AbstractThe specification and maintenance of cell fates is essential to the development of multicellular organisms. However, the precise molecular mechanisms in cell fate selection are, to our knowledge, poorly understood due to the complexity of multiple interconnected pathways. In this study, model-based quantitative analysis is used to explore how to maintain distinguished cell fates between cell-cycle commitment and mating arrest in budding yeast. We develop a full mathematical model of an interlinked regulatory network based on the available experimental data. By theoretically defining the Start transition point, the model is able to reproduce many experimental observations of the dynamical behaviors in wild-type cells as well as in St...
In the living cells, molecules including proteins, DNAs, RNAs and so on, with interactions between t...
Nutrients from living environment are vital for the survival and growth of any organism. Budding yea...
Introduction: The cell cycle network is responsible of control, growth and proliferation of cells. T...
In this dissertation, we study the control network that governs the cell division cycle of budding y...
To understand the molecular mechanisms that regulate cell cycle progression in eukaryotes, a variety...
The understanding of complex biological processes whose function requires the interaction of a large...
Massive technological advances enabled high-throughput measurements of proteomic changes in biologic...
Massive technological advances enabled high-throughput measurements of proteomic changes in biologic...
Motivation: The ability of cells to complete mitosis with high fidelity relies on elaborate checkpoi...
Dynamic behaviors of protein-protein and protein-DNA interactions in living cells are investigated u...
The operating principles of complex regulatory networks are more easily understood with mathematical...
AbstractWe propose a protein interaction network for the regulation of DNA synthesis and mitosis tha...
Understanding the molecular and biophysical mechanisms that couple the process of cell growth to cel...
networks of switches) are extremely simple mathematical models of biochemical signaling networks. Un...
The operating principles of complex regulatory networks are best understood with the help of mathema...
In the living cells, molecules including proteins, DNAs, RNAs and so on, with interactions between t...
Nutrients from living environment are vital for the survival and growth of any organism. Budding yea...
Introduction: The cell cycle network is responsible of control, growth and proliferation of cells. T...
In this dissertation, we study the control network that governs the cell division cycle of budding y...
To understand the molecular mechanisms that regulate cell cycle progression in eukaryotes, a variety...
The understanding of complex biological processes whose function requires the interaction of a large...
Massive technological advances enabled high-throughput measurements of proteomic changes in biologic...
Massive technological advances enabled high-throughput measurements of proteomic changes in biologic...
Motivation: The ability of cells to complete mitosis with high fidelity relies on elaborate checkpoi...
Dynamic behaviors of protein-protein and protein-DNA interactions in living cells are investigated u...
The operating principles of complex regulatory networks are more easily understood with mathematical...
AbstractWe propose a protein interaction network for the regulation of DNA synthesis and mitosis tha...
Understanding the molecular and biophysical mechanisms that couple the process of cell growth to cel...
networks of switches) are extremely simple mathematical models of biochemical signaling networks. Un...
The operating principles of complex regulatory networks are best understood with the help of mathema...
In the living cells, molecules including proteins, DNAs, RNAs and so on, with interactions between t...
Nutrients from living environment are vital for the survival and growth of any organism. Budding yea...
Introduction: The cell cycle network is responsible of control, growth and proliferation of cells. T...