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February 2, 2026Antioxidants0 citationsOpen Access

Functional Analysis of LTS-PYL in Modulating Plant Drought Responses

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RJRahmatullah JanSASajjad AsafSASaleem Asif

Key Points

  • The study aims to investigate the function of LTS-PYL in enhancing plant drought responses.
  • Characterized LTS-PYL using overexpression and CRISPR-Cas9 genome-edited Arabidopsis lines.
  • Measured growth traits such as root length, shoot length, and fresh weight under drought conditions.
  • Analyzed oxidative stress markers like H2O2, antioxidant enzyme activities, and osmotic adjustments.
  • LTS-PYL overexpression increased root length by up to 40% and improved overall drought resilience.
  • Genome-edited lines showed significant reductions in growth traits and increased oxidative stress indicators.
  • Overexpression enhanced antioxidant capacity and elevated expression of drought-responsive genes.

Abstract

Drought severely limits plant productivity, and understanding its regulatory mechanisms remains essential. Here, we characterize Lipid Transport Superfamily-Polyketide cyclase/dehydrase (LTS-PYL), a PYR/PYL/RCAR-domain gene, using Arabidopsis overexpression and CRISPR-Cas9 genome-edited lines to elucidate its role in drought adaptation. LTS-PYL overexpression enhanced early seedling growth, increasing root length (RL) by 40% and 31%, whereas genome-edited lines exhibited severe defects, including 42%, 28% reductions in fresh weight and 63%, 50% decreases in root length relative to WT-T. Under drought stress, overexpression lines displayed strong growth and reproductive resilience, with shoot length (SL) increased by up to 80%, silique length (Sil L) by 61%, and seed number doubled compared with WT-T. In contrast, genome-edited lines showed marked reductions in these traits, confirming their drought sensitivity. LTS-PYL overexpression strongly suppressed oxidative stress, reducing H2O2 by 74% and 68% and O2−· by 39% and 38%, while increasing relative water content (RWC) by 42% and 39%. Genome-edited lines exhibited elevated (H2O2, O2−·) and up to 33% lower RWC. Antioxidant capacity was also strengthened in overexpression plants, with catalase (CAT) and peroxidase (POD) activities increasing by 138%, 168% and 62%, 148%, and malondialdehyde (MDA) and electrolyte leakage (EL) reduced by 23%, 37%, relative to WT-T. Conversely, genome-edited lines showed weakened antioxidant defenses and higher membrane damage. Transcriptionally, overexpression activated drought-responsive genes, elevating LTS-PYL (604%, 472%), DREB2A (227%, 200%), and ABA levels (48%, 34%), whereas genome-edited lines showed strongly reduced expression and ABA decreases of 66%, 62%. Additionally, LTS-PYL enhanced osmotic adjustment, increasing proline (58%, 53%), sugars (37%, 46%), and sucrose (111%, 100%), while limiting chlorophyll (Chl) loss to 9%, 20%. Genome-edited lines exhibited reduced osmolytes and severe chlorophyll decline. Overall, LTS-PYL acts as a strong positive regulator of drought tolerance, integrating ABA signaling, osmotic adjustment, ROS detoxification, and transcriptional activation.

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Cite This Study

Jan et al. (2026) studied this question.

synapsesocial.com/papers/6980fe35c1c9540dea810071https://doi.org/10.3390/antiox15020178
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