Intracellular pH is a key parameter that influences many biochemical and metabolic pathways that can also be used as an indirect marker to monitor metabolic and intracellular processes. Herein, we utilise ratiometric fluorescent pH-sensitive nanosensors with an extended dynamic pH range to measure the intracellular pH of yeast (Saccharomyces cerevisiae) during glucose metabolism in real-time. Ratiometric fluorescent pH-sensitive nanosensors consisting of a polyacrylamide nanoparticle matrix covalently linked to two pH-sensitive fluorophores, Oregon green (OG) and 5(6)carboxyfluorescein (FAM), and a reference pH-insensitive fluorophore, 5(6)carboxytetramethylrhodamine (TAMRA), were synthesised. Nanosensors were functionalised with acrylamido...
pH homeostasis is strictly controlled at a subcellular level. A deregulation of the intra/extra/subc...
© 2015 American Chemical Society. Recently, ratiometric pH nanosensors have emerged as a robust tool...
Abstract Understanding the dynamic environmental microniches of biofilms will permit us to detect, m...
Intracellular pH is a key parameter that influences many biochemical and metabolic pathways that can...
A 10 µm glucose sensor was developed based on a glucose oxidase coated Pt-electrode inserted in a ca...
The ability of cells to maintain pH homeostasis in response to environmental changes has elicited in...
The Master Thesis focuses on monitoring of intracellular ion concentrations in bacteria Escherichia ...
[EN] We report herein the construction of an integrated and sensitive enzyme-powered colorimetric na...
Cytosolic pH of yeast is regulated and maintained by cooperation of many transport proteins. A fluor...
The field of nanomedicine has progressed to a stage where a diverse set of materials are available f...
The current advances of nanotechnology in medicine and biology open new horizons towards the develop...
Biofilms are ubiquitous in nature and in the man-made environment. Given their harmful effects on hu...
In this work, we demonstrated a new ratiometric method for the quantitative analysis of pH inside li...
The main objective of this thesis was to contribute to the optimisation of the biosensing of two spe...
The bachelor thesis is focused on studying yeast cells and their response to various external condit...
pH homeostasis is strictly controlled at a subcellular level. A deregulation of the intra/extra/subc...
© 2015 American Chemical Society. Recently, ratiometric pH nanosensors have emerged as a robust tool...
Abstract Understanding the dynamic environmental microniches of biofilms will permit us to detect, m...
Intracellular pH is a key parameter that influences many biochemical and metabolic pathways that can...
A 10 µm glucose sensor was developed based on a glucose oxidase coated Pt-electrode inserted in a ca...
The ability of cells to maintain pH homeostasis in response to environmental changes has elicited in...
The Master Thesis focuses on monitoring of intracellular ion concentrations in bacteria Escherichia ...
[EN] We report herein the construction of an integrated and sensitive enzyme-powered colorimetric na...
Cytosolic pH of yeast is regulated and maintained by cooperation of many transport proteins. A fluor...
The field of nanomedicine has progressed to a stage where a diverse set of materials are available f...
The current advances of nanotechnology in medicine and biology open new horizons towards the develop...
Biofilms are ubiquitous in nature and in the man-made environment. Given their harmful effects on hu...
In this work, we demonstrated a new ratiometric method for the quantitative analysis of pH inside li...
The main objective of this thesis was to contribute to the optimisation of the biosensing of two spe...
The bachelor thesis is focused on studying yeast cells and their response to various external condit...
pH homeostasis is strictly controlled at a subcellular level. A deregulation of the intra/extra/subc...
© 2015 American Chemical Society. Recently, ratiometric pH nanosensors have emerged as a robust tool...
Abstract Understanding the dynamic environmental microniches of biofilms will permit us to detect, m...