Artículos de revistas
Spatial Patterns Of Photosynthesis In Thin-and Thick-leaved Epiphytic Orchids: Unravelling C3-cam Plasticity In An Organ-compartmented Way
Registro en:
Annals Of Botany. , v. 112, n. 1, p. 17 - 29, 2013.
3057364
10.1093/aob/mct090
2-s2.0-84880212227
Autor
Rodrigues M.A.
Matiz A.
Cruz A.B.
Matsumura A.T.
Takahashi C.A.
Hamachi L.
Felix L.M.
Pereira P.N.
Latansio-Aidar S.R.
Aidar M.P.M.
Demarco D.
Freschi L.
Mercier H.
Kerbauy G.B.
Institución
Resumen
Background and AimsA positive correlation between tissue thickness and crassulacean acid metabolism (CAM) expression has been frequently suggested. Therefore, this study addressed the question of whether water availability modulates photosynthetic plasticity in different organs of two epiphytic orchids with distinct leaf thickness.MethodsTissue morphology and photosynthetic mode (C3 and/or CAM) were examined in leaves, pseudobulbs and roots of a thick-leaved (Cattleya walkeriana) and a thin-leaved (Oncidium 'Aloha') epiphytic orchid. Morphological features were studied comparing the drought-induced physiological responses observed in each organ after 30 d of either drought or well-watered treatments.Key ResultsCattleya walkeriana, which is considered a constitutive CAM orchid, displayed a clear drought-induced up-regulation of CAM in its thick leaves but not in its non-leaf organs (pseudobulbs and roots). The set of morphological traits of Cattleya leaves suggested the drought-inducible CAM up-regulation as a possible mechanism of increasing water-use efficiency and carbon economy. Conversely, although belonging to an orchid genus classically considered as performing C3 photosynthesis, Oncidium 'Aloha' under drought seemed to express facultative CAM in its roots and pseudobulbs but not in its leaves, indicating that such photosynthetic responses might compensate for the lack of capacity to perform CAM in its thin leaves. Morphological features of Oncidium leaves also indicated lower efficiency in preventing water and CO2 losses, while aerenchyma ducts connecting pseudobulbs and leaves suggested a compartmentalized mechanism of nighttime carboxylation via phosphoenolpyruvate carboxylase (PEPC) (pseudobulbs) and daytime carboxylation via Rubisco (leaves) in drought-exposed Oncidium plants.ConclusionsWater availability modulated CAM expression in an organ-compartmented manner in both orchids studied. 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