| [1] |
Abd Rashed A, Jamilan MA, Abdul Rahman S, Amin Nordin FD, Mohd Nawi MN. 2024. The therapeutic potential of agarwood as an antimicrobial and anti-inflammatory agent: a scoping review. |
| [2] |
Suhardiman A, Muhaimin, Chaerunisaa AY, Mulyani Y. 2025. Review of potential pharmacological activities of agarwood plants (Aquilaria Sp.) as herbal medicine and development as potential herbal preparations. |
| [3] |
Li X, Fang X, Cui Z, Hong Z, Liu X, et al. 2024. Anatomical, chemical and endophytic fungal diversity of a Qi-Nan clone of Aquilaria sinensis (Lour.) Spreng with different induction times. |
| [4] |
Sun PW, Xu YH, Yu CC, Lv FF, Tang XL, et al. 2020. WRKY44 represses expression of the wound-induced sesquiterpene biosynthetic gene ASS1 in Aquilaria sinensis. |
| [5] |
Yan M, Lu Z, Li P, Xie M, Zhou G, et al. 2025. Expression analysis of sesquiterpenes biosynthesis-related genes in Aquilaria sinensis during bark regeneration. |
| [6] |
Liu Y, Chen H, Yang Y, Zhang Z, Wei J, et al. 2013. Whole-tree agarwood-inducing technique: an efficient novel technique for producing high-quality agarwood in cultivated Aquilaria sinensis trees. |
| [7] |
Azren PD, Lee SY, Emang D, Mohamed R. 2019. History and perspectives of induction technology for agarwood production from cultivated Aquilaria in Asia: a review. |
| [8] |
Tan CS, Isa NM, Ismail I, Zainal Z. 2019. Agarwood induction: current developments and future perspectives. |
| [9] |
Baig A, Akram A, Lin MK. 2025. Agarwood in the modern era: integrating biotechnology and pharmacology for sustainable use. |
| [10] |
Lv F, Yang Y, Sun P, Zhang Y, Liu P, et al. 2022. Comparative transcriptome analysis reveals different defence responses during the early stage of wounding stress in Chi-Nan germplasm and ordinary Aquilaria sinensis. |
| [11] |
Sun P, Lv F, Yang Y, Hou W, Xiao M, et al. 2024. Comparative transcriptome analysis reveals the differences in wound-induced agarwood formation between Chi-Nan and ordinary germplasm of Aquilaria sinensis. |
| [12] |
Lv F, Sun P, Yang Y, Fan X, Kang Y, et al. 2025. Resequencing insights into the genetic characteristic and development of molecular markers for Chi-Nan germplasm (Aquilaria sinensis). |
| [13] |
Hu Z, Yan T, Li G, Qin J, Wu X, et al. 2023. Difference of Characteristic Components and Bioactivities for Qinan and Traditional Agarwood. |
| [14] |
Li M, Yang Z, Hong Z, Xu D, Li Z, et al. 2025. Effects of different clones and inducing time on agarwood quality in grafted Qi-Nan Aquilaria sinensis (Lour.) spreng. |
| [15] |
Chen Y, Wu K, Xu J, Zhao S, Tu Z, et al. 2025. Development and application of SSR markers for Aquilaria sinensis on the basis of whole-genome resequencing data. |
| [16] |
Lämke J, Bäurle I. 2017. Epigenetic and chromatin-based mechanisms in environmental stress adaptation and stress memory in plants. |
| [17] |
Maher KA, Bajic M, Kajala K, Reynoso M, Pauluzzi G, et al. 2018. Profiling of accessible chromatin regions across multiple plant species and cell types reveals common gene regulatory principles and new control modules. |
| [18] |
Miryeganeh M. 2025. Epigenetic mechanisms driving adaptation in tropical and subtropical plants: insights and future directions. |
| [19] |
Chen S, Zhou Y, Chen Y, Gu J. 2018. Fastp: an ultra-fast all-in-one FASTQ preprocessor. |
| [20] |
Ding X, Mei W, Lin Q, Wang H, Wang J, et al. 2020. Genome sequence of the agarwood tree Aquilaria sinensis (Lour.) Spreng: the first chromosome-level draft genome in the Thymelaeceae family. |
| [21] |
Nong W, Law STS, Wong AYP, Baril T, Swale T, et al. 2020. Chromosomal-level reference genome of the incense tree Aquilaria sinensis (Lour.) Spreng applies to molecular breeding and identification of agarwood. |
| [22] |
Love MI, Huber W, Anders S. 2014. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. |
| [23] |
Buenrostro JD, Wu B, Chang HY, Greenleaf WJ. 2015. ATAC-seq: a method for assaying chromatin accessibility genome-wide. |
| [24] |
Li H, Durbin R. 2009. Fast and accurate short read alignment with Burrows – Wheeler transform. |
| [25] |
Zhang Y, Liu T, Meyer CA, Eeckhoute J, Johnson DS, et al. 2008. Model-based analysis of ChIP-Seq (MACS). |
| [26] |
Quinlan AR, Hall IM. 2010. BEDTools: a flexible suite of utilities for comparing genomic features. |
| [27] |
Yu G, Wang LG, He QY. 2015. ChIPseeker: an R/Bioconductor package for ChIP peak annotation, comparison and visualization. |
| [28] |
Vranová E, Coman D, Gruissem W. 2013. Network analysis of the MVA and MEP pathways for isoprenoid synthesis. |
| [29] |
Zhang N, Xue S, Song J, Zhou X, Zhou D, et al. 2021. Effects of various artificial agarwood-induction techniques on the metabolome of Aquilaria sinensis. |
| [30] |
Heinz S, Benner C, Spann N, Bertolino E, Lin YC, et al. 2010. Simple combinations of lineage-determining transcription factors prime cis-regulatory elements required for macrophage and B cell identities. |
| [31] |
Klemm SL, Shipony Z, Greenleaf WJ. 2019. Chromatin accessibility and the regulatory epigenome. |
| [32] |
Lu Z, Marand AP, Ricci WA, Ethridge CL, Zhang X, et al. 2019. The prevalence, evolution and chromatin signatures of plant regulatory elements. |
| [33] |
Nagegowda DA. 2010. Plant volatile terpenoid metabolism: biosynthetic genes, transcriptional regulation and subcellular compartmentation. |
| [34] |
Wang XY, Zhu NN, Yang JS, Zhou D, Yuan ST, et al. 2024. CwJAZ4/9 negatively regulates jasmonate-mediated biosynthesis of terpenoids through interacting with CwMYC2 and confers salt tolerance in Curcuma wenyujin. |
| [35] |
Xu YH, Liao YC, Lv FF, Zhang Z, Sun PW, et al. 2017. Transcription factor AsMYC2 controls the jasmonate-responsive expression of ASS1 regulating sesquiterpene biosynthesis in Aquilaria sinensis (Lour.) Gilg. |
| [36] |
Xu Y, Zhang Z, Wang M, Wei J, Chen H, et al. 2013. Identification of genes related to agarwood formation: transcriptome analysis of healthy and wounded tissues of Aquilaria sinensis. |
| [37] |
Ye W, Wu H, He X, Wang L, Zhang W, et al. 2016. Transcriptome sequencing of chemically induced Aquilaria sinensis to identify genes related to agarwood formation. |
| [38] |
Yung WS, Wang Q, Chan LY, Wang Z, Huang M, et al. 2026. DNA hypomethylation is one of the epigenetic mechanisms involved in salt-stress priming in soybean seedlings. |