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Susanne Matschi

Title(s)Postdoctoral Scholar, Cell and Developmental Biology
SchoolVc-academic Affairs
Address9500 Gilman Drive #NULL
La Jolla CA 92093
Phone000-000-NULL
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    Publications listed below are automatically derived from MEDLINE/PubMed and other sources, which might result in incorrect or missing publications. Researchers can login to make corrections and additions, or contact us for help. to make corrections and additions.
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    Altmetrics Details PMC Citations indicate the number of times the publication was cited by articles in PubMed Central, and the Altmetric score represents citations in news articles and social media. (Note that publications are often cited in additional ways that are not shown here.) Fields are based on how the National Library of Medicine (NLM) classifies the publication's journal and might not represent the specific topic of the publication. Translation tags are based on the publication type and the MeSH terms NLM assigns to the publication. Some publications (especially newer ones and publications not in PubMed) might not yet be assigned Field or Translation tags.) Click a Field or Translation tag to filter the publications.
    1. Transcriptomic network analyses shed light on the regulation of cuticle development in maize leaves. Proc Natl Acad Sci U S A. 2020 Jun 02; 117(22):12464-12471. Qiao P, Bourgault R, Mohammadi M, Matschi S, Philippe G, Smith LG, Gore MA, Molina I, Scanlon MJ. PMID: 32424100.
      View in: PubMed   Mentions:    Fields:    Translation:AnimalsCells
    2. Genome-Wide Association Study for Maize Leaf Cuticular Conductance Identifies Candidate Genes Involved in the Regulation of Cuticle Development. G3 (Bethesda). 2020 May 04; 10(5):1671-1683. Lin M, Matschi S, Vasquez M, Chamness J, Kaczmar N, Baseggio M, Miller M, Stewart EL, Qiao P, Scanlon MJ, Molina I, Smith LG, Gore MA. PMID: 32184371.
      View in: PubMed   Mentions:    Fields:    
    3. Constructing functional cuticles: analysis of relationships between cuticle lipid composition, ultrastructure and water barrier function in developing adult maize leaves. Ann Bot. 2020 01 08; 125(1):79-91. Bourgault R, Matschi S, Vasquez M, Qiao P, Sonntag A, Charlebois C, Mohammadi M, Scanlon MJ, Smith LG, Molina I. PMID: 31504131.
      View in: PubMed   Mentions: 2     Fields:    Translation:Animals
    4. Machine Learning Enables High-Throughput Phenotyping for Analyses of the Genetic Architecture of Bulliform Cell Patterning in Maize. G3 (Bethesda). 2019 12 03; 9(12):4235-4243. Qiao P, Lin M, Vasquez M, Matschi S, Chamness J, Baseggio M, Smith LG, Sabuncu MR, Gore MA, Scanlon MJ. PMID: 31645422.
      View in: PubMed   Mentions:    Fields:    Translation:Animals
    5. The calcium-dependent protein kinase CPK28 regulates development by inducing growth phase-specific, spatially restricted alterations in jasmonic acid levels independent of defense responses in Arabidopsis. Plant Cell. 2015 Mar; 27(3):591-606. Matschi S, Hake K, Herde M, Hause B, Romeis T. PMID: 25736059.
      View in: PubMed   Mentions: 12     Fields:    Translation:AnimalsCells
    6. The calcium-dependent protein kinase CPK28 negatively regulates the BIK1-mediated PAMP-induced calcium burst. Plant Signal Behav. 2015; 10(5):e1018497. Monaghan J, Matschi S, Romeis T, Zipfel C. PMID: 26039480.
      View in: PubMed   Mentions: 6     Fields:    Translation:AnimalsCells
    7. The calcium-dependent protein kinase CPK28 buffers plant immunity and regulates BIK1 turnover. Cell Host Microbe. 2014 Nov 12; 16(5):605-15. Monaghan J, Matschi S, Shorinola O, Rovenich H, Matei A, Segonzac C, Malinovsky FG, Rathjen JP, MacLean D, Romeis T, Zipfel C. PMID: 25525792.
      View in: PubMed   Mentions: 37     Fields:    Translation:AnimalsCells
    8. Function of calcium-dependent protein kinase CPK28 of Arabidopsis thaliana in plant stem elongation and vascular development. Plant J. 2013 Mar; 73(6):883-96. Matschi S, Werner S, Schulze WX, Legen J, Hilger HH, Romeis T. PMID: 23252373.
      View in: PubMed   Mentions: 19     Fields:    Translation:AnimalsCells
    9. Guard cell anion channel SLAC1 is regulated by CDPK protein kinases with distinct Ca2+ affinities. Proc Natl Acad Sci U S A. 2010 Apr 27; 107(17):8023-8. Geiger D, Scherzer S, Mumm P, Marten I, Ache P, Matschi S, Liese A, Wellmann C, Al-Rasheid KA, Grill E, Romeis T, Hedrich R. PMID: 20385816.
      View in: PubMed   Mentions: 158     Fields:    Translation:AnimalsCells
    10. Activity of guard cell anion channel SLAC1 is controlled by drought-stress signaling kinase-phosphatase pair. Proc Natl Acad Sci U S A. 2009 Dec 15; 106(50):21425-30. Geiger D, Scherzer S, Mumm P, Stange A, Marten I, Bauer H, Ache P, Matschi S, Liese A, Al-Rasheid KA, Romeis T, Hedrich R. PMID: 19955405.
      View in: PubMed   Mentions: 221     Fields:    Translation:Cells
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