Spatial metabolomics links polyamine turnover and vascular lipid remodeling to barley spikelet fate
Local metabolic programs can determine whether developing organs maintain growth, differentiate, or degenerate. However, the spatial establishment of such programs during reproductive development remains poorly understood. In cereal inflorescences, this question is closely tied to grain number because the fate of initiated floral primordia is shaped by the developmental position, metabolic support, genotype, and environmental stress. To understand the metabolic logic underlying floral fate in barley (Hordeum vulgare L.), we mapped the spatial distribution of metabolites across the inflorescence in wild-type Bowman and in hvcmf4, a mutant that undergoes premature apical inflorescence degeneration. Amino acid-, carbohydrate-, and chlorophyll-associated metabolites form clear developmental gradients along the inflorescence axis. These gradients are progressively remodeled during developmental pre-anthesis tip degeneration but are both accelerated and spatially distorted in hvcmf4. Within this broader metabolic landscape, two discrete domains stand out. First, spermidine-associated domains specifically marked reproductive meristems, a pattern corroborated by the meristem-enriched expression of polyamine biosynthetic genes. This polyamine-rich meristem state declined as developmental tip degeneration proceeded and was prematurely lost in hvcmf4, where polyamine metabolism appeared to shift toward oxidative breakdown via the polyamine oxidase pathway. Second, lysophosphatidylcholine accumulated specifically at floral attachment and vascular supply zones. The developmental reduction of this bioactive lysophospholipid-associated domain in the apical regions, and its stronger disruption in hvcmf4, coincided with the reprogramming of lipid-remodeling and auxin transport-associated genes, suggesting impaired coordination of lipid signaling, auxin canalization, and vascular support. Together, our study reveals spatial polyamine and lysophospholipid domains that couple meristem maintenance with vascular support, providing a metabolic framework for the fate of developing cereal inflorescences.