Literature DB >> 16320069

A cold inducible multidomain cystatin from winter wheat inhibits growth of the snow mold fungus, Microdochium nivale.

Petya Koeva Christova1, Nikolai Kirilov Christov, Ryozo Imai.   

Abstract

A novel cold-induced cystatin cDNA clone (TaMDC1) was isolated from cold acclimated winter wheat crown tissue by using a macroarray-based differential screening method. The deduced amino acid sequence consisted of a putative N-terminal secretory signal peptide of 37 amino acids and a mature protein (mTaMDC1) with a molecular mass of 23 kDa. The mTaMDC1 had a highly conserved N-terminal cystatin domain and a long C-terminal extension containing a second region, which exhibited partial similarity to the cystatin domain. The recombinant mTaMDC1 was purified from Escherichia coli and its cysteine proteinase inhibitory activity against papain was analyzed. The calculated Ki value of 5.8 x 10(-7) M is comparable to those reported for other phytocystatins. Northern and western blot analyses showed elevated expression of TaMDC1 mRNA and protein during cold acclimation of wheat. In addition to cold, accumulation of the TaMDC1 message was induced by other abiotic stresses including drought, salt and ABA treatment. Investigation of in vitro antifungal activity of mTaMDC1 showed strong inhibition on the mycelium growth of the snow mold fungus Microdochium nivale. Hyphae growth was totally inhibited in the presence of 50 mug/ml mTaMDC1 and morphological changes such as swelling, fragmentation and sporulation of the fungus were observed. The mechanisms of the in vitro antifungal effects and the possible involvement of TaMDC1 in cold induced snow mold resistance of winter wheat are discussed.

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Year:  2005        PMID: 16320069     DOI: 10.1007/s00425-005-0169-9

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  42 in total

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Authors:  M Abe; S Arai
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Authors:  P E Urwin; C J Lilley; M J McPherson; H J Atkinson
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5.  Comparative phylogenetic analysis of cystatin gene families from arabidopsis, rice and barley.

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Authors:  A H Yang; K W Yeh
Journal:  Planta       Date:  2005-01-13       Impact factor: 4.116

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Authors:  M Martínez; E López-Solanilla; P Rodríguez-Palenzuela; P Carbonero; I Díaz
Journal:  Mol Plant Microbe Interact       Date:  2003-10       Impact factor: 4.171

8.  Inhibitory selectivity of canecystatin: a recombinant cysteine peptidase inhibitor from sugarcane.

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9.  Papain-inhibitory activity of oryzacystatin, a rice seed cysteine proteinase inhibitor, depends on the central Gln-Val-Val-Ala-Gly region conserved among cystatin superfamily members.

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6.  Jasmonate signal induced expression of cystatin genes for providing resistance against Karnal bunt in wheat.

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7.  Distinct expression patterns of two Arabidopsis phytocystatin genes, AtCYS1 and AtCYS2, during development and abiotic stresses.

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9.  An extended AE-rich N-terminal trunk in secreted pineapple cystatin enhances inhibition of fruit bromelain and is posttranslationally removed during ripening.

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Authors:  Marie-Claire Goulet; Cindy Dallaire; Louis-Philippe Vaillancourt; Moustafa Khalf; Amine M Badri; Andreja Preradov; Marc-Olivier Duceppe; Charles Goulet; Conrad Cloutier; Dominique Michaud
Journal:  Plant Physiol       Date:  2008-01-11       Impact factor: 8.340

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