Abdullah AH, Adom AH, Md Shakaff AY, Ahmad MN, Saad MA, Tan ES, Fikri NA, Markom MA, Zakaria A (2011) Electronic nose system for Ganoderma detection. Sens Lett 9(1):353–358
Abdullah A, Adom A, Shakaff A, Ahmad M, Zakaria A, Saad F, Kamarudin L (2012) Hand-held electronic nose sensor selection system for Basal Stamp Rot (BSR) disease detection, 2012 Third International Conference on Intelligent Systems Modelling and Simulation, Kota Kinabalu, Malaysia, pp 737–742. https://doi.org/10.1109/ISMS.2012.139
Abdullah J, Hassan H, Shari MR, Mohd S, Mustapha M, Mahmood AA, Jamaludin S, Ngah MR, Hamid NH (2013) Gamma Scorpion: Mobile gamma-ray tomography system for early detection of basal stem rot in oil palm plantations. Opt Eng 52(3):036502–036502
Abdullah AH, Shakaff AM, Zakaria A (2014) Application Specific Electronic Nose (ASEN) for Ganoderma boninense detection using artificial neural network. In: 2014 2nd International Conference on Electronic Design (ICED). IEEE, pp 148–152
Ahmadi P, Muharam FM, Ahmad K, Mansor S, Abu Seman I (2017) Early detection of Ganoderma basal stem rot of oil palms using artificial neural network spectral analysis. Plant Dis 101(6):10091016
Akul Y, Kumar V, Chong KP (2018) Designing primers for loop-mediated isothermal amplification (LAMP) for detection of Ganoderma boninense. Bulgarian J Agric Sci 24(5):854–859
Al-Obaidi JR, Mohd-Yusuf Y, Razali N, Jayapalan JJ, Tey CC, Md-Noh N, Junit SM, Othman RY, Hashim OH (2014) Identification of proteins of altered abundance in oil palm infected with Ganoderma boninense. Int J Mol Sci 15(3):5175–5192
Article PubMed PubMed Central Google Scholar
Al-Obaidi JR, Saidi NB, Usuldin SR, Hussin SN, Yusoff NM, Idris AS (2016) Comparison of different protein extraction methods for gel-based proteomic analysis of Ganoderma spp. Protein J 35:100–106
Article CAS PubMed Google Scholar
Amanda WI, Prakoso Ht (2018) Modified Ganoderma selective medium to meet Indonesia’s government regulation. In: IOP Conference Series: Earth and Environmental Science, vol 183, 1st edn. IOP Publishing, p 012020
Arango M, Martínez G, Torres G (2016) Advances in the interpretation of tomographic images as an early detection method of oil palm affected by basal stem rot in Colombia. Plant Dis 100(8):1559–1563
Article CAS PubMed Google Scholar
Arif MS, Roslan A, Idris AS (2011) Proceedings of the third MPOB-IOPRI international seminar: Integrated oil palm pests and diseases management. Kuala Lumpur: Convention centre. Economics of oil palm pests and Ganoderma disease and yield losses Kuala Lumpur: 14th November: 37659
Ariffin D, Idris AS (1991) A selective medium for the isolation of Ganoderma from diseased tissues. In: Yusof B et al (eds) Proceedings of the 1991 PORIM International Palm Oil Conference-Progress, Prospects and Challenges Towards the 21st Century Module 1, Agriculture. Palm Oil Research Institute of Malaysia, Bangi, Selangor, Malaysia, pp 517–519
Ariffin D, Idris AS (1993) A selective medium for the isolation of Ganoderma from disease tissues. In: PORIM international palm oil conference. Progress, prospects challenges towards the 21st century. (Agriculture) September 9-14 Kuala Lumpur, Malaysia (No. L- 6350218). PORIM
Aswad AM, Sariah M, Paterson RRM et al (2011) Ergosterol analyses of oil palm seedlings and plants infected with Ganoderma. Crop Prot 30(11):1438–1442
Azhar B, Lindenmayer DB, Wood J, Fischer J, Manning A, McElhinny C, Zakaria M (2011) The conservation value of oil palm plantation estates, smallholdings and logged peat swamp forest for birds. Forest Ecol Mana 262:2306–2315
Azmi NAN, Bejo SK, Jahari M et al (2020) Early detection of Ganoderma boninense in oil palm seedlings using support vector machines. Remote Sens 12(23):3920
Azuan NH, Khairunniza-Bejo S, Abdullah AF, Kassim MS, Ahmad D (2019) Analysis of changes in oil palm canopy architecture from basal stem rot using terrestrial laser scanner. Plant Dis 103(12):3218–3225
Article CAS PubMed Google Scholar
Bahari MN, Sakeh NM, Abdullah SN, Ramli RR, Kadkhodaei S (2018) Transciptome profiling at early infection of Elaeis guineensis by Ganoderma boninense provides novel insights on fungal transition from biotrophic to necrotrophic phase. BMC Plant Biol 18(1):1–25
Bakhori NM, Yusof NA, Abdullah AH, Hussein MZ (2012) Development of fluorescence-based DNA biosensor utilizing quantum dot for early detection oGf anoderma Boninense. IPCBEE 48(26):138–142
Bakhori NM, Yusof NA, Abdullah AH, Hussein MZ (2013) Development of a fluorescence resonance energy transfer (FRET)-based DNA biosensor for detection of synthetic oligonucleotide of Ganoderma boninense. Biosensors 3(4):419–428
Baldwin IT, Halitschke R, Paschold A, Von Dahl CC, Preston CA (2006) Volatile signaling in plant-plant interactions: “talking trees” in the genomics era. Science 311(5762):812–815
Article CAS PubMed Google Scholar
Bivi MS, Paiko AS, Khairulmazmi A, Akhtar MS, Idris AS (2016) Control of basal stem rot disease in oil palm by supplementation of calcium, copper, and salicylic acid. Plant Pathol J 32(5):396
Article CAS PubMed PubMed Central Google Scholar
Bridge PD, O Grady EB, Pilott CA, Sanderson FR (2000) Development of molecular diagnostics for the detection of Ganoderma isolates pathogenic to oil palm. In: Flood J, Bridge PD, Holderness M (eds) Ganoderma diseases of perennial crops. CABI Publishing, pp 225–234
Cheah LW, Goh YK, Goh KJ et al (2019) Electronic nose detection of Ganoderma boninense volatile organic compounds (VOCs) using direct headspace analysis. Trans Sci Technol 6:334–339
Chen S (2012) Clinical uses of botulinum neurotoxins: Current indications, limitations and future developments. Toxins 4(10):913–939
Article CAS PubMed PubMed Central Google Scholar
Chong KP, Markus A, Rossall S (2012) The susceptibility of different varieties of oil palm seedlings to Ganoderma boninense infection. Pak J Bot 44(6):2001–2004
Chong KP, Dayou J, Alexander A (2017) Pathogenic nature of Ganoderma boninense and basal stem rot disease. Detection and control of Ganoderma boninense in oil palm crop. Springer, Cham, pp 5–12
Chong KP, Rossall S, Markus A (2009) A comparison on the susceptibility of varieties AVROS, Calabar and Ekona of oil palm seedlings to Ganoderma boninense infection. In: Proceedings on the Science and Technology Universiti Malaysia Sabah, Kota Kinabalu, Malaysia (Kota Kinabalu, Sabah: Universiti Malaysia Sabah) 461–467
Chong KP (2010) The role of phenolics in the interaction between oil palm and Ganoderma boninense the causal agent of basal stem rot. Doctoral dissertation, University of Nottingham
Chong KP, Lum MS, Foong CP, Wong CM, Atong M, Rossall S (2011) First identification ofG anoderma boninense isolated from Sabah based on PCR and sequence homology. Afr J Biotechnol 10(66):14718–14723
Cooper RM, Flood J, Rees RW (2011) Ganoderma boninense in oil palm plantations: Current thinking on epidemiology, resistance and pathology. Planter 87(1024):515–526
Daim JLD, Ooi TEK, Ithnin N et al (2015) Comparative proteomic analysis of oil palm leaves infected with Ganoderma boninense revealed changes in proteins involved in photosynthesis, carbohydrate metabolism, and immunity and defense. Electrophoresis 36(15):1699–1710
Darmono TW (2000) Ganoderma in oil palm in Indonesia: Current status and prospective use of antibodies for the detection of infection. Ganoderma diseases of perennial crops. 249–266
Darus A, Chong CK, Henson IE, Sukaimi J, Wahid MB, Mohd-Tayeb D, Paranjothy K, Rajanaidu N (1993) PORIM International palm oil congress update and vision. Agriculture. In Proceedings of the PORIM International Palm Oil Congress Update and Vision, Kuala Lumpur, Malaysia, pp 20–25
Dutse SW, Yusof NA, Ahmad H et al (2012) An electrochemical DNA biosensor for Ganoderma boninense pathogen of the Oil palm utilizing a New ruthenium complex, [Ru(dppz) 2 (qtpy)] Cl2. Int J Electrochem Sci 7:8105–8115
Dutse SW, Yusof NA, Ahmad H, Hussein MZ et al (2013) DNA-based biosensor for detection of Ganoderma boninense, an Oil palm pathogen utilizing newly synthesized ruthenium complex [Ru (phen) 2 (qtpy)] 2 based on a PEDOT-PSS/Ag nanoparticles modified electrode. Int J Electrochem Sci 8(9):11048–11057
Elliott ML, Des Jardin EA, Ortiz JV, Macias T (2018) Genetic variability of Ganoderma zonatum infecting palms in Florida. Mycologia 110(2):339–346. https://doi.org/10.1080/00275514.2018.1442083
Article CAS PubMed Google Scholar
Ezzati B (2018) UAV-Based RGB/NIR Aerial Imaging for the Detection of Ganoderma Disease in Oil Palm Plantation/Ezzati Bahrom. Doctoral Dissertation, University of Malaya, Kuala Lumpur, Malaysia
Faizah R, Putranto RA, Wening S, Sukma D, Raharti VR, Budiani A, Sudarsono S (2020) Differential expression of root specific genes of oil palm seedlings at early stage of Ganoderma boninense infection. In IOP conference series: Earth and environmental science, vol 418, 1st edn. IOP Publishing, p 012044
Fréalle E, Noël C, Nolard N, Symoens F, Felipe MS, Dei-Cas E, Camus D, Viscogliosi E, Delhaes L (2006) Manganese superoxide dismutase-based phylogeny of pathogenic fungi. Mol Phylogenetics Evol 41(1):28–39
Fu JJ, Mei ZQ, Tania M, Yang LQ, Cheng JL, Khan MA (2015) Development of RAPD-SCAR markers for different Ganoderma species authentication by improved RAPD amplification and molecular cloning. Genet Mol Res 14:5667–5676
Article CAS PubMed Google Scholar
GiatFee C (2011) Management of Ganoderma diseases in oil palm plantations. Planter 87(1022):325–339
Gottlieb AM, Ferrer E, Wright JE (2000) rDNA analyses as an aid to the taxonomy of species of Ganoderma. Mycol Res 104:1033–1045
Hamidon NA, Mukhlisin M (2014) A review of application of computed tomography on early detection of basal stem rot disease. Jurnal Teknologi 70(3):45–47
Hayati R, Basyuni M, Chalil D (2020) Genetic diversity, sequence and bioinformatic analysis of Ganoderma boninense isolates. Intl J Agric Biol 23:763–770
Heid CA, Stevens J, Livak KJ, Williams PM (1996) Real time quantitative PCR. Genome. Methods 6:986–994
Comments (0)