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R2R3-MYB transcription factor MYB113 specifically regulates anthocyanin accumulation in Lycium ruthenicum.

LrMYB113 drives anthocyanin biosynthesis in Lycium ruthenicum by forming an MBW complex and directly activating LrDFR and LrANS promoters, providing a genetic target for enhancing flavonoid production. Lycium ruthenicum Murray (black goji berry), a Solanaceae medicinal plant, is valued for its high flavonoid content. However, the transcriptional regulation of flavonoid biosynthesis in L. ruthenicum remains unclear, hindering its pharmaceutical development. Here, we identified and characterized LrMYB113, an R2R3-MYB transcription factor, as a key regulator of anthocyanin biosynthesis in L. ruthenicum. Phylogenetic analysis grouped LrMYB113 into the anthocyanin-associated S6 subgroup of MYBs. Heterologous expression of LrMYB113 in tobacco induced pigment accumulation and upregulated anthocyanin pathway genes. LrMYB113 overexpression in L. ruthenicum hairy roots enhanced accumulation of four acylated anthocyanins and activated anthocyanin pathway genes. Yeast two-hybrid and bimolecular fluorescence complementation assays showed LrMYB113 interacts with bHLHs (LrJAF13/LrAN1b) and WD40 (LrAN11) to form an MBW complex. Promoter binding and transactivation assays demonstrated LrMYB113 directly binds to and activates LrDFR and LrANS promoters. Dual-luciferase assays showed LrMYB113 alone strongly activates LrDFR and LrANS promoters; MBW complexes enhanced activity compared to individual bHLH/WD40 but not to LrMYB113 alone. Our findings identify LrMYB113 as a critical regulator of anthocyanin biosynthesis in L. ruthenicum, shedding light on flavonoid molecular mechanisms and supporting genetic improvement for pharmaceutical use.

Anthocyanins

Genome-wide identification of the superoxide dismutase gene family in Lycium barbarum and their expression profiles under abiotic stress and phytohormone treatment.

BACKGROUND: Superoxide dismutases (SODs) are crucial metalloenzymes that constitute the first line of defense against reactive oxygen species in plants under abiotic stress. Wolfberry (Lycium barbarum) is an economically important medicinal plant with notable stress tolerance, however, a comprehensive genome-wide analysis of its SOD gene family has not yet been performed. RESULTS: We identified ten wolfberry SOD genes (LbaSODs) and classified them into three subfamilies: iron-SODs (Fe-SODs), manganese-SODs (Mn-SODs), and copper/zinc-SODs (Cu/Zn-SODs). Members within each subfamily shared conserved gene structures and motifs. Segmental duplication was the primary driver of LbaSOD expansion, with three paralogous pairs identified. Analysis of cis-regulatory elements in the promoter region revealed a predominance of stress- and hormone-responsive cis-elements, particularly ABA-responsive elements (ABREs) (22 copies) and LTR (17 copies) motifs. Tissue-specific expression profiling revealed that LbaSOD2 and LbaSOD5 expression peaked during early fruit development, whereas LbaSOD6, LbaSOD9, and LbaSOD10 were progressively upregulated through fruit maturation. Under abiotic conditions, Fe-SOD members were markedly suppressed during prolonged drought, whereas LbaSOD9 and LbaSOD10 were rapidly induced in response to salt stress. Among the phytohormone treatments, methyl jasmonate (MeJA) elicited the most pronounced response, with LbaSOD5 expression increasing by approximately 60-fold after 24 hours. Notably, abscisic acid (ABA) triggered an exceptionally strong transcriptional induction of LbaSOD5 (2.5 × 105-fold), LbaSOD10 (6 × 105-fold), and LbaSOD6 (70-fold). In addition, LbaSOD3 and LbaSOD7 transcripts were undetectable in any of the tested conditions. CONCLUSIONS: This study provides the first comprehensive characterization of the LbaSOD gene family and elucidates its hormone- and stress-responsive regulatory landscape, providing a valuable foundation for future functional investigations of LbaSOD genes in abiotic stress adaptation. The extraordinarily strong ABA-mediated induction of specific LbaSOD members, together with their tissue- and stress-specific expression patterns, highlights their potential as targets for genetic improvement of stress tolerance in wolfberry.

Lycium barbarum