[1]

Murphy DJ. 2025. Agronomy and environmental sustainability of the four major global vegetable oil crops: oil palm, soybean, rapeseed, and sunflower. Agronomy 15:1465

doi: 10.3390/agronomy15061465
[2]

Corley RHV, Tinker PB. 2016. The Oil Palm. 5th Edition. Chichester, England: Wiley Blackwell. 688 pp. doi: 10.1002/9781118953297

[3]

Cao HX, Yang YD, Shi P, Lei XT. 2016. A retrospect and prospect of research on the evaluationof oil palm germplasm resources. Chinese Journal of Tropical Agricultural Science 36:59–62 (in Chinese)

[4]

Weckx S, Inzé D, Maene L. 2019. Tissue culture of oil palm: finding the balance between mass propagation and somaclonal variation. Frontiers in Plant Science 10:722

doi: 10.3389/fpls.2019.00722
[5]

Abdullah R, Zainal A, Heng WY, Li LC, Beng YC, et al. 2005. Immature embryo: a useful tool for oil palm (Elaeis guineensis Jacq.) genetic transformation studies. Electronic Journal of Biotechnology 8:24−34

doi: 10.2225/vol8-issue1-fulltext-1
[6]

Low ETL, Alias H, Boon SH, Shariff EM, Tan CYA, et al. 2008. Oil palm (Elaeis guineensis Jacq.) tissue culture ESTs: identifying genes associated with callogenesis and embryogenesis. BMC Plant Biology 8:62

doi: 10.1186/1471-2229-8-62
[7]

Ahmad Parveez GK, Rasid OA, Masani MYA, Sambanthamurthi R. 2015. Biotechnology of oil palm: strategies towards manipulation of lipid content and composition. Plant Cell Reports 34:533−543

doi: 10.1007/s00299-014-1722-4
[8]

Chilton MD, Drummond MH, Merlo DJ, Sciaky D, Montoya AL, et al. 1977. Stable incorporation of plasmid DNA into higher plant cells: the molecular basis of crown gall tumorigenesis. Cell 11:263−271

doi: 10.1016/0092-8674(77)90043-5
[9]

Izawati AMD, Masani MYA, Ismanizan I, Ahmad Parveez GK. 2015. Evaluation on the effectiveness of 2-deoxyglucose-6-phosphate phosphatase (DOGR1) gene as a selectable marker for oil palm (Elaeis guineensis Jacq.) embryogenic calli transformation mediated by Agrobacterium tumefaciens. Frontiers in Plant Science 6:727

doi: 10.3389/fpls.2015.00727
[10]

Hanin AN, Masani MYA, Janna OA, Rasid OA, Ahmad Parveez GK. 2025. Agrobacterium-mediated genome modification for improvement of oil palm planting materials. OBM Genetics 9:292

doi: 10.21926/obm.genet.2502292
[11]

Chen Z, Liao WH, Wang JC, Gao K, Sun J, et al. 2014. Factors affecting Agrobacterium-mediated genetic transformation of poplar. Plant Physiology Journal 50:1126−1134 (in Chinese)

doi: 10.13592/j.cnki.ppj.2014.0292
[12]

Kim JH, Choi D, Kende H. 2003. The AtGRF family of putative transcription factors is involved in leaf and cotyledon growth in Arabidopsis. The Plant Journal 36:94−104

doi: 10.1046/j.1365-313X.2003.01862.x
[13]

Choi D, Kim JH, Kende H. 2004. Whole genome analysis of the OsGRF gene family encoding plant-specific putative transcription activators in rice (Oryza sativa L.). Plant & Cell Physiology 45:897−904

doi: 10.1093/pcp/pch098
[14]

Chen F, Yang Y, Luo X, Zhou W, Dai Y, et al. 2019. Genome-wide identification of GRF transcription factors in soybean and expression analysis of GmGRF family under shade stress. BMC Plant Biology 19:269

doi: 10.1186/s12870-019-1861-4
[15]

Cui JH, Yang PY, Chang JH. 2021. Identification and expression analysis under abiotic stress of GRF gene family in sorghum. Journal of Agricultural Science and Technology 23:37−46 (in Chinese)

doi: 10.13304/j.nykjdb.2020.0278
[16]

Sun ZT, Wang XY, Hou LL, Liu YY, Zheng ZM. 2025. Identification and preliminary functional analysis of BpGRFs genes in Betula platyphylla. Bulletin of Botanical Research 45:191−201 (in Chinese)

doi: 10.7525/j.issn.1673-5102.2025.02.005
[17]

Perani M, Ingram CJE, Cooper CS, Garrett, MD, Goodwin GH. 2003. Conserved SNH domain of the proto-oncoprotein SYT interacts with components of the human chromatin remodelling complexes, while the QPGY repeat domain forms homo-oligomers. Oncogene 22:8156−8167

doi: 10.1038/sj.onc.1207031
[18]

Lee BH, Ko JH, Lee S, Lee Y, Pak JH, et al. 2009. The Arabidopsis GRF-INTERACTING FACTOR gene family performs an overlapping function in determining organ size as well as multiple developmental properties. Plant Physiology 151:655−668

doi: 10.1104/pp.109.141838
[19]

Kim JH. 2019. Biological roles and an evolutionary sketch of the GRF-GIF transcriptional complex in plants. BMB Reports 52:227−238

doi: 10.5483/BMBRep.2019.52.4.051
[20]

Wang F, Qiu N, Ding Q, Li J, Zhang Y, et al. 2014. Genome-wide identification and analysis of the growth-regulating factor family in Chinese cabbage (Brassica rapa L. ssp. pekinensis). BMC Genomics 15:807

doi: 10.1186/1471-2164-15-807
[21]

Zhang B, Tong Y, Luo K, Zhai Z, Liu X, et al. 2021. Identification of GROWTH-REGULATING FACTOR transcription factors in lettuce (Lactuca sativa) genome and functional analysis of LsaGRF5 in leaf size regulation. BMC Plant Biology 21:485

doi: 10.1186/s12870-021-03261-6
[22]

Debernardi JM, Tricoli DM, Ercoli MF, Hayta S, Ronald P, et al. 2020. A GRF–GIF chimeric protein improves the regeneration efficiency of transgenic plants. Nature Biotechnology 38:1274−1279

doi: 10.1038/s41587-020-0703-0