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1.
Plant Biol (Stuttg) ; 19(1): 70-78, 2017 Jan.
Article in English | MEDLINE | ID: mdl-27004470

ABSTRACT

Plant germination and development depend upon a seed's successful dispersal into a suitable habitat and its ability to grow and survive within the surrounding biotic and abiotic environment. The seeds of Aechmea mertensii, a tank-bromeliad species, are dispersed by either Camponotus femoratus or Neoponera goeldii, two ant species that initiate ant gardens (AGs). These two mutualistic ant species influence the vegetative and reproductive traits of the bromeliad through their divergent ecological preferences (i.e. light and substrate). We hypothesised that the seeds dispersed by these two ant species have underlying genetic differences affecting germination, growth and survival of A. mertensii seedlings in different ways. To test this, we used an experimental approach consisting of sowing seeds of A. mertensii: (i) taken from the two AG-ant associations (i.e. seed origin), (ii) in two contrasting light conditions, and (iii) on three different substrates. Light and substrate had significant effects on germination, survival and on eight key leaf traits reflecting plant performance. Seed origin had a significant effect only on germination and on two leaf traits (total dry mass and relative growth rate). Overall, this bromeliad performs better (i.e. high growth and survival rates) when growing both in the shade and in the carton nest developed by C. femoratus ants. These results suggest that the plasticity of the tank bromeliad A. mertensii is mainly due to environment but also to genetic differences related to seed origin, as some traits are heritable. Thus, these two ant species may play contrasting roles in shaping plant evolution and speciation.


Subject(s)
Bromeliaceae/physiology , Germination , Symbiosis , Animals , Ants , Behavior, Animal , Biological Evolution , Bromeliaceae/radiation effects , Ecosystem , Gardens , Light , Plant Leaves/growth & development , Plant Leaves/physiology , Plant Leaves/radiation effects
2.
J Exp Bot ; 65(13): 3705-14, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24803500

ABSTRACT

Temporal compartmentation of carboxylation processes is a defining feature of crassulacean acid metabolism and involves circadian control of key metabolic and transport steps that regulate the supply and demand for carbon over a 24h cycle. Recent insights on the molecular workings of the circadian clock and its connection with environmental inputs raise new questions on the importance of light quality and, by analogy, certain photoreceptors for synchronizing the metabolic components of CAM. The present work tested the hypothesis that optimal coupling of stomatal conductance, net CO2 uptake, and the reciprocal turnover of carbohydrates and organic acids over the diel CAM cycle requires both blue and red light input signals. Contrasting monochromatic wavelengths of blue, green, and red light (i.e. 475, 530, 630nm) with low fluence rates (10 µmol m(-2) s(-1)) were administered for 16 hours each diel cycle for a total treatment time of 48 hours to the obligate CAM bromeliad, Aechmea 'Maya'. Of the light treatments imposed, low-fluence blue light was a key determinant in regulating stomatal responses, organic acid mobilization from the vacuole, and daytime decarboxylation. However, the reciprocal relationship between starch and organic acid turnover that is typical for CAM was uncoupled under low-fluence blue light. Under low-fluence red or green light, the diel turnover of storage carbohydrates was orchestrated in line with the requirements of CAM, but a consistent delay in acid consumption at dawn compared with plants under white or low-fluence blue light was noted. Consistent with the acknowledged influences of both red and blue light as input signals for the circadian clock, the data stress the importance of both red and blue-light signalling pathways for synchronizing the metabolic and physiological components of CAM over the day/night cycle.


Subject(s)
Bromeliaceae/radiation effects , Carbon Dioxide/metabolism , Circadian Clocks , Photosynthesis , Plant Proteins/metabolism , Signal Transduction , Bromeliaceae/genetics , Bromeliaceae/physiology , Hydrogen-Ion Concentration , Light , Phosphoenolpyruvate Carboxykinase (ATP)/genetics , Phosphoenolpyruvate Carboxykinase (ATP)/metabolism , Phosphoenolpyruvate Carboxylase/genetics , Phosphoenolpyruvate Carboxylase/metabolism , Plant Leaves/genetics , Plant Leaves/physiology , Plant Leaves/radiation effects , Plant Proteins/genetics , Plant Stomata/genetics , Plant Stomata/physiology , Plant Stomata/radiation effects , Plant Transpiration , Water/metabolism
3.
J Exp Bot ; 62(1): 283-91, 2011 Jan.
Article in English | MEDLINE | ID: mdl-20861137

ABSTRACT

Despite the increased energetic costs of CAM compared with C(3) photosynthesis, it is hypothesized that the inherent photosynthetic plasticity of CAM allows successful acclimation to light-limiting conditions. The present work sought to determine if CAM presented any constraints to short and longer term acclimation to light limitation and to establish if and how metabolic and photosynthetic plasticity in the deployment of the four phases of CAM might facilitate acclimation to conditions of deep shade. Measurements of leaf gas exchange, organic acids, starch and soluble sugar (glucose, fructose, and sucrose) contents were made in the leaves of the constitutive CAM bromeliad Aechmea 'Maya' over a three month period under severe light limitation. A. 'Maya' was not particularly tolerant of severe light limitation in the short term. A complete absence of net CO(2) uptake and fluctuations in key metabolites (i.e. malate, starch or soluble sugars) indicated a dampened metabolism whilst cell death in the most photosynthetically active leaves was attributed to an over-acidification of the cytoplasm. However, in the longer term, plasticity in the use of the different phases of gas exchange and different storage carbohydrate pools, i.e. a switch from starch to sucrose as the major carbohydrate source, ensured a positive carbon balance for this CAM species under extremely low levels of irradiance. As such, co-ordinated plasticity in the use of C(3) and C(4) carboxylases and different carbohydrate pools together with an increase in the abundance of light-harvesting complexes, appear to underpin the adaptive radiation of the energetically costly CAM pathway within light-limiting environments such as wet cloud forests and shaded understoreys of tropical forests.


Subject(s)
Acids/metabolism , Bromeliaceae/metabolism , Bromeliaceae/radiation effects , Carbohydrate Metabolism/radiation effects , Light , Photosynthesis/radiation effects
4.
Ann Bot ; 90(4): 437-43, 2002 Oct.
Article in English | MEDLINE | ID: mdl-12324266

ABSTRACT

This study addresses the question of how size-related changes in leaf morphology and physiology influence light absorption and carbon gain of the epiphytic bromeliad Vriesea sanguinolenta. A geometrically based computer model, Y-plant, was used for the three-dimensional reconstruction of entire plants and for calculation of whole plant light interception and carbon gain. Plants of different sizes were reconstructed, and morphological and physiological attributes of young and old leaves, and small and large plants were combined to examine the individual effects of each factor on light absorption and carbon gain of the plant. The influence of phyllotaxis on light absorption was also explored. Departure of measured divergence angles between successive leaves from the ideal 137.5 degrees slightly decreased light absorption. The only morphological parameter that consistently changed with plant size was leaf shape: larger plants produced more slender foliage, which substantially reduced self-shading. Nevertheless, self-shading increased with plant size. While the maximum rate of net CO(2) uptake of leaves increased linearly with plant size by a factor of two from the smallest to the largest individual, the potential plant carbon gain (based on total foliage area) showed a curvilinear relationship, but with similar numerical variation. We conclude that leaf physiology has a greater impact on plant carbon gain than leaf and plant morphology in this epiphytic bromeliad.


Subject(s)
Bromeliaceae/physiology , Carbon/metabolism , Computer Simulation/statistics & numerical data , Plant Leaves/physiology , Bromeliaceae/anatomy & histology , Bromeliaceae/radiation effects , Cell Size/physiology , Light , Photosynthesis/physiology , Photosynthetic Reaction Center Complex Proteins/metabolism , Photosynthetic Reaction Center Complex Proteins/radiation effects , Plant Leaves/anatomy & histology , Plant Leaves/radiation effects , Time Factors
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