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Induction of Wound-periderm-like Tissue in Kalanchoe Pinnata (Lam.) Pers. (Crassulaceae) Leaves As a Defence Response to High UV-B Radiation Levels

Overview
Journal Ann Bot
Specialty Biology
Date 2015 Sep 9
PMID 26346722
Citations 2
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Abstract

Background And Aims: UV-B radiation can be stressful for plants and cause morphological and biochemical changes. Kalanchoe pinnata is a CAM leaf-succulent species distributed in hot and dry regions, and is rich in flavonoids, which are considered to be protective against UV-B radiation. This study aims to verify if K. pinnata has morphological or anatomical responses as a strategy in response to high UV-B levels.

Methods: Kalanchoe pinnata plants of the same age were grown under white light (control) or white light plus supplemental UV-B radiation (5 h d(-1)). The plants were treated with the same photoperiod, photosynthetically active radiation, temperature and daily watering system. Fragments of the middle third of the leaf blade and petiole were dehydrated and then embedded in historesin and sectioned in a rotary microtome. Sections were stained with toluidine blue O and mounted in Entellan®. Microchemical analyses by optical microscopy were performed on fresh material with Sudan III, Sudan IV and phloroglucinol, and analysed using fluorescence microscopy.

Key Results: Supplemental UV-B radiation caused leaf curling and the formation of brown areas on the leaves. These brown areas developed into a protective tissue on the adaxial side of the leaf, but only in directly exposed regions. Anatomically, this protective tissue was similar to a wound-periderm, with outer layer cell walls impregnated with suberin and lignin.

Conclusions: This is the first report of wound-periderm formation in leaves in response to UV-B radiation. This protective tissue could be important for the survival of the species in desert regions under high UV-B stress conditions.

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Intraspecific variation in sensitivity of high yielding rice varieties towards UV-B radiation.

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References
1.
Wilson M, Greenberg B . Specificity and Photomorphogenic Nature of Ultraviolet-B-Induced Cotyledon Curling in Brassica napus L. Plant Physiol. 1993; 102(2):671-677. PMC: 158827. DOI: 10.1104/pp.102.2.671. View

2.
Jenkins G . The UV-B photoreceptor UVR8: from structure to physiology. Plant Cell. 2014; 26(1):21-37. PMC: 3963570. DOI: 10.1105/tpc.113.119446. View

3.
Lulai E, Neubauer J, Suttle J . Kinetics and localization of wound-induced DNA biosynthesis in potato tuber. J Plant Physiol. 2014; 171(17):1571-5. DOI: 10.1016/j.jplph.2014.07.013. View

4.
Agati G, Brunetti C, Di Ferdinando M, Ferrini F, Pollastri S, Tattini M . Functional roles of flavonoids in photoprotection: new evidence, lessons from the past. Plant Physiol Biochem. 2013; 72:35-45. DOI: 10.1016/j.plaphy.2013.03.014. View

5.
Fukuda S, Satoh A, Kasahara H, Matsuyama H, Takeuchi Y . Effects of ultraviolet-B irradiation on the cuticular wax of cucumber (Cucumis sativus) cotyledons. J Plant Res. 2008; 121(2):179-89. DOI: 10.1007/s10265-007-0143-7. View