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  • Author: Palková Z
  • References

Author: Palková Z


References 60 references


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  • Palková Z and Váchová L (2025) Cell differentiation, aging, and death in spatially organized yeast communities: mechanisms and consequences. Cell Death Differ PMID:40158069
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  • Váchová L, et al. (2024) Differential stability of Gcn4p controls its cell-specific activity in differentiated yeast colonies. mBio 15(5):e0068924 PMID:38624209
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  • Čáp M and Palková Z (2024) The characteristics of differentiated yeast subpopulations depend on their lifestyle and available nutrients. Sci Rep 14(1):3681 PMID:38355943
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  • Čáp M and Palková Z (2024) Non-Coding RNAs: Regulators of Stress, Ageing, and Developmental Decisions in Yeast? Cells 13(7) PMID:38607038
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  • Guaragnella N, et al. (2021) Analysis of Mitochondrial Retrograde Signaling in Yeast Model Systems. Methods Mol Biol 2276:87-102 PMID:34060034
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  • Palková Z and Váchová L (2021) Spatially structured yeast communities: Understanding structure formation and regulation with omics tools. Comput Struct Biotechnol J 19:5613-5621 PMID:34712401
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  • Plocek V, et al. (2021) Mitochondrial Retrograde Signaling Contributes to Metabolic Differentiation in Yeast Colonies. Int J Mol Sci 22(11) PMID:34070491
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  • Maršíková J, et al. (2020) The Whi2p-Psr1p/Psr2p complex regulates interference competition and expansion of cells with competitive advantage in yeast colonies. Proc Natl Acad Sci U S A 117(26):15123-15131 PMID:32541056
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  • Plocek V, et al. (2020) Cell Distribution within Yeast Colonies and Colony Biofilms: How Structure Develops. Int J Mol Sci 21(11) PMID:32485964
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  • Van Nguyen P, et al. (2020) Glucose, Cyc8p and Tup1p regulate biofilm formation and dispersal in wild Saccharomyces cerevisiae. NPJ Biofilms Microbiomes 6(1):7 PMID:32054862
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  • Váchová L and Palková Z (2019) Diverse roles of Tup1p and Cyc8p transcription regulators in the development of distinct types of yeast populations. Curr Genet 65(1):147-151 PMID:30191307
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  • Nguyen PV, et al. (2018) Cyc8p and Tup1p transcription regulators antagonistically regulate Flo11p expression and complexity of yeast colony biofilms. PLoS Genet 14(7):e1007495 PMID:29965985
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  • Váchová L and Palková Z (2018) How structured yeast multicellular communities live, age and die? FEMS Yeast Res 18(4) PMID:29718174
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  • Wilkinson D, et al. (2018) Transcriptome Remodeling of Differentiated Cells during Chronological Ageing of Yeast Colonies: New Insights into Metabolic Differentiation. Oxid Med Cell Longev 2018:4932905 PMID:29576850
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  • Wilkinson D, et al. (2018) Long Noncoding RNAs in Yeast Cells and Differentiated Subpopulations of Yeast Colonies and Biofilms. Oxid Med Cell Longev 2018:4950591 PMID:29765496
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  • Hovsepian J, et al. (2017) Multilevel regulation of an α-arrestin by glucose depletion controls hexose transporter endocytosis. J Cell Biol 216(6):1811-1831 PMID:28468835
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  • Maršíková J, et al. (2017) Metabolic differentiation of surface and invasive cells of yeast colony biofilms revealed by gene expression profiling. BMC Genomics 18(1):814 PMID:29061122
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  • Kuznetsov E, et al. (2016) Cellular localization of Sun4p and its interaction with proteins in the yeast birth scar. Cell Cycle 15(14):1898-907 PMID:27229769
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  • Palková Z and Váchová L (2016) Yeast cell differentiation: Lessons from pathogenic and non-pathogenic yeasts. Semin Cell Dev Biol 57:110-119 PMID:27084693
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  • Palková Z and Váchová L (2016) Mitochondria in aging cell differentiation. Aging (Albany NY) 8(7):1287-8 PMID:27385536
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  • Podholová K, et al. (2016) Divergent branches of mitochondrial signaling regulate specific genes and the viability of specialized cell types of differentiated yeast colonies. Oncotarget 7(13):15299-314 PMID:26992228
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  • Čáp M, et al. (2015) Longevity of U cells of differentiated yeast colonies grown on respiratory medium depends on active glycolysis. Cell Cycle 14(21):3488-97 PMID:26566867
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  • Palková Z, et al. (2014) Aging and differentiation in yeast populations: elders with different properties and functions. FEMS Yeast Res 14(1):96-108 PMID:24119061
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  • Šťovíček V, et al. (2014) Global changes in gene expression associated with phenotypic switching of wild yeast. BMC Genomics 15:136 PMID:24533484
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  • Váchová L, et al. (2013) Rapidly developing yeast microcolonies differentiate in a similar way to aging giant colonies. Oxid Med Cell Longev 2013:102485 PMID:23970946
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  • Cottier F, et al. (2012) The bZIP transcription factor Rca1p is a central regulator of a novel CO₂ sensing pathway in yeast. PLoS Pathog 8(1):e1002485 PMID:22253597
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  • Cáp M, et al. (2012) Cell differentiation within a yeast colony: metabolic and regulatory parallels with a tumor-affected organism. Mol Cell 46(4):436-48 PMID:22560924
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  • Cáp M, et al. (2012) Reactive oxygen species in the signaling and adaptation of multicellular microbial communities. Oxid Med Cell Longev 2012:976753 PMID:22829965
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  • Pineda Rodó A, et al. (2012) In vivo determination of organellar pH using a universal wavelength-based confocal microscopy approach. PLoS One 7(3):e33229 PMID:22470445
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  • Strachotová D, et al. (2012) Ato protein interactions in yeast plasma membrane revealed by fluorescence lifetime imaging (FLIM). Biochim Biophys Acta 1818(9):2126-34 PMID:22579979
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  • Váchová L, et al. (2012) Yeast colonies: a model for studies of aging, environmental adaptation, and longevity. Oxid Med Cell Longev 2012:601836 PMID:22928081
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  • Váchová L and Palková Z (2011) Aging and longevity of yeast colony populations: metabolic adaptation and differentiation. Biochem Soc Trans 39(5):1471-5 PMID:21936836
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  • Váchová L, et al. (2011) Flo11p, drug efflux pumps, and the extracellular matrix cooperate to form biofilm yeast colonies. J Cell Biol 194(5):679-87 PMID:21875945
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  • Cáp M, et al. (2010) How to survive within a yeast colony?: Change metabolism or cope with stress? Commun Integr Biol 3(2):198-200 PMID:20585522
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  • Palková Z, et al. (2009) Synchronous plasma membrane electrochemical potential oscillations during yeast colony development and aging. Mol Membr Biol 26(4):228-35 PMID:19418350
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  • Váchová L and Palková Z (2007) Caspases in yeast apoptosis-like death: facts and artefacts. FEMS Yeast Res 7(1):12-21 PMID:17311581
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  • Palková Z and Váchová L (2006) Life within a community: benefit to yeast long-term survival. FEMS Microbiol Rev 30(5):806-24 PMID:16911045
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  • Adamec T, et al. (2005) Point mutation in calcium-binding domain of mouse polyomavirus VP1 protein does not prevent virus-like particle formation, but changes VP1 interactions with Saccharomyces cerevisiae cell structures. FEMS Yeast Res 5(4-5):331-40 PMID:15691738
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  • Váchová L and Palková Z (2005) Physiological regulation of yeast cell death in multicellular colonies is triggered by ammonia. J Cell Biol 169(5):711-7 PMID:15939758
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  • Váchová L, et al. (2004) Sok2p transcription factor is involved in adaptive program relevant for long term survival of Saccharomyces cerevisiae colonies. J Biol Chem 279(36):37973-81 PMID:15229222
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  • Palková Z and Vachova L (2003) Ammonia signaling in yeast colony formation. Int Rev Cytol 225:229-72 PMID:12696594
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  • Ricicová M and Palková Z (2003) Comparative analyses of Saccharomyces cerevisiae RNAs using Agilent RNA 6000 Nano Assay and agarose gel electrophoresis. FEMS Yeast Res 4(1):119-22 PMID:14554204
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  • Palková Z, et al. (2002) Ammonia pulses and metabolic oscillations guide yeast colony development. Mol Biol Cell 13(11):3901-14 PMID:12429834
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  • Zikánová B, et al. (2002) Amino acids control ammonia pulses in yeast colonies. Biochem Biophys Res Commun 294(5):962-7 PMID:12074570
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  • Palková Z, et al. (1997) Ammonia mediates communication between yeast colonies. Nature 390(6659):532-6 PMID:9394006
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