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Dormancy dynamics in Japanese plum: transcriptomic responses to variable climatic conditions and chilling requirements

delete2026-08-01
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S
Sara Herrera *
J
José Ignacio Hormaza
G
Guillem Ylla
J
Javier Rodrigo
J
Jorge Lora
DOI:10.1007/s00425-026-05104-wdelete
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Abstract

Abstract

En 中文
Climate exerted a stronger influence than dormancy stage on gene expression in Japanese plum, revealing climate- and genotype-specific regulatory patterns underlying dormancy control and climate adaptation. Dormancy progression in temperate fruit trees is highly sensitive to environmental conditions and chilling accumulation. To investigate the regulation of dormancy in Japanese plum (Prunus salicina hybrids), we performed a comparative transcriptomic analysis of flower buds from two Japanese plum cultivars with different chilling requirements, "Hiromi Red" (high chill) and "Crimson Glo" (low chill), grown under contrasting climates (semi-arid and Mediterranean subtropical). This study combined phenological observations, quantification of chill and heat requirements, as well as transcriptomic analyses across three key developmental stages: full dormancy (T0), dormancy release (T1), and full recovery (T2). Climate exerted a stronger influence than dormancy stage on gene expression profiles, leading to cultivar- and climate-specific transcriptional responses. Key dormancy-related genes—such as DAM, FT, and SAP1— exhibited differential expression patterns across climates, suggesting potential roles in climatic adaptation. Notably, dormancy phases occurred approximately one month later under Mediterranean subtropical conditions, and were accompanied by a marked reduction in chilling requirements. Expression and phylogenetic analyses revealed that environmental conditions had a stronger effect on the transcriptomic profiles than the progression of dormancy itself, potentially due to epigenetic modulation. These findings provide new insights into the molecular mechanisms underlying dormancy in woody perennial species and offer perspectives for developing cultivars better adapted to changing climatic scenarios.
Keywords:
Climatic adaptation
Chill accumulation
Epigenetics
Gene expression
Phenology
Transcriptome
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Planta
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faculty of biochemistry
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