Physiological diversity of orchids

Физиологическое разнообразие орхидей
Wei Zhang, Jiawei Li, Shi‐Bao Zhang, Yingjie Yang, Jiao Qin, Wei Huang, Hong Hu
2018-06-25

Crassulacean Acid MetabolismOrchidaceae physiologyepiphytic orchidsorchid mycorrhizaevelamen radicum
The Orchidaceae is a diverse and wide spread family of flowering plants that are of great value in ornamental, medical, conservation, and evolutionary research. The broad diversity in morphology, growth form, life history, and habitat mean that the members of Orchidaceae exhibit various physiological properties. Epiphytic orchids are often characterized by succulent leaves with thick cell walls, cuticles, and sunken stomata, whereas terrestrial orchids possess rhizomes, corms, or tubers. Most orchids have a long juvenile period, slow growth rate, and low photosynthetic capacity. This reduced photosynthetic potential can be largely explained by CO2 diffusional conductance and leaf internal structure. The amount of light required for plant survival depends upon nutritional mode, growth form, and habitat. Most orchids can adapt to their light environments through morphological and physiological adjustments but are sensitive to sudden changes in irradiance. Orchids that originate from warm regions are susceptible to chilling temperatures, whereas alpine members are vulnerable to high temperatures. For epiphytic orchids, rapid water uptake by the velamen radicum, water storage in their pseudobulbs and leaves, slow water loss, and Crassulacean Acid Metabolism contribute to plant-water balance and tolerance to drought stress. The presence of the velamen radicum and mycorrhizal fungi may compensate for the lack of root hairs, helping with quick absorbance of nutrients from the atmosphere. Under cultivation conditions, the form and concentration of nitrogen affect orchid growth and flowering. However, the limitations of nitrogen and phosphorous on epiphytic orchids in the wild, which require these plants to depend on mycorrhizal fungi for nutrients throughout the entire life cycle, are not clearly understood. Because they lack endosperm, seed germination depends upon obtaining nutrients via mycorrhizal fungi. Adult plants of some autotrophic orchids also gain carbon, nitrogen, phosphorus, and other elements from their mycorrhizal partners. Future studies should examine the mechanisms that determine slow growth and flower induction, the physiological causes of variations in flowering behavior and floral lifespan, the effects of nutrients and atmospheric-nitrogen deposition, and practical applications of mycorrhizal fungi in orchid cultivation.
1
Epiphytic orchids have succulent leaves, thick cell walls and cuticles, sunken stomata, and features for water storage and drought tolerance (velamen, pseudobulbs, CAM).
2
Future research priorities include mechanisms of slow growth and flower induction, physiological bases of flowering variation and floral lifespan, nutrient and atmospheric N effects, and mycorrhizal applications in cultivation.
3
Light requirements depend on nutritional mode, growth form, and habitat; orchids adjust morphologically and physiologically but are sensitive to sudden irradiance changes.
4
Most orchids exhibit long juvenile periods, slow growth rates, and low photosynthetic capacity, largely due to CO2 diffusional conductance and leaf internal structure.
5
Orchid seed germination requires nutrients obtained via mycorrhizal fungi because seeds lack endosperm; some adult autotrophic orchids also obtain C, N, P from fungi.
6
Orchidaceae display wide physiological diversity tied to morphology, growth form, life history, and habitat.
7
Temperature sensitivity is habitat-dependent: warm-region orchids are susceptible to chilling, alpine orchids are vulnerable to high temperatures.
8
Terrestrial orchids commonly possess rhizomes, corms, or tubers distinguishing their physiology from epiphytes.
9
Under cultivation, nitrogen form and concentration influence growth and flowering, while limitations of N and P for wild epiphytes and lifelong mycorrhizal dependence remain unclear.
10
Velamen radicum and mycorrhizal fungi compensate for lack of root hairs by facilitating rapid water and nutrient uptake from the atmosphere.

Orchidaceae (orchid plants)

Physiological diversity across orchids, including leaf and root traits, water relations, photosynthetic capacity, nutrient uptake (mycorrhizal interactions), responses to light and temperature, growth rate, and reproductive (germination/flowering) physiology

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2018-06-25
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Authors
Wei Zhang
Jiawei Li
Shi‐Bao Zhang
Yingjie Yang
Jiao Qin
Wei Huang
Hong Hu
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