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Physiological and Proteomic Shifts in Pfaffia glomerata Under Drought and Elevated CO₂

Tatiane Dulcineia Silva; Evandro Alexandre Fortini; Diego Silva Batista; Kerly Jessenia Moncaleano Robledo; Mariana Machado; Sérgio Heitor Sousa Felipe; Tadeu dos Reis de Oliveira; Moab Torres de Andrade; Letícia Monteiro Farias; Claudete Santa-Catarina; Vanildo Silveira; Philipp Westhoff; Andreas P. M. Weber; Adriano Nunes-Nesi; Wagner Campos Otoni
Journal of Plant Growth Regulation · Vol. 45, Issue 5 · pp. 3860-3882 · 2026

Abstract

Drought is a major constraint to plant growth and productivity, and rising atmospheric CO₂ concentrations are expected to modify plant responses to water limitation. However, how CO₂ enrichment reshapes the physiological, metabolic, and molecular regulation of specialized metabolite production under drought remains poorly understood. Here, we investigated the combined effects of elevated CO₂ (e[CO₂]) and drought on plant morphophysiology and on the production of 20-hydroxyecdysone (20E), a phytoecdysteroid of therapeutic relevance whose accumulation may be influenced by environmental stress, in Pfaffia glomerata . Plants were grown under ambient (± 400 µmol mol⁻ 1 ; a[CO₂]) or elevated (± 800 µmol mol⁻ 1 ; e[CO₂]) CO₂ concentrations combined with sufficient or limited water supply. Elevated CO₂ promoted a metabolic shift under drought, characterized by increased investment in osmoregulatory compounds, including soluble sugars, myo-inositol, and glutamate. In contrast, drought reduced photosynthetic pigments and several primary metabolites regardless of CO₂ level. Drought induced the expression of lignin biosynthesis genes ( PgC4H , PgCCoAOMT , and PgCAD ) under both CO₂ conditions; however, PgCCR was specifically upregulated under e[CO₂] combined with drought, with consistently higher transcript levels than under ambient CO₂. Proteomic analyses revealed that e[CO₂] attenuated the accumulation of many canonical drought-responsive proteins, while selectively promoting the accumulation of the cytochrome P450 CYP72A219-like protein, which was associated with increased whole-plant 20E production. Together, these findings show that drought drives 20E biosynthesis, while elevated CO₂ modulates drought response intensity and allocation, ultimately affecting total 20E yield per plant and its relevance under future climate scenarios.

Bibliographic Information

JournalJournal of Plant Growth Regulation
PublisherSpringer
Publication Date2026-05-01
Publication Year2026
Volume45
Issue5
Pages3860-3882
Document TypeJournal Article
Print ISSN0721-7595
eISSN1435-8107
DOI10.1007/s00344-026-12117-y

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NARA Access Coverage1982-01-01~Current
Journal Homepagehttps://www.springer.com/journal/344
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