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Yeh, K.-C.

Publications and source records attributed to Yeh, K.-C..

2 recordsLinked to original sources

Root Hydraulic and Metabolic Regulation Drives Drought Tolerance in Napier Grass

Napier grass (Cenchrus purpureus syn. Pennisetum purpureum), a perennial C4 forage and bioenergy crop, exhibits strong drought resilience, yet the integrative mechanisms underlying this tolerance remain incompletely understood. This study examined physiological, hydraulic, and metabolic responses of four Napier grass cultivars under PEG-induced osmotic stress and progressive soil water deficit. Drought significantly increased the root-to-shoot ratio, indicating preferential biomass allocation to roots, which supported maintenance of shoot growth and tissue water status. All cultivars showed an approximate twofold increase in water-use efficiency (WUE) under water deficit, with cv2 and cv7 displaying superior performance. Upregulation of aquaporin genes (PIP2;2 and PIP2;3) suggested active hydraulic regulation that sustained carbon assimilation under reduced transpiration. Metabolic profiling revealed pronounced root-centered osmotic adjustment, including accumulation of galactinol, myo-inositol, raffinose family oligosaccharides, proline, and several amino acids. Enhanced expression of the galactinol synthase gene confirmed activation of raffinose biosynthesis pathways. Genotypic variation highlighted cv2 as particularly drought resilient. Rapid post-stress regrowth further underscored the importance of perennial root persistence. In conclusion, drought tolerance in Napier grass arises from coordinated hydraulic resilience, osmotic adjustment, and C4 photosynthetic efficiency, supporting its suitability for forage and bioenergy production in water-limited environments. SignificantThis study shows drought tolerance in Napier grass relies on root-driven hydraulic and metabolic regulation with efficient water-use efficiency, rather than avoidance, and that PEG responses predict field performance.

plant biology↗

OsIDS3L, a Non-Canonical Dioxygenase Enhancing Iron Homeostasis and Micronutrient Biofortification in Rice

O_LIGraminaceous plants synthesize some organic compounds known as phytosiderophores (PSs) for iron (Fe) uptake. The first PS, deoxymugineic acid (DMA), is common to all grasses. However, PSs synthesized from DMA, hydroxylated PSs, have higher efficiency for Fe chelation and are species-specific. Hydroxylated PS, mugineic acid (MA) synthesis via the Fe(II)-2-oxoglutarate-dependent dioxygenase enzymes HvIDS2 and HvIDS3 have been reported in barley. C_LIO_LIHere, we report that IDS3-Like (OsIDS3L), a homolog of the MA biosynthesis gene, is responsive to Fe deficiency in rice. Functional analysis using overexpression (OE) lines demonstrates OsIDS3Ls role in Fe-deficiency tolerance and micronutrient assimilation in seeds. However, MA was not detected, indicating functional divergence of IDS in rice. Increased DMA and NA levels in OE lines support enhanced Fe uptake and homeostasis. C_LIO_LICRISPR-generated mutants lack an obvious phenotype and show no substrate DMA accumulation. Expression analysis suggests regulation of Fe-responsive genes by both gain- and loss-of-function lines. A computational metabolomics analysis, supported by chemotype justification, suggests a role for OsIDS3l in an enzyme reaction upstream of DMA. C_LIO_LIThe results not only identified a gene potential for agronomy-specific traits and biofortification, but also shed light on a possible non-canonical PS biosynthesis pathway. C_LI

plant biology↗