Location: Plant Physiology and Genetics Research
Title: Expression profiles of transcription factors and aquaporins suggest putative roles in rubber biosynthesis regulation and drought stress adaptation in guayuleAuthor
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Phan, Huy |
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Abdel-Haleem, Hussein |
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Submitted to: Scientific Reports
Publication Type: Peer Reviewed Journal Publication Acceptance Date: 3/16/2026 Publication Date: 4/7/2026 Citation: Phan, H.M., Abdel-Haleem, H.A. 2026. Expression profiles of transcription factors and aquaporins suggest putative roles in rubber biosynthesis regulation and drought stress adaptation in guayule. Scientific Reports. 16. Article 11718. https://doi.org/10.1038/s41598-026-44868-9. DOI: https://doi.org/10.1038/s41598-026-44868-9 Interpretive Summary: Guayule, a desert rubber-producing plant, relies on intricate transcriptional regulatory mechanisms to adapt to water-limited environments. Understanding these regulatory strategies is crucial for enhancing drought resilience and optimizing natural rubber production. In this study, we found that guayule’s response to drought stress is governed by distinct yet complementary transcriptional regulatory strategies between two distinct guayule cultivars. A comprehensive analysis identified key transcription factors and aquaporins involved in metabolic and stress-response pathways. Both cultivars share core stress-response mechanisms, particularly in regulating the rubber biosynthesis pathways. These findings enhance understanding of guayule’s drought tolerance and natural rubber production potential, providing insights for breeding and genetic engineering efforts aimed at improving crop performance in arid regions of the southwestern United States. Technical Abstract: In arid regions of the southwestern United States, selecting drought-tolerant crops is essential for sustaining agricultural productivity and resource efficiency. Guayule (Parthenium argentatum Gray), a desert rubber-producing plant, utilizes complex mechanisms to adapt to water-limited environments. Understanding these strategies is important for enhancing drought resilience and maximizing rubber production. This study investigated guayule’s transcriptional response to drought stress in two developed cultivars, AZ-4 and CAL-2, selected for their contrasting responses to reduced irrigation. RNA sequencing and bioinformatics analyses revealed key transcription factors governing metabolic and stress-response pathways, highlighting distinct regulatory strategies. As indicated by GO-term enrichment and KEGG pathway analyses, under drought stress conditions, AZ-4 exhibited a more dynamic regulatory approach with more transcripts differentially regulated, emphasizing resource management and adaptive stress-response mechanisms. In contrast, CAL-2 maintained stability through precise regulatory adjustments and external defense strategies. The two cultivars demonstrated core stress-response mechanisms, particularly regulating AP2/ERF, MYB, and NAC transcription factor families for downstream regulations. Furthermore, both cultivars utilized the regulation of six key families, including AP2/ERF, bHLH, bZIP, MYB, NAC, and WRKY, that govern the MEP (methylerythritol phosphate) and MVA (mevalonate) pathways for terpenoid and natural rubber biosynthesis. However, AZ-4 displayed stronger baseline regulation of rubber biosynthesis under non-stress conditions. Additionally, aquaporin expression patterns suggested selective upregulation of PIP1-2, PIP1-4, and NIP5-1, as a compensatory mechanism for maintaining physiological functions under drought stress. These findings enhance our understanding of guayule’s drought tolerance and rubber production potential. Building on this foundation, future research should further investigate the molecular drivers of drought adaptation, leveraging multi-omics approaches to refine cultivar selection and optimize rubber yield under water-limited conditions, ultimately offering valuable help for breeding and genetic engineering strategies to improve crop performance in arid regions of the southwestern United States. |
