The Trihelix Genes in Gardenia jasminoides Evolution, Expression Profiles, and Potential Regulatory Functions in Growth, Development, and Multiple Stress Responses
Abstract
1. Introduction
2. Materials and Methods
2.1. Identification of Trihelix Genes in G. jasminoides
2.2. Phylogenetic Analysis, Gene Structure, and Conserved Motif of Trihelix in G. jasminoides
2.3. Cis-Regulatory Element Analysis in the Promoter Regions of Trihelix Genes in G. jasminoides
2.4. Chromosome Location and Collinearity Analysis with Several Plant Species
2.5. Expression Patterns of GjTrihelixes in Different Tissues and Different Developmental Stages Based on RNA-Seq Data
2.6. Plant Materials and Abiotic Stress Treatments
2.7. RNA Extraction, cDNA Synthesis, and qRT-PCR Gene Expression Analysis
2.8. Protein Interaction Network and GO Enrichment Analysis of GjTrihelix
3. Results
3.1. Identification and Physicochemical Property Analysis of Trihelix Genes in G. jasminoides
3.2. Phylogenetic Analysis of Trihelix Gene Family in G. jasminoides
3.3. Chromosome Localization and Collinearity Analysis of GjTrihelix Genes
3.4. Analysis of Cis-Acting Elements in the Promoter Region of the GjTrihelix Genes
3.5. Analysis of the Conserved Motifs, Domains and Gene Structure of the GjTrihelix Genes
3.6. Expression Patterns of GjTrihelix During the Developmental Stages of G. jasminoides Fruits
3.7. Analysis of the Expression Pattern of GjTrihelix Under Melatonin Treatment
3.8. Expression Patterns of Trihelix Genes in Response to Botryosphaeria dothidea Infection in G. jasminoides Leaves
3.9. Expression Analysis of GjTrihelix Genes in Various Tissues by qRT-PCR
3.10. Expression Analysis of GjTrihelix Under Salt Stress
3.11. Transcriptional Responses of GjTrihelix Genes to Hormonal Treatments
3.12. Interaction Network and GO Function Analysis of G. jasminoides Trihelix Gene Family
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Chen, L.; Li, M.; Yang, Z.; Tao, W.; Wang, P.; Tian, X.; Li, X.; Wang, W. Gardenia jasminoides Ellis: Ethnopharmacology, phytochemistry, and pharmacological and industrial applications of an important traditional chinese medicine. J. Ethnopharmacol. 2020, 257, 112829. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, N.; Bian, Y.; Yao, L. Essential Oils of Gardenia jasminoides J. Ellis and Gardenia jasminoides f. longicarpa Z.W. Xie & M. Okada Flowers: Chemical characterization and assessment of anti-inflammatory effects in alveolar macrophage. Pharmaceutics 2022, 14, 966. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, Q.C.; Youn, U.; Min, B.-S.; Bae, K. Pyronane Monoterpenoids from the Fruit of Gardenia jasminoides. J. Nat. Prod. 2008, 71, 995–999. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhou, D. Regulatory mechanism of plant gene transcription by GT-elements and GT-factors. Trends Plant Sci. 1999, 4, 210–214. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, C.; Cai, X.; Ye, Z.; Li, H. Genome-wide identification and expression profiling analysis of trihelix gene family in tomato. Biochem. Biophys. Res. Commun. 2015, 468, 653–659. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Green, P.J.; Kay, S.A.; Chua, N.H. sequence-specific interactions of a pea nuclear factor with light-responsive elements upstream of the rbcS-3A Gene. EMBO J. 1987, 6, 2543–2549. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dehesh, K.; Hung, H.; Tepperman, J.; Quail, P. GT-2: A Transcription factor with twin autonomous dna-binding domains of closely related but different target sequence specificity. EMBO J. 1992, 11, 4131–4144. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- O’GRady, K.; Goekjian, V.H.; Nairn, C.J.; Nagao, R.T.; Key, J.L. The transcript abundance of GmGT-2, a new member of the GT-2 family of transcription factors from soybean, is down-regulated by light in a phytochrome-dependent manner. Plant Mol. Biol. 2001, 47, 367–378. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nakamura, K.; Sato, Y.; Yamaguchi, T.; Hirano, H.Y. The SH4 gene encoding a trihelix transcription factor is involved in regulating the grain shattering trait in rice. Plant Cell Physiol. 2012, 53, 118–127. [Google Scholar]
- Kaplan-Levy, R.N.; Brewer, P.B.; Quon, T.; Smyth, D.R. The trihelix family of transcription factors–light, stress and development. Trends Plant Sci. 2012, 17, 163–171. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cheng, X.; Xiong, R.; Yan, H.; Gao, Y.; Liu, H.; Wu, M.; Xiang, Y. The Trihelix family of transcription factors: Functional and evolutionary analysis in moso bamboo (Phyllostachys edulis). BMC Plant Biol. 2019, 19, 154. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, L.; Qi, S.; Touqeer, A.; Li, H.; Zhang, X.; Liu, X.; Wu, S. SlGT11 controls floral organ patterning and floral determinacy in tomato. BMC Plant Biol. 2020, 20, 562. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Weng, H.; Yoo, C.Y.; Gosney, M.J.; Hasegawa, P.M.; Mickelbart, M.V. Poplar GTL1 is a Ca2+/calmodulin-binding transcription factor that functions in plant water use efficiency and drought tolerance. PLoS ONE 2012, 7, e32925. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yoo, C.Y.; Pence, H.E.; Jin, J.B.; Miura, K.; Gosney, M.J.; Hasegawa, P.M.; Mickelbart, M.V. The Arabidopsis GTL1 transcription factor regulates water use efficiency and drought tolerance by modulating stomatal density via transrepression of SDD1. Plant Cell 2010, 22, 4128–4141. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tzafrir, I.; Pena-Muralla, R.; Dickerman, A.; Berg, M.; Rogers, R.; Hutchens, S.; Sweeney, T.C.; McElver, J.; Aux, G.; Patton, D.; et al. Identification of genes required for embryo development in Arabidopsis. Plant Physiol. 2004, 135, 1206–1220. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gao, M.J.; Li, X.; Lui, H.; Gropp, G.M.; Lydiate, D.D.; Wei, S.; Hegedus, D.D. ASIL1 is required for proper timing of seed filling in Arabidopsis. Plant Signal. Behav. 2011, 6, 1886–1888. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, C.; Song, L.; Song, J.; Ouyang, B.; Guo, L.; Shang, L.; Wang, T.; Li, H.; Zhang, J.; Ye, Z. ShCIGT, a Trihelix family gene, mediates cold and drought tolerance by interacting with SnRK1 in tomato. Plant Sci. 2018, 270, 140–149. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xi, J.; Qiu, Y.; Du, L.; Poovaiah, B. Plant-specific trihelix transcription factor AtGT2L interacts with calcium/calmodulin and responds to cold and salt stresses. Plant Sci. 2012, 185-186, 274–280. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, X.-H.; Li, Q.-T.; Chen, H.-W.; Zhang, W.-K.; Ma, B.; Chen, S.-Y.; Zhang, J.-S. Trihelix transcription factor GT-4 mediates salt tolerance via interaction with TEM2 in Arabidopsis. BMC Plant Biol. 2014, 14, 339. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fang, Y.; Xie, K.; Hou, X.; Hu, H.; Xiong, L. Systematic analysis of GT factor family of rice reveals a novel subfamily involved in stress sesponses. Mol. Genet. Genom. 2009, 283, 157–169. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Luo, J.; Tang, S.; Mei, F.; Peng, X.; Li, J.; Li, X.; Yan, X.; Zeng, X.; Liu, F.; Wu, Y.; et al. BnSIP1-1, a trihelix family gene, mediates abiotic stress tolerance and ABA signaling in Brassica napus. Front. Plant Sci. 2017, 8, 44. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sun, W.; Chen, Y.; Yao, M.; Zhan, J.; Chen, H.; Zhao, G.; Zou, L.; Xiang, D.; Wu, X.; Wan, Y.; et al. Genome-wide characterization of trihelix genes reveals Cqtrihelix23 enhances the salt tolerance in quinoa (Chenopodium quinoa). Physiol. Plant. 2024, 176, e14170. [Google Scholar] [CrossRef] [Scilit]
- Cao, Y.; Cheng, Z.; Sun, X.; Zhu, M.; Yue, L.; Liu, H.; Wu, X.; Zhang, J.; Duan, C. Genome-wide identification of the trihelix transcription factor family and functional analysis of ZmTHX15 in Maize. Int. J. Mol. Sci. 2024, 25, 13257. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fu, M.; Li, F.; Zhou, S.; Guo, P.; Chen, Y.; Xie, Q.; Chen, G.; Hu, Z. Trihelix transcription factor slgt31 regulates fruit ripening mediated by ethylene in tomato. J. Exp. Bot. 2023, 74, 5709–5721. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Quevillon, E.; Silventoinen, V.; Pillai, S.; Harte, N.; Mulder, N.; Apweiler, R.; Lopez, R. InterProScan: Protein domains identifier. Nucleic Acids Res. 2005, 33, W116–W120. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Letunic, I.; Doerks, T.; Bork, P. SMART 6: Recent updates and new developments. Nucleic Acids Res. 2008, 37, D229–D232. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gasteiger, E.; Gattiker, A.; Hoogland, C.; Ivanyi, I.; Appel, R.D.; Bairoch, A. ExPASy: The proteomics server for in-depth protein knowledge and analysis. Nucleic Acids Res. 2003, 31, 3784–3788. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Waterhouse, A.; Bertoni, M.; Bienert, S.; Studer, G.; Tauriello, G.; Gumienny, R.; Heer, F.T.; De Beer, T.A.P.; Rempfer, C.; Bordoli, L.; et al. SWISS-MODEL: Homology modelling of protein structures and complexes. Nucleic Acids Res. 2018, 46, W296–W303. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, C.; Wu, Y.; Li, J.; Wang, X.; Zeng, Z.; Xu, J.; Liu, Y.; Feng, J.; Chen, H.; He, Y. TBtools-II: A “one for all, all for one” bioinformatics platform for biological big-data mining. Mol. Plant 2023, 16, 1733–1742. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, Q.; Gu, Z.; Fu, C.; Yang, C. Cloning and expression pattern analysis of UGT gene family UGT86A1 and UGT85A2 in Gardenia jasminoides. J. Cent. South Univ. For. Technol. 2021, 41, 173–182. [Google Scholar] [CrossRef]
- Kohl, M.; Wiese, S.; Warscheid, B. Cytoscape: Software for visualization and analysis of biological networks. Methods Mol. Biol. 2011, 696, 291–303. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Altaf, M.A.; Shahid, R.; Ren, M.-X.; Naz, S.; Altaf, M.M.; Khan, L.U.; Tiwari, R.K.; Lal, M.K.; Shahid, M.A.; Kumar, R.; et al. Melatonin improves drought stress tolerance of tomato by modulating plant growth, root architecture, photosynthesis, and antioxidant defense system. Antioxidants 2022, 11, 309. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tan, L.; Rasool, A.; Almutairy, L.A.; Azeem, F.; Jehan, I.; Masroor, A.; Attia, K.A.; Fiaz, S.; Shah, A.A. Trihelix transcription factors are involved in drought stress response of Mangifera indica. Mol. Biol. Rep. 2025, 52, 776. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, P.; Wang, D.; Xu, S.; Sun, S.; Yang, M.; Chen, M.; Ji, K. Genome-wide identification and characterization of the trihelix transcription factor family in Pinus massoniana and gene expression patterns analysis. Plants 2025, 14, 3635. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, K.; Duan, L.; Zhang, Y.; Shi, M.; Chen, S.; Yang, M.; Ding, Y.; Peng, Y.; Dong, Y.; Yang, H.; et al. Genome-wide identification and expression profile analysis of trihelix transcription factor family genes in response to abiotic stress in sorghum [Sorghum bicolor (L.) Moench]. BMC Genom. 2021, 22, 738. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, H.; Wang, Y.; Liu, T.; Yao, W.; Fan, X.; Yu, B.; Shi, G. Genome-wide identification of potato Trihelix gene family and its response to different abiotic stresses. BMC Plant Biol. 2025, 25, 690. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Song, A.; Wu, D.; Fan, Q.; Tian, C.; Chen, S.; Guan, Z.; Xin, J.; Zhao, K.; Chen, F. Transcriptome-wide identification and expression profiling analysis of Chrysanthemum Trihelix transcription factors. Int. J. Mol. Sci. 2016, 17, 198. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- SHuang, X.; Lu, S.; Feng, Y.; Shi, G.; Liang, G.; Mao, J. Genome-wide identification and characterization of the Trihelix transcription factor family and functional analysis of VaTrihelix23 under low temperatures stress in Vitis amurensis. BMC Plant Biol. 2025, 25, 1676. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ji, J.-H.; Zhou, Y.-J.; Wu, H.-H.; Yang, L.-M. Genome-wide analysis and functional prediction of the Trihelix transcription factor family in rice. Yi Chuan 2015, 37, 1228–1241. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xie, T.; Xue, X.; Chen, L.; Wang, Y.; Geng, X. Genome-wide identification and expression analysis of trihelix transcription factor family in cucumber (Cucumis sativus L.) and their roles in biotic stress responses. BMC Genom. 2025, 26, 1124. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, S.; Cui, Y.; Liu, Y.; Yang, M.; Wu, X.; Chen, Q.; Zhao, Y. The GmGT-2F, a trihelix transcription factor, regulates seed oil content by directly activating GmAGAL transcription in soybean. J. Integr. Plant Biol. 2026, 68, 1794–1814. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, X.; Wu, D.; Shan, T.; Xu, S.; Qin, R.; Li, H.; Negm, M.; Wu, D.; Li, J. The trihelix transcription factor OsGTγ-2 is involved adaption to salt stress in rice. Plant Mol. Biol. 2020, 103, 545–560. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lan, Y.; Gong, F.; Li, C.; Xia, F.; Li, Y.; Liu, X.; Liu, D.; Liang, G.; Fang, C.; Cai, P. New insights into the evolution analysis of trihelix gene family in eggplant (Solanum melongena L.) and expression analysis under abiotic stress. BMC Genom. 2024, 25, 1040. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhu, Z.; Liu, X.; Li, Z.; Ye, J.; Zhong, Z.; Fu, S.; Yu, M.; Bai, J.; Cui, B. A SIP1 gene of Trihelix family, SlGT-33, promotes chilling tolerance and fruits set under prolonged cold stress in tomatoes. BMC Plant Biol. 2025, 25, 1376. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Du, H.; Huang, M.; Liu, L. The genome wide analysis of gt ttranscription factors that respond to drought and waterlogging stresses in Maize. Euphytica 2015, 208, 113–122. [Google Scholar] [CrossRef] [Scilit]
- Osorio, M.B.; Bücker-Neto, L.; Castilhos, G.; Turchetto-Zolet, A.C.; Wiebke-Strohm, B.; Bodanese-Zanettini, M.H.; Margis-Pinheiro, M. Identification and in silico characterization of soybean trihelix-GT and bHLH transcription factors involved in stress responses. Genet. Mol. Biol. 2012, 35, 233–246. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, C.; Yao, X.; Zhang, Y.; Zhao, S.; Liu, J.; Wu, G.; Yan, X.; Luo, J. Transcriptomic profiling highlights the ABA response role of BnSIP1-1 in Brassica napus. Int. J. Mol. Sci. 2023, 24, 10641. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, Z.; Xie, H.; Xu, X.; Chen, X.; Li, T.; Huang, X.; Zhang, S. Genome-wide identification of trihelix transcription factor family genes in pear (Pyrus bretschneideri) and functional characterization of PbrGT15 in black spot resistance. Hortic. Adv. 2023, 1, 12. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Q.; Zhong, T.; E, L.; Xu, M.; Dai, W.; Sun, S.; Ye, J. GT factor ZmGT-3b is associated with regulation of photosynthesis and defense response to Fusarium graminearum infection in maize seedling. Front. Plant Sci. 2021, 12, 724133. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lv, H.M.; Wang, X.W.; Dong, X.N.; Gao, M.; Dong, D.H.; Li, C.H.; Jing, S.R.; Guo, Y.D.; Zhang, N. CRISPR/Cas9 edited SlGT30 improved both drought resistance and fruit yield through endoreduplication. Plant Cell Environ. 2025, 48, 2581–2595. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, Y.; Hu, Z.; Dong, Y.; Xie, Z. Trihelix Transcriptional factor GhGT26 of cotton enhances salinity tolerance in Arabidopsis. Plants 2022, 11, 2694. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kuzmitskaya, P.; Koroleva, E.; Urbanovich, O. Genome-wide identification of trihelix transcription factors in the apple genome in silico. J. Appl. Genet. 2023, 64, 445–458. [Google Scholar] [CrossRef] [Scilit] [PubMed]













| Gene ID | Gene Name | Number of Amino Acids | Molecular Weight | Theoretical pI | Instability Index | Subcellular Localization | Grand Average of Hydropathicity |
|---|---|---|---|---|---|---|---|
| IMPTGJA1N27720_1 | GjTrihelix-1 | 579 | 65,226.99 | 5.68 | 55.39 | Nucleus | −0.946 |
| IMPTGJA1N28316_1 | GjTrihelix-2 | 288 | 33,474.53 | 8.32 | 57.87 | Nucleus | −1.178 |
| IMPTGJA1N31027_1 | GjTrihelix-3 | 388 | 44,084.21 | 5.60 | 48.82 | Nucleus | −0.807 |
| IMPTGJA1N33021_1 | GjTrihelix-4 | 585 | 66,029.46 | 6.42 | 51.20 | Nucleus Peroxisome | −0.971 |
| IMPTGJA1N55042_1 | GjTrihelix-5 | 123 | 13,925.55 | 9.14 | 64.66 | Nucleus | −1.160 |
| IMPTGJA1N59694_1 | GjTrihelix-6 | 606 | 68,379.08 | 6.34 | 56.52 | Nucleus | −0.917 |
| IMPTGJA1N53599_1 | GjTrihelix-7 | 359 | 41,222.75 | 5.18 | 59.94 | Nucleus | −1.133 |
| IMPTGJA1N47726_1 | GjTrihelix-8 | 667 | 73,058.28 | 6.35 | 58.08 | Nucleus | −0.899 |
| IMPTGJA1N24434_1 | GjTrihelix-9 | 369 | 41,982.87 | 7.15 | 58.56 | Nucleus | −0.992 |
| IMPTGJA1N15413_1 | GjTrihelix-10 | 401 | 45,526.52 | 5.39 | 54.26 | Nucleus | −0.875 |
| IMPTGJA1N33773_1 | GjTrihelix-11 | 894 | 98,917.37 | 8.95 | 41.09 | Chloroplast | −0.375 |
| Protein Name | α-Helix | Extended Chain | Random Coil | |||
|---|---|---|---|---|---|---|
| Quantity | Proportion/% | Quantity | Proportion/% | Quantity | Proportion/% | |
| GjTrihelix-1 | 195 | 33.68 | 2 | 0.35 | 382 | 65.98 |
| GjTrihelix-2 | 157 | 54.51 | 0 | 0 | 131 | 45.49 |
| GjTrihelix-3 | 101 | 26.03 | 35 | 9.02 | 252 | 64.95 |
| GjTrihelix-4 | 222 | 37.95 | 0 | 0 | 357 | 61.03 |
| GjTrihelix-5 | 60 | 48.78 | 0 | 0 | 63 | 51.22 |
| GjTrihelix-6 | 197 | 32.51 | 2 | 0.33 | 407 | 67.16 |
| GjTrihelix-7 | 156 | 43.45 | 0 | 0 | 203 | 56.55 |
| GjTrihelix-8 | 206 | 30.88 | 5 | 0.75 | 456 | 68.37 |
| GjTrihelix-9 | 143 | 38.75 | 4 | 1.08 | 222 | 60.16 |
| GjTrihelix-10 | 102 | 25.44 | 28 | 6.98 | 271 | 67.58 |
| GjTrihelix-11 | 276 | 30.87 | 143 | 16 | 475 | 53.13 |
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Liu, J.; Cheng, T.; Kou, J.; Wang, L.; Pei, L.; Yang, Y.; Lian, C.; Lan, J.; Zhang, F.; Chen, S. The Trihelix Genes in Gardenia jasminoides Evolution, Expression Profiles, and Potential Regulatory Functions in Growth, Development, and Multiple Stress Responses. Biomolecules 2026, 16, 1298. https://doi.org/10.3390/biom16091298
Liu J, Cheng T, Kou J, Wang L, Pei L, Yang Y, Lian C, Lan J, Zhang F, Chen S. The Trihelix Genes in Gardenia jasminoides Evolution, Expression Profiles, and Potential Regulatory Functions in Growth, Development, and Multiple Stress Responses. Biomolecules. 2026; 16(9):1298. https://doi.org/10.3390/biom16091298
Chicago/Turabian StyleLiu, Jun, Tingting Cheng, Jiefeng Kou, Lili Wang, Lixin Pei, Yan Yang, Conglong Lian, Jinxu Lan, Fei Zhang, and Suiqing Chen. 2026. "The Trihelix Genes in Gardenia jasminoides Evolution, Expression Profiles, and Potential Regulatory Functions in Growth, Development, and Multiple Stress Responses" Biomolecules 16, no. 9: 1298. https://doi.org/10.3390/biom16091298
APA StyleLiu, J., Cheng, T., Kou, J., Wang, L., Pei, L., Yang, Y., Lian, C., Lan, J., Zhang, F., & Chen, S. (2026). The Trihelix Genes in Gardenia jasminoides Evolution, Expression Profiles, and Potential Regulatory Functions in Growth, Development, and Multiple Stress Responses. Biomolecules, 16(9), 1298. https://doi.org/10.3390/biom16091298

