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  • Author: Heinisch JJ
  • References

Author: Heinisch JJ


References 78 references


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  • Bischof L, et al. (2024) The small yeast GTPase Rho5 requires specific mitochondrial outer membrane proteins for translocation under oxidative stress and interacts with the VDAC Por1. Eur J Cell Biol 103(2):151405 PMID:38503132
    • SGD Paper
    • DOI full text
    • PubMed
  • Bischof L, et al. (2024) Functional Conservation of the Small GTPase Rho5/Rac1-A Tale of Yeast and Men. Cells 13(6) PMID:38534316
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Bischof L, et al. (2022) The Intracellular Distribution of the Small GTPase Rho5 and Its Dimeric Guanidine Nucleotide Exchange Factor Dck1/Lmo1 Determine Their Function in Oxidative Stress Response. Int J Mol Sci 23(14) PMID:35887245
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Bertels LK, et al. (2021) The Pentose Phosphate Pathway in Yeasts-More Than a Poor Cousin of Glycolysis. Biomolecules 11(5) PMID:34065948
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Musielak M, et al. (2021) The small GTPase KlRho5 responds to oxidative stress and affects cytokinesis. J Cell Sci 134(18) PMID:34435638
    • SGD Paper
    • DOI full text
    • PubMed
  • Voskoboynikova N, et al. (2021) A Three-Dimensional Model of the Yeast Transmembrane Sensor Wsc1 Obtained by SMA-Based Detergent-Free Purification and Transmission Electron Microscopy. J Fungi (Basel) 7(2) PMID:33562593
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Esch BM, et al. (2020) Uptake of exogenous serine is important to maintain sphingolipid homeostasis in Saccharomyces cerevisiae. PLoS Genet 16(8):e1008745 PMID:32845888
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Heinisch JJ (2020) How to study intertwined and autoregulated eukaryotic signal transduction pathways. FEBS J 287(22):4844-4847 PMID:32246816
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ, et al. (2020) Investigation of Heterologously Expressed Glucose-6-Phosphate Dehydrogenase Genes in a Yeast zwf1 Deletion. Microorganisms 8(4) PMID:32283834
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Hühn J, et al. (2020) Fungal homologues of human Rac1 as emerging players in signal transduction and morphogenesis. Int Microbiol 23(1):43-53 PMID:31020478
    • SGD Paper
    • DOI full text
    • PubMed
  • Sterk C, et al. (2019) Analysis of Functional Domains in Rho5, the Yeast Homolog of Human Rac1 GTPase, in Oxidative Stress Response. Int J Mol Sci 20(22) PMID:31703278
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Heinisch JJ and Rodicio R (2018) Protein kinase C in fungi-more than just cell wall integrity. FEMS Microbiol Rev 42(1) PMID:29069410
    • SGD Paper
    • DOI full text
    • PubMed
  • Mojardín L, et al. (2018) Lack of the NAD+-dependent glycerol 3-phosphate dehydrogenase impairs the function of transcription factors Sip4 and Cat8 required for ethanol utilization in Kluyveromyces lactis. Fungal Genet Biol 111:16-29 PMID:29175366
    • SGD Paper
    • DOI full text
    • PubMed
  • Schmitz HP, et al. (2018) The Small Yeast GTPase Rho5 and Its Dimeric GEF Dck1/Lmo1 Respond to Glucose Starvation. Int J Mol Sci 19(8) PMID:30049968
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Schneider M, et al. (2018) Cytosolic GAPDH as a redox-dependent regulator of energy metabolism. BMC Plant Biol 18(1):184 PMID:30189844
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Langenberg AK, et al. (2017) Glycolytic Functions Are Conserved in the Genome of the Wine Yeast Hanseniaspora uvarum, and Pyruvate Kinase Limits Its Capacity for Alcoholic Fermentation. Appl Environ Microbiol 83(22) PMID:28887422
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Rippert D, et al. (2017) Cell wall synthesis and central carbohydrate metabolism are interconnected by the SNF1/Mig1 pathway in Kluyveromyces lactis. Eur J Cell Biol 96(1):70-81 PMID:28057356
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ and Brandt R (2016) Signaling pathways and posttranslational modifications of tau in Alzheimer's disease: the humanization of yeast cells. Microb Cell 3(4):135-146 PMID:28357346
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Kock C, et al. (2016) Yeast cell wall integrity sensors form specific plasma membrane microdomains important for signalling. Cell Microbiol 18(9):1251-67 PMID:27337501
    • SGD Paper
    • DOI full text
    • PubMed
  • Rippert D and Heinisch JJ (2016) Investigation of the role of four mitotic septins and chitin synthase 2 for cytokinesis in Kluyveromyces lactis. Fungal Genet Biol 94:69-78 PMID:27422440
    • SGD Paper
    • DOI full text
    • PubMed
  • Kock C, et al. (2015) Up against the wall: is yeast cell wall integrity ensured by mechanosensing in plasma membrane microdomains? Appl Environ Microbiol 81(3):806-11 PMID:25398859
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Schmitz HP, et al. (2015) Identification of Dck1 and Lmo1 as upstream regulators of the small GTPase Rho5 in Saccharomyces cerevisiae. Mol Microbiol 96(2):306-24 PMID:25598154
    • SGD Paper
    • DOI full text
    • PubMed
  • Rippert D, et al. (2014) Regulation of cytokinesis in the milk yeast Kluyveromyces lactis. Biochim Biophys Acta 1843(11):2685-97 PMID:25110348
    • SGD Paper
    • DOI full text
    • PubMed
  • Rosemeyer H, et al. (2014) 'Yeast mail': a novel Saccharomyces application (NSA) to encrypt messages. Chem Biodivers 11(9):1364-73 PMID:25238077
    • SGD Paper
    • DOI full text
    • PubMed
  • Backhaus K, et al. (2013) Mutations in SNF1 complex genes affect yeast cell wall strength. Eur J Cell Biol 92(12):383-95 PMID:24486034
    • SGD Paper
    • DOI full text
    • PubMed
  • Merzendorfer H and Heinisch JJ (2013) Microcompartments within the yeast plasma membrane. Biol Chem 394(2):189-202 PMID:23096568
    • SGD Paper
    • DOI full text
    • PubMed
  • Backhaus K, et al. (2011) Milk and sugar: regulation of cell wall synthesis in the milk yeast Kluyveromyces lactis. Eur J Cell Biol 90(9):745-50 PMID:21628080
    • SGD Paper
    • DOI full text
    • PubMed
  • Dupres V, et al. (2011) Atomic force microscopy demonstrates that disulfide bridges are required for clustering of the yeast cell wall integrity sensor Wsc1. Langmuir 27(24):15129-34 PMID:22107047
    • SGD Paper
    • DOI full text
    • PubMed
  • Jendretzki A, et al. (2011) How do I begin? Sensing extracellular stress to maintain yeast cell wall integrity. Eur J Cell Biol 90(9):740-4 PMID:21640429
    • SGD Paper
    • DOI full text
    • PubMed
  • Bermejo C, et al. (2010) Characterization of sensor-specific stress response by transcriptional profiling of wsc1 and mid2 deletion strains and chimeric sensors in Saccharomyces cerevisiae. OMICS 14(6):679-88 PMID:20958245
    • SGD Paper
    • DOI full text
    • PubMed
  • Dupres V, et al. (2010) Measuring cell wall thickness in living yeast cells using single molecular rulers. ACS Nano 4(9):5498-504 PMID:20804167
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ and Dufrêne YF (2010) Is there anyone out there?--Single-molecule atomic force microscopy meets yeast genetics to study sensor functions. Integr Biol (Camb) 2(9):408-15 PMID:20648385
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ, et al. (2010) Single-molecule atomic force microscopy reveals clustering of the yeast plasma-membrane sensor Wsc1. PLoS One 5(6):e11104 PMID:20559440
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Heinisch JJ, et al. (2010) Measurement of the mechanical behavior of yeast membrane sensors using single-molecule atomic force microscopy. Nat Protoc 5(4):670-7 PMID:20360762
    • SGD Paper
    • DOI full text
    • PubMed
  • Rodicio R and Heinisch JJ (2010) Together we are strong--cell wall integrity sensors in yeasts. Yeast 27(8):531-40 PMID:20641024
    • SGD Paper
    • DOI full text
    • PubMed
  • Wilk S, et al. (2010) A block of endocytosis of the yeast cell wall integrity sensors Wsc1 and Wsc2 results in reduced fitness in vivo. Mol Genet Genomics 284(3):217-29 PMID:20652590
    • SGD Paper
    • DOI full text
    • PubMed
  • Dupres V, et al. (2009) The yeast Wsc1 cell surface sensor behaves like a nanospring in vivo. Nat Chem Biol 5(11):857-62 PMID:19767735
    • SGD Paper
    • DOI full text
    • PubMed
  • Jendretzki A, et al. (2009) Cyk3 acts in actomyosin ring independent cytokinesis by recruiting Inn1 to the yeast bud neck. Mol Genet Genomics 282(4):437-51 PMID:19707790
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ (2008) Baker's yeast as a tool for the development of antifungal drugs which target cell integrity - an update. Expert Opin Drug Discov 3(8):931-43 PMID:23484968
    • SGD Paper
    • DOI full text
    • PubMed
  • Rodicio R, et al. (2008) Dissecting sensor functions in cell wall integrity signaling in Kluyveromyces lactis. Fungal Genet Biol 45(4):422-35 PMID:17827039
    • SGD Paper
    • DOI full text
    • PubMed
  • Brockmann R, et al. (2007) Posttranscriptional expression regulation: what determines translation rates? PLoS Comput Biol 3(3):e57 PMID:17381238
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Schehl B, et al. (2007) Contribution of the fermenting yeast strain to ethyl carbamate generation in stone fruit spirits. Appl Microbiol Biotechnol 74(4):843-50 PMID:17216464
    • SGD Paper
    • DOI full text
    • PubMed
  • Straede A and Heinisch JJ (2007) Functional analyses of the extra- and intracellular domains of the yeast cell wall integrity sensors Mid2 and Wsc1. FEBS Lett 581(23):4495-500 PMID:17761172
    • SGD Paper
    • DOI full text
    • PubMed
  • Straede A, et al. (2007) The effect of tea tree oil and antifungal agents on a reporter for yeast cell integrity signalling. Yeast 24(4):321-34 PMID:17397109
    • SGD Paper
    • DOI full text
    • PubMed
  • Strahl S and Heinisch JJ (2007) Fungal cell wall biosynthesis: a view on biodiversity in fungi and application of '-omics'. Yeast 24(4):217-9 PMID:17397116
    • SGD Paper
    • DOI full text
    • PubMed
  • Rodicio R, et al. (2006) KlRHO1 and KlPKC1 are essential for cell integrity signalling in Kluyveromyces lactis. Microbiology (Reading) 152(Pt 9):2635-2649 PMID:16946259
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ (2005) Baker's yeast as a tool for the development of antifungal kinase inhibitors--targeting protein kinase C and the cell integrity pathway. Biochim Biophys Acta 1754(1-2):171-82 PMID:16216564
    • SGD Paper
    • DOI full text
    • PubMed
  • Schehl B, et al. (2005) Effect of the stone content on the quality of plum and cherry spirits produced from mash fermentations with commercial and laboratory yeast strains. J Agric Food Chem 53(21):8230-8 PMID:16218669
    • SGD Paper
    • DOI full text
    • PubMed
  • López ML, et al. (2004) Isocitrate lyase of the yeast Kluyveromyces lactis is subject to glucose repression but not to catabolite inactivation. Curr Genet 44(6):305-16 PMID:14569415
    • SGD Paper
    • DOI full text
    • PubMed
  • Schehl B, et al. (2004) A laboratory yeast strain suitable for spirit production. Yeast 21(16):1375-89 PMID:15565641
    • SGD Paper
    • DOI full text
    • PubMed
  • Lorberg A, et al. (2003) KlROM2 encodes an essential GEF homologue in Kluyveromyces lactis. Yeast 20(7):611-24 PMID:12734799
    • SGD Paper
    • DOI full text
    • PubMed
  • Schmitz HP and Heinisch JJ (2003) Evolution, biochemistry and genetics of protein kinase C in fungi. Curr Genet 43(4):245-54 PMID:12736758
    • SGD Paper
    • DOI full text
    • PubMed
  • Edelmann A, et al. (2002) C-terminal modification of 6-phosphofructo-1-kinase from Saccharomyces cerevisiae and its influence on enzyme structure and activity. Biochem Biophys Res Commun 295(4):992-9 PMID:12127994
    • SGD Paper
    • DOI full text
    • PubMed
  • Schmitz HP, et al. (2002) Rho5p downregulates the yeast cell integrity pathway. J Cell Sci 115(Pt 15):3139-48 PMID:12118069
    • SGD Paper
    • DOI full text
    • PubMed
  • Schmitz HP, et al. (2002) Regulation of yeast protein kinase C activity by interaction with the small GTPase Rho1p through its amino-terminal HR1 domain. Mol Microbiol 44(3):829-40 PMID:11994162
    • SGD Paper
    • DOI full text
    • PubMed
  • Lorberg A, et al. (2001) The PH domain of the yeast GEF Rom2p serves an essential function in vivo. Mol Genet Genomics 266(3):505-13 PMID:11713680
    • SGD Paper
    • DOI full text
    • PubMed
  • Lorberg A, et al. (2001) Lrg1p functions as a putative GTPase-activating protein in the Pkc1p-mediated cell integrity pathway in Saccharomyces cerevisiae. Mol Genet Genomics 266(3):514-26 PMID:11713681
    • SGD Paper
    • DOI full text
    • PubMed
  • Schmitz HP, et al. (2001) Domain shuffling as a tool for investigation of protein function: substitution of the cysteine-rich region of Raf kinase and PKC eta for that of yeast Pkc1p. J Mol Biol 311(1):1-7 PMID:11469853
    • SGD Paper
    • DOI full text
    • PubMed
  • Kirchrath L, et al. (2000) Comparative genetic and physiological studies of the MAP kinase Mpk1p from Kluyveromyces lactis and Saccharomyces cerevisiae. J Mol Biol 300(4):743-58 PMID:10891267
    • SGD Paper
    • DOI full text
    • PubMed
  • Rodicio R, et al. (2000) Single point mutations in either gene encoding the subunits of the heterooctameric yeast phosphofructokinase abolish allosteric inhibition by ATP. J Biol Chem 275(52):40952-60 PMID:11221662
    • SGD Paper
    • DOI full text
    • PubMed
    • Reference supplement
  • Heinisch JJ, et al. (1999) The protein kinase C-mediated MAP kinase pathway involved in the maintenance of cellular integrity in Saccharomyces cerevisiae. Mol Microbiol 32(4):671-80 PMID:10361272
    • SGD Paper
    • DOI full text
    • PubMed
  • Jacoby JJ, et al. (1999) Characterization of KLBCK1, encoding a MAP kinase kinase kinase of Kluyveromyces lactis. J Mol Biol 288(3):337-52 PMID:10329146
    • SGD Paper
    • DOI full text
    • PubMed
  • Kirchberger J, et al. (1999) A single point mutation leads to an instability of the hetero-octameric structure of yeast phosphofructokinase. Biochem J 341 ( Pt 1)(Pt 1):15-23 PMID:10377240
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Lorberg A, et al. (1999) Genetic and biochemical characterization of phosphofructokinase from the opportunistic pathogenic yeast Candida albicans. Eur J Biochem 260(1):217-26 PMID:10091602
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ, et al. (1998) Investigation of two yeast genes encoding putative isoenzymes of phosphoglycerate mutase. Yeast 14(3):203-13 PMID:9544241
    • SGD Paper
    • DOI full text
    • PubMed
  • Jacoby JJ, et al. (1998) A screen for upstream components of the yeast protein kinase C signal transduction pathway identifies the product of the SLG1 gene. Mol Gen Genet 258(1-2):148-55 PMID:9613583
    • SGD Paper
    • DOI full text
    • PubMed
  • Boles E, et al. (1997) Characterization of a glucose-repressed pyruvate kinase (Pyk2p) in Saccharomyces cerevisiae that is catalytically insensitive to fructose-1,6-bisphosphate. J Bacteriol 179(9):2987-93 PMID:9139918
    • SGD Paper
    • DOI full text
    • PMC full text
    • PubMed
  • Jacoby JJ and Heinisch JJ (1997) Analysis of a transketolase gene from Kluyveromyces lactis reveals that the yeast enzymes are more related to transketolases of prokaryotic origins than to those of higher eukaryotes. Curr Genet 31(1):15-21 PMID:9000376
    • SGD Paper
    • DOI full text
    • PubMed
  • Jacoby JJ, et al. (1997) Mutants affected in the putative diacylglycerol binding site of yeast protein kinase C. FEBS Lett 417(2):219-22 PMID:9395299
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ, et al. (1996) A yeast phosphofructokinase insensitive to the allosteric activator fructose 2,6-bisphosphate. Glycolysis/metabolic regulation/allosteric control. J Biol Chem 271(27):15928-33 PMID:8663166
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ, et al. (1996) Molecular genetics of ICL2, encoding a non-functional isocitrate lyase in Saccharomyces cerevisiae. Yeast 12(13):1285-95 PMID:8923733
    • SGD Paper
    • DOI full text
    • PubMed
  • Liesen T, et al. (1996) ERA, a novel cis-acting element required for autoregulation and ethanol repression of PDC1 transcription in Saccharomyces cerevisiae. Mol Microbiol 21(3):621-32 PMID:8866484
    • SGD Paper
    • DOI full text
    • PubMed
  • Estévez AM, et al. (1995) Functional complementation of yeast phosphofructokinase mutants by the non-allosteric enzyme from Dictyostelium discoideum. FEBS Lett 374(1):100-4 PMID:7589492
    • SGD Paper
    • DOI full text
    • PubMed
  • Arvanitidis A and Heinisch JJ (1994) Studies on the function of yeast phosphofructokinase subunits by in vitro mutagenesis. J Biol Chem 269(12):8911-8 PMID:8132627
    • SGD Paper
    • PubMed
  • Heinisch JJ (1993) Expression of heterologous phosphofructokinase genes in yeast. FEBS Lett 328(1-2):35-40 PMID:8344431
    • SGD Paper
    • DOI full text
    • PubMed
  • Heinisch JJ (1993) PFK2, ISP42, ERG2 and RAD14 are located on the right arm of chromosome XIII. Yeast 9(10):1103-5 PMID:8256518
    • SGD Paper
    • DOI full text
    • PubMed
  • Jacoby J, et al. (1993) Transaldolase mutants in the yeast Kluyveromyces lactis provide evidence that glucose can be metabolized through the pentose phosphate pathway. Mol Microbiol 10(4):867-76 PMID:7934848
    • SGD Paper
    • DOI full text
    • PubMed
  • Rodicio R, et al. (1993) Transcriptional control of yeast phosphoglycerate mutase-encoding gene. Gene 125(2):125-33 PMID:8462867
    • SGD Paper
    • DOI full text
    • PubMed
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