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Identification of OsCsLF6 Gene Responsible for Rice Seed Submergence Germination Through Genome-Wide Association Analysis.

Flooding stress is a primary environmental barrier that severely limits the widespread adoption of direct-seeded rice systems. Under submerged conditions, rapid coleoptile elongation serves as a vital morphological strategy that facilitates anaerobic germination and successful seedling establishment, yet its underlying molecular mechanisms remain poorly understood. Through a genome-wide association study, we identified a critical locus governing anaerobic coleoptile elongation, in which OsCsLF6, encoding a mixed-linkage glucan (MLG) synthase, was characterized as the causal gene. Genetic and biochemical analyses demonstrated that OsCsLF6 positively regulated coleoptile elongation by directly mediating MLG deposition into the primary cell wall. Mechanistically, we identified OsERF74, an AP2/ERF transcription factor, as an upstream master repressor that directly binds to a conserved core cis-element within the OsCsLF6 promoter. Under submergence, OsERF74 deficiency (oserf74 mutants) completely releases this transcriptional suppression, triggering a substantial upregulation of OsCsLF6 expression and subsequent hyper-accumulation of cell wall MLG. In contrast, constitutive overexpression of OsERF74 persistently blocks MLG biosynthesis. Crucially, a natural single-nucleotide polymorphism located within the OsERF74 binding element in the promoter defines two distinct haplotypes. The elite haplotype (Hap1) effectively disrupts OsERF74 binding affinity, which in turn attenuates transcriptional repression and sustains high OsCsLF6 expression, ultimately driving accelerated MLG synthesis and coleoptile elongation. Our findings establish a condition-specific OsERF74-OsCsLF6 regulatory module that serves as a central biochemical hub orchestrating cell wall remodelling during anaerobic germination. This module thus represents a promising molecular target and elite genetic resource for molecular breeding of flood-tolerant and direct-seeded rice varieties.

OsCsLF6

Establishment of an in vitro culture and regeneration protocol for the native Chilean grass Polypogon australis Brong.

Polypogon australis Brong. is a native Chilean grass frequently found colonizing metal-rich mine tailings, yet it lacks an established in vitro regeneration system to support controlled physiological and biotechnological studies. Here, we report a reproducible protocol for seed germination, callus induction, and plant regeneration using coleoptile-mesocotyl explants. Surface-sterilized seeds were germinated on Murashige and Skoog (MS) medium supplemented with sucrose, achieving a cumulative germination percentage of 47.67 ± 3.15% after 15 days. The coleoptile-mesocotyl explant proved highly responsive to culture on callus induction medium (CIM) supplemented with dicamba, resulting in a callus induction frequency of 30.55 ± 11.96% after 3-5 weeks. Induced calli were predominantly embryogenic, with embryogenic calli representing 65.42 ± 8.61% of the total callus population. Embryogenic calli regenerated complete plantlets with a regeneration efficiency of 45.0 ± 23.3%. Organogenic structures, including primary shoots and roots, developed directly from embryogenic calli maintained on callus induction medium (CIM) supplemented with dicamba, without transfer to a specialized regeneration medium containing organogenesis-promoting growth regulators. After the initiation of organogenesis, cultures were exposed to a 16 h light/8 h dark photoperiod while remaining on CIM, and regenerated plantlets were subsequently transferred to MS+10 S medium for further growth and elongation. This study establishes the first complete in vitro regeneration system for P. australis, providing a practical framework for future physiological studies, large-scale propagation, genetic transformation, and genome engineering applications in this ecologically relevant native Chilean grass.

Regeneration

NAM and CUC3 boundary genes maintain shoot apical meristem viability and suppress the development of axillary shoot in rice seedlings.

Cell division and differentiation within the shoot apical meristem (SAM) are essential for the morphogenesis of aboveground plant organs. This study reveals that the boundary genes OsNAM and OsCUC3 collaboratively maintain SAM activity. Loss of function in both OsNAM and OsCUC3 during the fourth leaf stage reduced SAM size, with the osnam oscuc3 mutant exhibiting abnormal leaf number and morphology. Furthermore, OsNAM and OsCUC3 inhibited the growth of axillary shoots. In the osnam oscuc3 mutant, the number of new leaves decreased, while buds in the coleoptile and the axil of the first leaf developed into tillers. Since OsNAM and OsCUC3 are involved in regulating both SAM activity and the growth of lateral shoots, we examined their expression patterns at the base of the main shoot. β-Glucuronidase (GUS) reporter activity and GFP reporter lines demonstrated that OsNAM and OsCUC3 have distinct expression patterns. Specifically, OsNAM was expressed throughout the SAM, whereas OsCUC3 was expressed only at the base of the SAM, with its expression gradually decreasing as seedlings develop. RNA sequencing analysis showed that the expression of genes related to leaf epidermal cell development, cell wall components, and hormonal signal transduction was altered in response to the loss of function of OsNAM and OsCUC3. Therefore, the boundary genes OsNAM and OsCUC3 not only inhibit the growth of axillary shoots but also regulate the development of aboveground organs, including leaf morphology and number, by maintaining the SAM activity in the main shoot.

Meristem