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April 4, 2026Plants0 citationsOpen Access

Maize ZmGBSS1 Promotes Early Flowering and Enhances Drought Tolerance in Arabidopsis

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RNRuirui NiuGDGenlai DongSCShizhan Chen

Key Points

  • The aim is to investigate how the maize gene ZmGBSS1 influences early flowering and drought tolerance in Arabidopsis thaliana.
  • Ectopic expression of ZmGBSS1 in Arabidopsis thaliana
  • Physiological analysis of transgenic lines
  • Assessment of flowering time and root elongation
  • Starch accumulation measurement during drought stress
  • Analysis of proline and chlorophyll levels
  • Transgenic plants flowered approximately four days earlier than wild-type
  • Increased starch accumulation and amylose levels in transgenic lines
  • Improved growth performance under drought and PEG-induced osmotic stress
  • Higher proline accumulation and chlorophyll retention in transgenic plants
  • Enhanced expression of proline synthesis and starch-degrading enzymes

Abstract

Granule-bound starch synthase (GBSS) is primarily recognized for its role in amylose production and starch granule formation in plant plastids. While its biochemical function in storage organs has been well documented, its broader contribution to plant growth and stress adaptation remains less defined. To explore these aspects, the maize gene ZmGBSS1 was ectopically expressed in Arabidopsis thaliana and its physiological effects were examined. Subcellular localization assays confirmed that ZmGBSS1 is specifically localized to chloroplasts. Phenotypic analysis of transgenic lines revealed that overexpression of ZmGBSS1 significantly altered early seedling development, promoted root elongation, and accelerated flowering, with flowering occurring approximately four days earlier than in wild-type plants. Changes in development were accompanied by increased starch accumulation, elevated amylose levels, and a higher abundance of enlarged starch granules within chloroplasts. Under drought and PEG-induced osmotic stress, transgenic plants maintained improved growth performance and recovery capacity, together with greater proline accumulation and chlorophyll retention. These physiological advantages coincided with more rapid starch utilization and clear rises in transcripts for proline synthesis enzymes (AtP5CS1, AtP5CS2) and starch-degrading proteins (AtBAM1, AtBAM3, AtDPE1). Collectively, these findings suggest that ZmGBSS1 not only regulates starch biosynthesis but also plays a crucial role in coordinating plant development and drought stress responses, highlighting its potential for improving stress tolerance through metabolic regulation.

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Cite This Study

Niu et al. (2026) studied this question.

synapsesocial.com/papers/69d0ae94659487ece0fa47b6https://doi.org/10.3390/plants15071093
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