Phylogenetic Characteristics and Low-Temperature Response Expression Patterns of PmKIN Gene Family in Prunus mume
Aiqin Ding1, Ziwen Geng1, Lulu Li1
1College of Forestry Engineering, Shandong Agriculture and Engineering University, Jinan 250100, China.
Abstract:
Background: Kinesins are ATP-dependent molecular motors that mediate intracellular transport, cytoskeleton remodeling, and abiotic stress responses in plants. The KIN gene family remains poorly characterized in Prunus mume. This study aimed to explore the evolutionary features and cold-responsive functions of the PmKIN gene family. Methods: A systematic genome‑wide analysis was performed in P. mume. We performed phylogenetic classification, conserved domain detection, gene duplication and selection pressure analysis, cis-element prediction, tissue expression profiling, cold stress expression assay, and protein interaction network prediction. Results: Fifty PmKIN family members were defined and grouped into 10 subfamilies. K14 subfamily contained the largest number of members. All members harbor conserved motor domains, and segmental duplication drove the expansion of this gene family, which was overall constrained by purifying selection. The PmKIN homologous genes were highly conserved among Rosaceae species, including Prunus persica, Prunus armeniaca, Prunus avium, and Malus domestica. Our promoter analysis detected abundant cis-elements for light, hormone, cold, and drought signals in PmKIN genes, especially in the K14 and K7 subfamilies. These genes displayed tissue-biased expression, with roots and stems showing much higher transcript levels than fruits. Under low-temperature stress, the tolerant cultivar appeared to mount a relatively rapid PmKIN upregulation, whereas the sensitive one seemed to show a sluggish response and poor recovery. Three members (PmKIN22/27/35) were suggested to be potentially critical in low-temperature-response regulation. A 285-pair interaction network predicted PmKIN45 as the central hub, and functional predictions imply that PmKIN proteins may be linked to microtubules, hormone pathways, and stress signaling, possibly coordinating growth and low-temperature responses. Conclusions: This work screens candidate genes associated with low-temperature responses in P. mume, providing genetic resources for the molecular breeding of cold-resistant cultivars and expanded cultivation of P. mume and other ornamental horticultural species.
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