sa MFG. 2002. Putative pathogenesis-related genes within Solanum nigrum L. var. americanum genome: isolation of two genes coding for PR5-like proteins, phylogenetic and sequence analysis. Physiological and Molecular Plant Pathology 61(4): 205-216. Campos MA, Silva MS, Magalhães CP, Ribeiro SG, Sarto RPD, Vieira EA, de Sá MFG. 2008. Expression in Escherichia coli, purification, refolding and antifungal activity of an osmotin from Solanum nigrum. Microbial Cell Factories 7:7. Ding W, Mao W, Shao D, Zhang W, Gong H. 2018. DeepConPred2: An Improved Method for the Prediction of Protein Residue Contacts. Comput Struct Biotechnol J. 16:503–510. Edgar RC. 2004. MUSCLE: multiple sequence alignment with high accuracy and high throughput. Nucleic Acids Res. 32(5):1792–1797. Fahrurrozi. 2014. Microbiological and biochemical investigations of cacao bean fermentation. Doctoral dissertation. University of Hamburg, Germany. Falcao LL, Silva-Werneck JO, Ramos AR, Martins NF, Bresso E, Rodrigues MA, Bemquerer MP, Marcellino LH. 2016. Antimicrobial properties of two novel peptides derived from Theobroma cacao osmotin. Peptides 75–82. Farquharson KL. 2014. The Fungus, the Witches’ Broom, and the Chocolate Tree: Deciphering the Molecular Interplay between Moniliophthora perniciosa and Theobroma cacao. The Plant Cell 26(11): 4231. Kelley LA, Mezulis S, Yates CM, Wass MN, Sternberg MJ. 2015. The Phyre2 web portal for protein modeling, prediction and analysis. Nat Protoc. 10(6): 845–858. Kumar S, Stecher G, Li M, Knyaz C, Tamura K. 2018. MEGA X: Molecular Evolutionary Genetics Analysis across computing platform. Molecular Biology and Evolution 35: 1547-1549. Kufareva I, Abagyan R. 2012. Methods of protein structure comparison. Methods Mol Biol. 857: 231–257. Matitaputty A, Amanupunyo HRD, Rumahlewang W. 2014. Cacao plant (Theobroma cacao L.) damage caused by important diseases in Taniwel sub-District West Seram District. Jurnal Budidaya Pertanian 10(1): 6-9. Min K, Ha SC, Hasegawa PM, Bressan RA, Yun DJ, Kim KK. 2004. Crystal structure of osmotin, a plant antifungal protein. Proteins 54: 170-3. Nugroho IB, Handayani NSN. 2016. Primer design and in silico analysis using CLUSTALW and MUSCLE for L-arabinose isomerase (araA) gene detection in thermophilic bacteria. AIP Conference Proceedings 1755: 140007. Trisno J, Reflin, Martinius. 2016. Vascular Streak Dieback: A New Disease of Cacao in West Sumatera. J. Fitopatol. Indones. 12(4): 142–147. Tzou YM, Huang TS, Huggins KW, Chin BA, Simonne AH, Singh NK. 2011. Expression of truncated tobacco osmotin in Escherichia coli: purification and antifungal activity. Biotechnol. Lett. 33: 539–543. van Loon LC, Rep M, Pieterse CMJ. 2006. Significance of Inducible Defense-related Proteins in Infected Plants. Annu. Rev. Phytopathol. 44: 135-162. Viktorova J, Rehorova K, Musilova L, Suman J, Lovecka P, Macek T. 2017. New findings in potential applications of tobacco osmotin. Protein Expres Purif. 129: 84–93. Wickramasuriya AM, Dunwell JM. 2018. Cacao biotechnology: current status and future prospects. Plant Biotechnol J. 16(1): 4–17. Xu J, Zhang Y. 2010. How significant is a protein structure similarity with TM-score=0.5? Bioinformatics 26: 889-895.



DOI: https://doi.org/10.22146/ijbiotech.53937

Article Metrics

Abstract views : 1908 | views : 1874

Refbacks

  • There are currently no refbacks.


Copyright (c) 2020 The Author(s)

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