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Biology subjects

Yer, H.

Publications and source records attributed to Yer, H..

2 recordsLinked to original sources

Molecular and physiological characterization of tillering and shade tolerance of dwarf mutants of perennial ryegrass

Tillering and shade tolerance are important traits in turfgrass, influenced by environmental factors, nutrients, and hormones. Shade stress negatively affects tillering. In this study, two dwarf mutants, shadow-1 and shadow-2, developed via Gamma-ray and fast-neutron mutagenesis, respectively, showed significantly higher tillering than the wild-type under greenhouse conditions. Both mutants demonstrated shade tolerance in plant height, grass quality, and color under 85% and 95% shade conditions, while shade-induced inhibition of tillering was observed in both the mutants and the wild-type. In comparison to wild-type plants under 95% shade conditions, we observed that the cytokinin biosynthetic gene IPT8 is upregulated, while the cytokinin inactivating gene CKX2 is downregulated in shadow-1. Similarly, the GA biosynthetic genes CPS1, GA2ox3, and GA20ox1 are upregulated, while the GA inactivating gene GA20ox8 is downregulated in the shadow-1 mutant. Furthermore, the ethylene biosynthetic genes ACS and ACO are also downregulated in the shadow-1 mutant. Consistently, we observed that wild-type plants exhibit increased GA and reduced CK levels, while shadow-1 mutant plants have reduced GA but increased CK levels. This explains the shadow-1 mutants shade tolerance in terms of plant height, grass quality, and color. Conversely, the tillering inhibitor genes CRY1, MAX2, and SnRK1 are upregulated in both wild-type and shadow-1 mutant plants. Our results provide novel insights into the mechanisms behind tillering and shade tolerance in turfgrasses under shade conditions.

plant biology↗

Engineered dsRNA-protein nanoparticles for effective long-distance transport, delivery and gene silencing in plants

Long-distance transport of exogenous biologically active RNA molecules in higher plants has not been reported. Here, we report that cationized bovine serum albumin (cBSA) avidly binds double-stranded beta-glucuronidase RNA (dsGUS RNA) to form nucleic acid-protein nanocomplexes. Using tobacco and poplar plants, we have shown effective uptake and long-distance transport of cBSA/dsGUS RNA nanocomplexes from basal ends of leaf petioles to leaf blades as well as from basal ends of shoots to their apexes and apical leaves. We have further demonstrated that the cBSA/dsGUS RNA nanocomplexes are highly effective in silencing both conditionally inducible DR5-GUS gene and constitutively active 35S-GUS gene in leaf, shoot and shoot meristem tissues. This cBSA/dsRNA delivery technology may provide a convenient, fast, and inexpensive tool for characterizing gene functions in plants, and potentially for in planta gene-editing.

molecular biology↗