Sensing and responding to changes in NaCl concentration in hypersaline environments is vital for cell survival. In this paper, we identified and characterized key components of the high-osmolarity glycerol (HOG) signal transduction pathway, which is crucial in sensing hypersaline conditions in the extremely halotolerant black yeast Hortaea werneckii and in the obligate halophilic fungus Wallemia ichthyophaga. Both organisms were isolated from solar salterns, their predominating ecological niche. The identified components included homologous proteins of both branches involved in sensing high osmolarity (SHO1 and SLN1) and the homologues of mitogen-activated protein kinase module (MAPKKK Ste11, MAPKK Pbs2, and MAPK Hog1). Functional complemen...
The high-osmolarity glycerol (HOG) mitogen-activated protein (MAP) kinase pathway mediates adaptatio...
The HOG/p38 MAP kinase route is an important stress-activated signal transduction pathway that is we...
The experimental evolution of microorganisms exposed to extreme conditions can provide insight into ...
Sensing and responding to changes in NaCl concentration in hypersaline environments is vital for cel...
Molecular studies of salt tolerance of eukaryotic microorganisms have until recently been limited to...
Abstract Background Fluctuations in external salinity force eukaryotic cells to respond by changes i...
The basidiomycetous fungus Wallemia ichthyophaga grows between 1.7 and 5.1 M NaCl and is the most ha...
The mitogen-activated protein kinase (MAPK) Hog1p plays an essential role in the yeast hyperosmotic ...
AbstractHalophilic adaptations have been studied almost exclusively on prokaryotic microorganisms. D...
Salt stress induces multiple physiological responses in unicellular organisms. Responses include bot...
AbstractWe deleted the PBS2 gene encoding the MAP kinase activator of the osmosignaling HOG pathway ...
As of 2007, over 30 million hectares are affected by salinization resulting in poor crop yield and a...
THE ROLE OF HOG MAPK SIGNALING PATHWAY DURING OSMOTIC STRESS IN SACCHAROMYCES CEREVISIAE Budding yea...
ABSTRACT The high-osmolarity glycerol (HOG) response pathway is a multifunctional signal transductio...
<div><p><i>Hortaea werneckii</i>, ascomycetous yeast from the order Capnodiales, shows an exceptiona...
The high-osmolarity glycerol (HOG) mitogen-activated protein (MAP) kinase pathway mediates adaptatio...
The HOG/p38 MAP kinase route is an important stress-activated signal transduction pathway that is we...
The experimental evolution of microorganisms exposed to extreme conditions can provide insight into ...
Sensing and responding to changes in NaCl concentration in hypersaline environments is vital for cel...
Molecular studies of salt tolerance of eukaryotic microorganisms have until recently been limited to...
Abstract Background Fluctuations in external salinity force eukaryotic cells to respond by changes i...
The basidiomycetous fungus Wallemia ichthyophaga grows between 1.7 and 5.1 M NaCl and is the most ha...
The mitogen-activated protein kinase (MAPK) Hog1p plays an essential role in the yeast hyperosmotic ...
AbstractHalophilic adaptations have been studied almost exclusively on prokaryotic microorganisms. D...
Salt stress induces multiple physiological responses in unicellular organisms. Responses include bot...
AbstractWe deleted the PBS2 gene encoding the MAP kinase activator of the osmosignaling HOG pathway ...
As of 2007, over 30 million hectares are affected by salinization resulting in poor crop yield and a...
THE ROLE OF HOG MAPK SIGNALING PATHWAY DURING OSMOTIC STRESS IN SACCHAROMYCES CEREVISIAE Budding yea...
ABSTRACT The high-osmolarity glycerol (HOG) response pathway is a multifunctional signal transductio...
<div><p><i>Hortaea werneckii</i>, ascomycetous yeast from the order Capnodiales, shows an exceptiona...
The high-osmolarity glycerol (HOG) mitogen-activated protein (MAP) kinase pathway mediates adaptatio...
The HOG/p38 MAP kinase route is an important stress-activated signal transduction pathway that is we...
The experimental evolution of microorganisms exposed to extreme conditions can provide insight into ...