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The role of mRNA stability and Fos protein in transient c-fos mRNA accumulationWilson, Timothy Craig January 1988 (has links)
No description available.
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Studies on replication origins in Saccharomyces cerevisiaeKipling, D. G. January 1989 (has links)
No description available.
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A molecular biological study of protein disulphide isomeraseMurant, Susan J. January 1989 (has links)
No description available.
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Modulators of the cell cycle in fibroblastsCosulich, Sabina Chiara January 1992 (has links)
No description available.
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Nuclear and Cytoskeletal Prestress Govern the Anisotropic Mechanical Properties of the NucleusMacadangdang, Joan Karla 24 September 2012 (has links)
Physical forces in the cellular microenvironment play an important role in governing cell function. Forces transmitted through the cell cause distinct deformation of the nucleus, and possibly play a role in force-mediated gene expression. The work presented in this thesis drew upon innovative strategies employing simultaneous atomic force and laser-scanning confocal microscopy, as well as parallel optical stretching experiments, to gain unique insights into the response of eukaryotic cell nuclei to external force. Non-destructive approaches confirmed the existence of a clear anisotropy in nuclear mechanical properties, and showed that the nucleus' mechanical response to extracellular forces is differentially governed by both nuclear and cytoskeletal prestress: nuclear prestress regulates shape and anisotropic deformation, whereas cytoskeletal prestress modulates the magnitude and degree of deformation. Importantly, the anisotropic mechanical response was conserved among diverse differentiated cell types from multiple species, suggesting that nuclear mechanical anisotropy plays an important role in cell function.
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Nuclear and Cytoskeletal Prestress Govern the Anisotropic Mechanical Properties of the NucleusMacadangdang, Joan Karla 24 September 2012 (has links)
Physical forces in the cellular microenvironment play an important role in governing cell function. Forces transmitted through the cell cause distinct deformation of the nucleus, and possibly play a role in force-mediated gene expression. The work presented in this thesis drew upon innovative strategies employing simultaneous atomic force and laser-scanning confocal microscopy, as well as parallel optical stretching experiments, to gain unique insights into the response of eukaryotic cell nuclei to external force. Non-destructive approaches confirmed the existence of a clear anisotropy in nuclear mechanical properties, and showed that the nucleus' mechanical response to extracellular forces is differentially governed by both nuclear and cytoskeletal prestress: nuclear prestress regulates shape and anisotropic deformation, whereas cytoskeletal prestress modulates the magnitude and degree of deformation. Importantly, the anisotropic mechanical response was conserved among diverse differentiated cell types from multiple species, suggesting that nuclear mechanical anisotropy plays an important role in cell function.
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Nuclear and Cytoskeletal Prestress Govern the Anisotropic Mechanical Properties of the NucleusMacadangdang, Joan Karla January 2012 (has links)
Physical forces in the cellular microenvironment play an important role in governing cell function. Forces transmitted through the cell cause distinct deformation of the nucleus, and possibly play a role in force-mediated gene expression. The work presented in this thesis drew upon innovative strategies employing simultaneous atomic force and laser-scanning confocal microscopy, as well as parallel optical stretching experiments, to gain unique insights into the response of eukaryotic cell nuclei to external force. Non-destructive approaches confirmed the existence of a clear anisotropy in nuclear mechanical properties, and showed that the nucleus' mechanical response to extracellular forces is differentially governed by both nuclear and cytoskeletal prestress: nuclear prestress regulates shape and anisotropic deformation, whereas cytoskeletal prestress modulates the magnitude and degree of deformation. Importantly, the anisotropic mechanical response was conserved among diverse differentiated cell types from multiple species, suggesting that nuclear mechanical anisotropy plays an important role in cell function.
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Výpočtové modelování mechanických zkoušek izolovaných buněk / Computational modelling of mechanical tests of isolated cellsSůkal, Petr January 2009 (has links)
The master’s thesis deals with computational modelling of mechanical testing of isolated cells, particularly of single-axle tensile test. The aim is to imitate the real deformed shape known from experiments. At first, the structure of each cell component is described and analyzed according to their significance for mechanical behavior. The outline of basic mechanical tests used for cell testing is discussed next. A structural computational model comprising all components significant for mechanical purposes is created for the modelling. Those components are nucleus, cytoplasm, cell membrane and cytoskeleton. Due to the problems with convergence the model was divided into two parts. The first one treats separately the shape of cytoskeleton and the second one treats the shape of communicating components (nucleus, cytoplasm and cell membrane). Both of those partial models succeed in reaching the deformations according to the experiments.
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Transcriptional timing and noise of yeast cell cycle regulatorsAmoussouvi, Aouefa 15 June 2020 (has links)
Die Genexpression ist ein stochastischer Prozess, dessen strenge Regulation einen ungestörten Zellzyklusverlauf ermöglicht. Jeglicher Stress löst eine Neuprogrammierung der Expression und somit einen Stillstand des Zellzyklus aus. Um ein besseres Verständnis des eukaryotischen Zellzyklus zu erlangen, wurde in dieser Arbeit die Fluoreszenzmikroskopie einzelner Zellen (S.cerevisiae) mit stochastischer Modellierung der Hauptregulatorgene des G1/S-Übergangs (SIC1, CLN2, CLB5) kombiniert.
Mithilfe des MS2-CP-Systems wurden mRNA-Level von SIC1 in lebenden Zellen bestimmt und verschiedene Transportwege von SIC1-mRNA visualisiert. RNA-FISH in Kombination mit genetischen und morphologischen Markierungen ermöglichte es, die absolute Quantifizierung von SIC1-, CLN2- und CLB5-mRNA in allen Zyklusphasen vorzunehmen. Die Auswirkung von Osmostress, in Hinblick auf eine transkriptionale Verzerrung, wurde untersucht.
Basierend auf den experimentellen-Daten wurde ein stochastisches Model entwickelt, dass die Expression von SIC1, CLN2 und CLB5 mRNA und Proteinlevel in Abhängigkeit von Osmostress über den gesamten Zellzyklus hinweg abbildet. Die Modellierung ermöglichte eine in silico Synchronisation und somit die Extraktion kinetischer Parameter.
Die Expression der beobachteten Gene wurde im Verlauf des Zellzyklus nicht ein- und ausgeschaltet, stattdessen kam es zu Phasen hoher oder niedriger Expression. Niedriger SIC1 Expression gewährleistete niedriger Sic1 Protein Verzerrung und robustes G1/S Timing. CLN2 und CLB5 zeigten ein maximales Expressionslevel in G1 und auch eine erhöhte Expression in der späten Mitose. Osmostress induzierte einen langanhaltenden Effekt auf die Transkription und die Dauer der Zellzyklusphasen.
Der hier vorgestellte Ansatz ermöglichte quantitative Einblicke in die Genexpression und zeitliche Koordination des Zellzyklus von S.cerevisiae. Einige der hier beobachteten Regulationsmechanismen könnten allgemeine Gültigkeit im eukaryotischen Zellzyklus besitzen. / Gene expression is a stochastic process and its appropriate regulation is critical for cell cycle progression. Cellular stress response requires expression reprogramming and cell cycle arrest. Time-resolved quantitative methods on single cells are needed to understand eukaryotic cell cycle in context of noisy gene expression and external perturbations.
We applied single-cell fluorescence microscopy and stochastic modeling to SIC1, CLN2 and CLB5, the main G1/S regulators in S. cerevisiae. Using MS2-CP system we estimated SIC1 mRNA levels and visualized different types of transport for SIC1 mRNA particles in living cells. With RNA-FISH combined to genetic and morphological markers we monitored absolute numbers of mRNA and transcriptional noise over cell cycle phases with and without osmostress.
Stochastic modeling enabled in silico synchronization, the extraction of kinetic parameters as well as expanded the static mRNA data into time courses for mRNAs, proteins and their noise. Based on our experimental data we developed a stochastic model of G1/S timing centered on SIC1 and a second one for the entire cell cycle involving SIC1, CLN2 and CLB5 and the response to osmostress. All three genes exhibited basal expression throughout cell cycle enlightening that transcription is not divided in on and off but rather in high and low phases. A low SIC1 transcript level ensured a low protein noise and a robust timing of the G1/S transition. CLN2 and CLB5 showed main expression peaks in G1 as well as an expression upshift in late mitosis. Osmostress induced different periods of transcriptional inhibition for CLN2 and CLB5 and long-term impact on cell cycle phase duration.
Our approach disclosed detailed quantitative insights into gene expression and cell cycle timing, not available from bulk experiments. Importantly some regulation mechanisms specific to SIC1, CLN2 and CLB5 might be generalized to other genes as well as to other organisms.
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