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Role for Arabidopsis PLC7 in Stomatal Movement, Seed Mucilage Attachment, and Leaf Serration.
van Wijk, Ringo; Zhang, Qianqian; Zarza, Xavier; Lamers, Mart; Marquez, Francisca Reyes; Guardia, Aisha; Scuffi, Denise; García-Mata, Carlos; Ligterink, Wilco; Haring, Michel A; Laxalt, Ana M; Munnik, Teun.
Afiliação
  • van Wijk R; Section Plant Physiology, University of Amsterdam, Amsterdam, Netherlands.
  • Zhang Q; Section Plant Cell Biology, Swammerdam Institute for Life Sciences (SILS), University of Amsterdam, Amsterdam, Netherlands.
  • Zarza X; Section Plant Physiology, University of Amsterdam, Amsterdam, Netherlands.
  • Lamers M; Section Plant Cell Biology, Swammerdam Institute for Life Sciences (SILS), University of Amsterdam, Amsterdam, Netherlands.
  • Marquez FR; Section Plant Physiology, University of Amsterdam, Amsterdam, Netherlands.
  • Guardia A; Section Plant Cell Biology, Swammerdam Institute for Life Sciences (SILS), University of Amsterdam, Amsterdam, Netherlands.
  • Scuffi D; Section Plant Physiology, University of Amsterdam, Amsterdam, Netherlands.
  • García-Mata C; Laboratory of Plant Physiology, Wageningen University and Research, Wageningen, Netherlands.
  • Ligterink W; Instituto de Investigaciones Biológicas (IIB-CONICET-UNMdP), Universidad Nacional de Mar del Plata, Mar del Plata, Argentina.
  • Haring MA; Instituto de Investigaciones Biológicas (IIB-CONICET-UNMdP), Universidad Nacional de Mar del Plata, Mar del Plata, Argentina.
  • Laxalt AM; Instituto de Investigaciones Biológicas (IIB-CONICET-UNMdP), Universidad Nacional de Mar del Plata, Mar del Plata, Argentina.
  • Munnik T; Laboratory of Plant Physiology, Wageningen University and Research, Wageningen, Netherlands.
Front Plant Sci ; 9: 1721, 2018.
Article em En | MEDLINE | ID: mdl-30542361
ABSTRACT
Phospholipase C (PLC) has been suggested to play important roles in plant stress and development. To increase our understanding of PLC signaling in plants, we have started to analyze knock-out (KO), knock-down (KD) and overexpression mutants of Arabidopsis thaliana, which contains nine PLCs. Earlier, we characterized PLC2, PLC3 and PLC5. Here, the role of PLC7 is functionally addressed. Promoter-GUS analyses revealed that PLC7 is specifically expressed in the phloem of roots, leaves and flowers, and is also present in trichomes and hydathodes. Two T-DNA insertion mutants were obtained, i.e., plc7-3 being a KO- and plc7-4 a KD line. In contrast to earlier characterized phloem-expressed PLC mutants, i.e., plc3 and plc5, no defects in primary- or lateral root development were found for plc7 mutants. Like plc3 mutants, they were less sensitive to ABA during stomatal closure. Double-knockout plc3 plc7 lines were lethal, but plc5 plc7 (plc5/7) double mutants were viable, and revealed several new phenotypes, not observed earlier in the single mutants. These include a defect in seed mucilage, enhanced leaf serration, and an increased tolerance to drought. Overexpression of PLC7 enhanced drought tolerance too, similar to what was earlier found for PLC3-and PLC5 overexpression. In vivo 32Pi-labeling of seedlings and treatment with sorbitol to mimic drought stress, revealed stronger PIP2 responses in both drought-tolerant plc5/7 and PLC7-OE mutants. Together, these results show novel functions for PLC in plant stress and development. Potential molecular mechanisms are discussed.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article