Literature DB >> 23733601

Study of nsLTPs in Lotus japonicus genome reveal a specific epidermal cell member (LjLTP10) regulated by drought stress in aerial organs with a putative role in cutin formation.

G Tapia1, L Morales-Quintana, C Parra, A Berbel, M Alcorta.   

Abstract

The cuticle is the first defense against pathogens and the second way water is lost in plants. Hydrophobic layers covering aerial plant organs from primary stages of development form cuticle, including major classes of aliphatic wax components and cutin. Extensive research has been conducted to understand cuticle formation mechanisms in plants. However, many questions remain unresolved in the transport of lipid components to form cuticle. Database studies of the Lotus japonicus genome have revealed the presence of 24 sequences classified as putative non-specific lipid transfer proteins (nsLTPs), which were classified in seven groups; four groups were selected because of their expression in aerial organs. LjLTP8 forms a cluster with DIR1 in Arabidopsis thaliana while LjLTP6, LjLTP9, and LjLTP10 were grouped as type I LTPs. In silico studies showed a high level of structural conservation, and substrate affinity studies revealed palmitoyl-CoA as the most likely ligand for these LTPs, although the Lyso-Myristoyl Phosphatidyl Choline, Lyso-myristoyl phosphatidyl glycerol, and Lyso-stearyl phosphatidyl choline ligands also showed a high affinity with the proteins. The LjLTP6 and LjLTP10 genes were expressed in both the stems and the leaves under normal conditions and were highly induced during drought stress. LjLTP10 was the most induced gene in shoots during drought. The gene was only expressed in the epidermal cells of stems, primordial leaves, and young leaflets. LjLTP10 was positively regulated by MeJA but repressed by abscisic acid (ABA), ethylene, and H2O2, while LjLTP6 was weakly induced by MeJA, repressed by H2O2, and not affected by ABA and ethylene. We suggest that LjLTP10 is involved in plant development of stem and leaf cuticle, but also in acclimation to tolerate drought stress in L. japonicus.

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Year:  2013        PMID: 23733601     DOI: 10.1007/s11103-013-0080-x

Source DB:  PubMed          Journal:  Plant Mol Biol        ISSN: 0167-4412            Impact factor:   4.076


  74 in total

1.  Structure of a liganded type 2 non-specific lipid-transfer protein from wheat and the molecular basis of lipid binding.

Authors:  François Hoh; Jean-Luc Pons; Marie-Françoise Gautier; Frédéric de Lamotte; Christian Dumas
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2005-03-24

2.  Integrative functional genomics of salt acclimatization in the model legume Lotus japonicus.

Authors:  Diego H Sanchez; Felix Lippold; Henning Redestig; Matthew A Hannah; Alexander Erban; Ute Krämer; Joachim Kopka; Michael K Udvardi
Journal:  Plant J       Date:  2007-11-29       Impact factor: 6.417

3.  Cuticular lipid composition, surface structure, and gene expression in Arabidopsis stem epidermis.

Authors:  Mi Chung Suh; A Lacey Samuels; Reinhard Jetter; Ljerka Kunst; Mike Pollard; John Ohlrogge; Fred Beisson
Journal:  Plant Physiol       Date:  2005-11-18       Impact factor: 8.340

4.  Lipid transfer proteins enhance cell wall extension in tobacco.

Authors:  Jeroen Nieuwland; Richard Feron; Bastiaan A H Huisman; Annalisa Fasolino; Cornelis W Hilbers; Jan Derksen; Celestina Mariani
Journal:  Plant Cell       Date:  2005-06-03       Impact factor: 11.277

5.  Plant cuticular lipid export requires an ABC transporter.

Authors:  Jamie A Pighin; Huanquan Zheng; Laura J Balakshin; Ian P Goodman; Tamara L Western; Reinhard Jetter; Ljerka Kunst; A Lacey Samuels
Journal:  Science       Date:  2004-10-22       Impact factor: 47.728

6.  Identification of a lipid transfer protein as the major protein in the surface wax of broccoli (Brassica oleracea) leaves.

Authors:  J Pyee; H Yu; P E Kolattukudy
Journal:  Arch Biochem Biophys       Date:  1994-06       Impact factor: 4.013

7.  A gain-of-function mutation of Arabidopsis lipid transfer protein 5 disturbs pollen tube tip growth and fertilization.

Authors:  Keun Chae; Chris A Kieslich; Dimitrios Morikis; Seung-Chul Kim; Elizabeth M Lord
Journal:  Plant Cell       Date:  2009-12-31       Impact factor: 11.277

8.  Proteinase inhibitor from ginkgo seeds is a member of the plant nonspecific lipid transfer protein gene family.

Authors:  Yoriko Sawano; Ken-ichi Hatano; Takuya Miyakawa; Hideki Komagata; Yumiko Miyauchi; Hiroshi Yamazaki; Masaru Tanokura
Journal:  Plant Physiol       Date:  2008-02-27       Impact factor: 8.340

9.  Biochemical characterization of the lipid-binding properties of a broccoli cuticular wax-associated protein, WAX9D, and its application.

Authors:  Sunyoung Ahn; Jongmin Kim; Jaeho Pyee; Heonyong Park
Journal:  BMB Rep       Date:  2009-06-30       Impact factor: 4.778

10.  Redundant regulation of meristem identity and plant architecture by FRUITFULL, APETALA1 and CAULIFLOWER.

Authors:  C Ferrándiz; Q Gu; R Martienssen; M F Yanofsky
Journal:  Development       Date:  2000-02       Impact factor: 6.868

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  15 in total

1.  Understanding the roles of Lys33 and Arg45 in the binding-site stability of LjLTP10, an LTP related to drought stress in Lotus japonicus.

Authors:  Felipe Valenzuela-Riffo; Gerardo Tapia; Carolina Parra-Palma; Luis Morales-Quintana
Journal:  J Mol Model       Date:  2015-09-24       Impact factor: 1.810

2.  A Lipid-Anchored NAC Transcription Factor Is Translocated into the Nucleus and Activates Glyoxalase I Expression during Drought Stress.

Authors:  Mei Duan; Rongxue Zhang; Fugui Zhu; Zhenqian Zhang; Lanming Gou; Jiangqi Wen; Jiangli Dong; Tao Wang
Journal:  Plant Cell       Date:  2017-07-06       Impact factor: 11.277

3.  Lipid transfer proteins in coffee: isolation of Coffea orthologs, Coffea arabica homeologs, expression during coffee fruit development and promoter analysis in transgenic tobacco plants.

Authors:  Michelle G Cotta; Leila M G Barros; Juliana D de Almeida; Fréderic de Lamotte; Eder A Barbosa; Natalia G Vieira; Gabriel S C Alves; Felipe Vinecky; Alan C Andrade; Pierre Marraccini
Journal:  Plant Mol Biol       Date:  2014-01-28       Impact factor: 4.076

4.  Regulatory function of Arabidopsis lipid transfer protein 1 (LTP1) in ethylene response and signaling.

Authors:  Honglin Wang; Yue Sun; Jianhong Chang; Fangfang Zheng; Haixia Pei; Yanjun Yi; Caren Chang; Chun-Hai Dong
Journal:  Plant Mol Biol       Date:  2016-04-20       Impact factor: 4.076

Review 5.  Drought-Responsive Mechanisms in Plant Leaves Revealed by Proteomics.

Authors:  Xiaoli Wang; Xiaofeng Cai; Chenxi Xu; Quanhua Wang; Shaojun Dai
Journal:  Int J Mol Sci       Date:  2016-10-18       Impact factor: 5.923

6.  Genomic Identification and Comparative Expansion Analysis of the Non-Specific Lipid Transfer Protein Gene Family in Gossypium.

Authors:  Feng Li; Kai Fan; Fanglu Ma; Erkui Yue; Noreen Bibi; Ming Wang; Hao Shen; Md Mosfeq-Ul Hasan; Xuede Wang
Journal:  Sci Rep       Date:  2016-12-15       Impact factor: 4.379

Review 7.  Dynamic Protein S-Acylation in Plants.

Authors:  Lihua Zheng; Peng Liu; Qianwen Liu; Tao Wang; Jiangli Dong
Journal:  Int J Mol Sci       Date:  2019-01-29       Impact factor: 5.923

8.  Structural characterization and in vitro lipid binding studies of non-specific lipid transfer protein 1 (nsLTP1) from fennel (Foeniculum vulgare) seeds.

Authors:  Mekdes Megeressa; Bushra Siraj; Shamshad Zarina; Aftab Ahmed
Journal:  Sci Rep       Date:  2020-12-04       Impact factor: 4.379

9.  Genome-wide survey and expression analysis of the putative non-specific lipid transfer proteins in Brassica rapa L.

Authors:  Jun Li; Guizhen Gao; Kun Xu; Biyun Chen; Guixin Yan; Feng Li; Jiangwei Qiao; Tianyao Zhang; Xiaoming Wu
Journal:  PLoS One       Date:  2014-01-31       Impact factor: 3.240

Review 10.  Lipid transfer proteins: classification, nomenclature, structure, and function.

Authors:  Tiina A Salminen; Kristina Blomqvist; Johan Edqvist
Journal:  Planta       Date:  2016-08-25       Impact factor: 4.116

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