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Related Concept Videos

Adaptations that Reduce Water Loss01:57

Adaptations that Reduce Water Loss

Though evaporation from plant leaves drives transpiration, it also results in loss of water. Because water is critical for photosynthetic reactions and other cellular processes, evolutionary pressures on plants in different environments have driven the acquisition of adaptations that reduce water loss.
Epiphytes, Parasites, and Carnivores02:40

Epiphytes, Parasites, and Carnivores

Plants often form mutualistic relationships with soil-dwelling fungi or bacteria to enhance their roots’ nutrient uptake ability. Root-colonizing fungi (e.g., mycorrhizae) increase a plant’s root surface area, which promotes nutrient absorption. While root-colonizing, nitrogen-fixing bacteria (e.g., rhizobia) convert atmospheric nitrogen (N2) into ammonia (NH3), making nitrogen available to plants for various biological functions. For example, nitrogen is essential for the biosynthesis of the...
Introduction to Plant Diversity02:22

Introduction to Plant Diversity

From Water to Land
Responses to Drought and Flooding02:41

Responses to Drought and Flooding

Water plays a significant role in the life cycle of plants. However, insufficient or excess of water can be detrimental and pose a serious threat to plants.
Defenses Against Pathogens and Herbivores02:26

Defenses Against Pathogens and Herbivores

Plants present a rich source of nutrients for many organisms, making it a target for herbivores and infectious agents. Plants, though lacking a proper immune system, have developed an array of constitutive and inducible defenses to fend off these attacks.
Responses to Salt Stress02:02

Responses to Salt Stress

Salt stress—which can be triggered by high salt concentrations in a plant’s environment—can significantly affect plant growth and crop production by influencing photosynthesis and the absorption of water and nutrients.

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Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

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Same author

Carbon dioxide compensation points of flowering plants.

Plant physiology·1975
Same author

The Effect of an Oxygen-free Atmosphere on Net Photosynthesis and Transpiration of Barley (Hordeum vulgare L.) and Wheat (Triticum aestivum L.) Leaves.

Plant physiology·1973
Same author

A Variation of C(4) Leaf Anatomy in Arundinella hirta (Gramineae).

Plant physiology·1973
Same author

CO(2) Compensation Concentration in Maize (Zea mays L.) Genotypes.

Plant physiology·1971
Same author

The relation of carbon dioxide compensation and chlorenchymatous vascular bundle sheaths in leaves of dicots.

Plant physiology·1970
Same author

Cellular Localization of CO(2) Fixation and Translocation of Metabolites.

Plant physiology·1969

Related Experiment Video

Updated: Jul 12, 2026

Identification of Novel Regulators of Plant Transpiration by Large-Scale Thermal Imaging Screening in Helianthus Annuus
07:08

Identification of Novel Regulators of Plant Transpiration by Large-Scale Thermal Imaging Screening in Helianthus Annuus

Published on: January 30, 2020

Adaptations of plants

D N Moss

    Science (New York, N.Y.)
    |August 20, 1976
    PubMed
    Summary

    No abstract available in PubMed .

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