| [1] |
Shu K, Liu XD, Xie Q, He ZH. 2016. Two faces of one seed: hormonal regulation of dormancy and germination. |
| [2] |
Nonogaki H. 2019. Seed germination and dormancy: the classic story, new puzzles, and evolution. |
| [3] |
Reed RC, Bradford KJ, Khanday I. 2022. Seed germination and vigor: ensuring crop sustainability in a changing climate. |
| [4] |
NiuY, Wang C, Wu Z, Wang D, Suo W, et al. 2024. Overexpression of NtIPMS reduces tobacco seed germination under cold stress by influencing amino acids and reactive oxygen species. |
| [5] |
Wang ZY, Yan KL, Qin YM, Zhang NC, Chen XC, et al. 2025. Effects of allelo chemicals from plants on seed germination. |
| [6] |
He K, Wang W, You C, Qi X, Chen X, et al. 2026. Holistic overview of regulatory networks governing seed dormancy and germination in plants. |
| [7] |
Shu K, Zhou W, Chen F, Luo X, Yang W. 2018. Abscisic acid and gibberellins antagonistically mediate plant development and abiotic stress responses. |
| [8] |
Vishal B, Kumar PP. 2018. Regulation of seed germination and abiotic stresses by gibberellins and abscisic acid. |
| [9] |
Shi X, Jia J, Song S, Dai Z, Luo Y, et al. 2025. Research progress in rice seed dormancy and germination regulated by plant hormones. |
| [10] |
Penfield S. 2017. Seed dormancy and germination. |
| [11] |
Chen K, Li GJ, Bressan RA, Song CP, Zhu JK, et al. 2020. Abscisic acid dynamics, signaling, and functions in plants. |
| [12] |
Jung C, Nguyen NH, Cheong JJ. 2020. Transcriptional regulation of protein phosphatase 2C genes to modulate abscisic acid signaling. |
| [13] |
Hasan MM, Liu XD, Waseem M, Yao GQ, Alabdallah NM, et al. 2022. ABA activated SnRK2 kinases: an emerging role in plant growth and physiology. |
| [14] |
Huang F, Sun M, Yao Z, Zhou J, Bai Q, et al. 2024. Protein kinase SnRK2.6 phosphorylates transcription factor bHLH3 to regulate anthocyanin homeostasis during strawberry fruit ripening. |
| [15] |
Liu L, Tang C, Zhang Y, Sha X, Tian S, et al. 2025. The SnRK2.2-ZmHsf28-JAZ14/17 module regulates drought tolerance in maize. |
| [16] |
Li K, Li Y, Liu C, Li M, Bao R, et al. 2024. Protein kinase MeSnRK2.3 positively regulates starch biosynthesis by interacting with the transcription factor MebHLH68 in cassava. |
| [17] |
Hu Y, Han X, Yang M, Zhang M, Pan J, et al. 2019. The transcription factor INDUCER OF CBF EXPRESSION1 interacts with ABSCISIC ACID INSENSITIVE5 and DELLA proteins to fine-tune abscisic acid signaling during seed germination in Arabidopsis. |
| [18] |
Qian Y, Zhang T, Yu Y, Gou L, Yang J, et al. 2021. Regulatory mechanisms of bHLH transcription factors in plant adaptive responses to various abiotic stresses. |
| [19] |
Gao F, Dubos, C. 2024. The Arabidopsis bHLH transcription factor family. |
| [20] |
Lei P, Jiang Y, Zhao Y, Jiang M, Ji X, et al. 2024. Functions of basic helix–loop–helix (bHLH) proteins in the regulation of plant responses to cold, drought, salt, and iron deficiency: a comprehensive review. |
| [21] |
Kazan K, Manners JM. 2013. MYC2: the master in action. |
| [22] |
Hou X, Singh SK, Werkman JR, Liu Y, Yuan Q, et al. 2023. Partial desensitization of MYC2 transcription factor alters the interaction with jasmonate signaling components and affects specialized metabolism. |
| [23] |
Luo L, Wang Y, Qiu L, Han X, Zhu Y, et al. 2023. MYC2: a master switch for plant physiological processes and specialized metabolite synthesis. |
| [24] |
Todd AT, Liu E, Polvi SL, Pammett RT, Page JE. 2010. A functional genomics screen identifies diverse transcription factors that regulate alkaloid biosynthesis in Nicotiana benthamiana. |
| [25] |
Shoji T, Hashimoto T. 2011. Tobacco MYC2 regulates jasmonate-inducible nicotine biosynthesis genes directly and by way of the NIC2-locus ERF genes. |
| [26] |
Zhang HB, Bokowiec MT, Rushton PJ, Han SC, Timko MP. 2012. Tobacco transcription factors NtMYC2a and NtMYC2b form nuclear complexes with the NtJAZ1 repressor and regulate multiple jasmonate-inducible steps in nicotine biosynthesis. |
| [27] |
Sui X, He X, Song Z, Gao Y, Zhao L, et al. 2021. The gene NtMYC2a acts as a ‘master switch’ in the regulation of JA-induced nicotine accumulation in tobacco. |
| [28] |
Bian S, Tian T, Ding Y, Yan N, Wang C, et al. 2022. bHLH transcription factor NtMYC2a regulates carbohydrate metabolism during the pollen development of tobacco (Nicotiana tabacum L. cv. TN90). |
| [29] |
Zhang H, Zhang L, Ji Y, Jing Y, Li L, et al. 2022. Arabidopsis SIGMA FACTOR BINDING PROTEIN1 (SIB1) and SIB2 inhibit WRKY75 function in abscisic acid-mediated leaf senescence and seed germination. |
| [30] |
Shu K, Zhang H, Wang S, Chen M, Wu Y, et al. 2013. ABI4 regulates primary seed dormancy by regulating the biogenesis of abscisic acid and gibberellins in Arabidopsis. |
| [31] |
Chen H, Ruan J, Chu P, Fu W, Liang Z, et al. 2020. AtPER1 enhances primary seed dormancy and reduces seed germination by suppressing the ABA catabolism and GA biosynthesis in Arabidopsis seeds. |
| [32] |
Pérez-Alonso MM, Sánchez-Parra B, Ortiz-García P, Santamaría ME, Díaz I, et al. 2021. Jasmonic acid-dependent MYC transcription factors bind to a tandem G-box motif in the YUCCA8 and YUCCA9 promoters to regulate biotic stress responses. |
| [33] |
Ming R, Zhang Y, Wang Y, Khan M, Dahro B, et al. 2021. The JA-responsive MYC2-BADH-like transcriptional regulatory module in Poncirus trifoliata contributes to cold tolerance by modulation of glycine betaine biosynthesis. |
| [34] |
Mittal D, Gautam JK, Varma M, Laie A, Mishra S, et al. 2024. External jasmonic acid isoleucine mediates amplification of plant elicitor peptide receptor (PEPR) and jasmonate-based immune signalling. |
| [35] |
Du JF, Zhao Z, Xu WB, Wang QL, Li P, et al. 2024. Comprehensive analysis of JAZ family members in Ginkgo biloba reveals the regulatory role of the GbCOI1/GbJAZs/GbMYC2 module in ginkgolide biosynthesis. |
| [36] |
Zeng T, Li JW, Xu ZZ, Zhou L, Li JJ, et al. 2022. TcMYC2 regulates Pyrethrin biosynthesis in Tanacetum cinerariifolium. |
| [37] |
He K, Du J, Han X, Li H, Kui M, et al. 2023. PHOSPHATE STARVATION RESPONSE1 (PHR1) interacts with JASMONATE ZIM-DOMAIN (JAZ) and MYC2 to modulate phosphate deficiency-induced jasmonate signaling in Arabidopsis. |
| [38] |
Cuadrado AF, Van Damme D. 2024. Unlocking protein–protein interactions in plants: a comprehensive review of established and emerging techniques. |
| [39] |
Begum K, Hasan N, Shammi M. 2024. Selective biotic stressors’ action on seed germination: a review. |
| [40] |
Abe H, Urao T, Ito T, Seki M, Shinozaki K, et al. 2003. Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling. |