Integrated Transcriptome and Proteome Analysis Provides Insights into the Mechanism of Blumea balsamifera in Response to Drought Stress
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Test Materials and Drought
2.2. Determination of Photosynthetic Parameters in Leaves
2.3. Determination of L-Borneol Content in Leaves
2.4. Determination of Physiological and Biochemical Indices in Roots
2.5. Selection of Sequencing Time Points and Samples
2.6. Transcriptome Analysis
2.7. Proteome Analyses
2.8. Association Analysis Between Transcriptome and Proteome
2.9. Determination of Gene Expression Levels (RT-qPCR)
2.10. Data Statistics and Analysis
3. Results
3.1. Changes in Photosynthetic Characteristics and L-Borneol Content in Leaves
3.2. Physiological and Biochemical Responses of Roots
3.3. Transcriptome Sequencing Analysis
3.4. Proteome Sequencing Analysis
3.5. Correlation Analysis and Functional Enrichment of DEGs-DEPs
3.6. DEPs and DEGs Associated with Drought Tolerance and PPI Network Analysis
3.7. Regulation of DEGs and DEPs in Photosynthesis
3.8. Validation of RNA-Seq Data
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ROS | Reactive oxygen species |
| ABA | Abscisic acid |
| Pn | Photosynthetic rate |
| Gs | Stomatal conductance |
| Tr | Transpiration rate |
| Ci | Intercellular CO2 concentration |
| MDA | Malondialdehyde |
| SOD | Superoxide |
| CAT | Catalase |
| POD | Peroxidase |
| LIG | Lignin |
| SS | Soluble sugar |
| SP | Soluble protein |
| PRO | Proline |
| GO | Gene Ontology |
| KEGG | Kyoto Encyclopedia of Genes and Genomes |
| RT-qPCR | Quantitative reverse transcription polymerase chain reaction |
| PSI | Photosystem I |
| PSII | Photosystem II |
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| Processing Time (Day) | L-Borneol/(mg·g−1) | ||
|---|---|---|---|
| Control | Drought | Rewater | |
| 0 | (0.066 ± 0.002) a | (0.078 ± 0.002) a | |
| 5 | (0.088 ± 0.001) a | (0.128 ± 0.001) a | |
| 8 | (0.059 ± 0.004) b | (0.186 ± 0.013) a | (0.166 ± 0.013) a |
| 10 | (0.066 ± 0.008) c | (0.752 ± 0.022) a | (0.081 ± 0.001) b |
| 12 | (0.107 ± 0.002) b | (0.969 ± 0.005) a | (0.106 ± 0.005) b |
| 14 | (0.089 ± 0.007) c | (0.431 ± 0.002) a | (0.152 ± 0.002) b |
| 16 | (0.065 ± 0.001) c | (0.223 ± 0.005) a | (0.157 ± 0.006) b |
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Mo, Z.; Guo, C.; Chen, S.; Mu, K.; Sha, S.; Ran, F.; Xie, P.; Shao, C.; Ju, Z.; Liu, Y.; et al. Integrated Transcriptome and Proteome Analysis Provides Insights into the Mechanism of Blumea balsamifera in Response to Drought Stress. Biology 2026, 15, 861. https://doi.org/10.3390/biology15110861
Mo Z, Guo C, Chen S, Mu K, Sha S, Ran F, Xie P, Shao C, Ju Z, Liu Y, et al. Integrated Transcriptome and Proteome Analysis Provides Insights into the Mechanism of Blumea balsamifera in Response to Drought Stress. Biology. 2026; 15(11):861. https://doi.org/10.3390/biology15110861
Chicago/Turabian StyleMo, Zejun, Changmao Guo, Su Chen, Kailang Mu, Shan Sha, Fei Ran, Pingxuan Xie, Changliu Shao, Zhigang Ju, Yuchen Liu, and et al. 2026. "Integrated Transcriptome and Proteome Analysis Provides Insights into the Mechanism of Blumea balsamifera in Response to Drought Stress" Biology 15, no. 11: 861. https://doi.org/10.3390/biology15110861
APA StyleMo, Z., Guo, C., Chen, S., Mu, K., Sha, S., Ran, F., Xie, P., Shao, C., Ju, Z., Liu, Y., Yuan, Y., & Pang, Y. (2026). Integrated Transcriptome and Proteome Analysis Provides Insights into the Mechanism of Blumea balsamifera in Response to Drought Stress. Biology, 15(11), 861. https://doi.org/10.3390/biology15110861

