AbstractIn budding yeast Saccharomyces cerevisiae, the peroxisomal protein Inp2 is required for inheritance of peroxisomes to the bud, by connecting the organelles to the motor protein Myo2 and the actin cytoskeleton. Recent data suggested that the function of Inp2 may not be conserved in other yeast species. Using in silico analyses we have identified a weakly conserved Inp2-related protein in 18 species of budding yeast and analyzed the role of the identified protein in the methylotrophic yeast Hansenula polymorpha in peroxisome inheritance. Our data show that H. polymorpha Inp2 locates to peroxisomes, interacts with Myo2, and is essential for peroxisome inheritance
We have cloned and characterized the Hansenula polymorpha PEX11 gene. Our morphological data are con...
In the course of our studies on the molecular mechanisms involved in peroxisome biogenesis, we have ...
PER genes are essential for the biogenesis of peroxisomes in the yeast Hansenula polymorpha. Here we...
AbstractIn budding yeast Saccharomyces cerevisiae, the peroxisomal protein Inp2 is required for inhe...
In budding yeast Saccharomyces cerevisiae, the peroxisomal protein Inp2 is required for inheritance ...
Peroxisomes are characteristic organelles of eukaryotic cells. These organelles may perform various ...
Retention of peroxisomes in yeast mother cells requires Inp1, which is recruited to the organelle by...
AbstractEukaryotic cells have evolved molecular mechanisms to ensure the faithful partitioning of ce...
There is an ongoing debate on how peroxisomes form: by growth and fission of pre-existing peroxisome...
SummaryThe faithful inheritance of organelles by daughter cells is essential to maintain the benefit...
Peroxisome development is a dynamic process that is not yet completely understood. We use the methyl...
Here we used fluorescence microscopy and a peroxisome-targeted tandem fluorescent protein timer to d...
During budding of yeast cells peroxisomes are distributed over mother cell and bud, a process that i...
AbstractPER genes are essential for the biogenesis of peroxisomes in the yeast Hansenula polymorpha....
The peroxin Pex19p is important for the formation of functional peroxisomal membranes. Here we show ...
We have cloned and characterized the Hansenula polymorpha PEX11 gene. Our morphological data are con...
In the course of our studies on the molecular mechanisms involved in peroxisome biogenesis, we have ...
PER genes are essential for the biogenesis of peroxisomes in the yeast Hansenula polymorpha. Here we...
AbstractIn budding yeast Saccharomyces cerevisiae, the peroxisomal protein Inp2 is required for inhe...
In budding yeast Saccharomyces cerevisiae, the peroxisomal protein Inp2 is required for inheritance ...
Peroxisomes are characteristic organelles of eukaryotic cells. These organelles may perform various ...
Retention of peroxisomes in yeast mother cells requires Inp1, which is recruited to the organelle by...
AbstractEukaryotic cells have evolved molecular mechanisms to ensure the faithful partitioning of ce...
There is an ongoing debate on how peroxisomes form: by growth and fission of pre-existing peroxisome...
SummaryThe faithful inheritance of organelles by daughter cells is essential to maintain the benefit...
Peroxisome development is a dynamic process that is not yet completely understood. We use the methyl...
Here we used fluorescence microscopy and a peroxisome-targeted tandem fluorescent protein timer to d...
During budding of yeast cells peroxisomes are distributed over mother cell and bud, a process that i...
AbstractPER genes are essential for the biogenesis of peroxisomes in the yeast Hansenula polymorpha....
The peroxin Pex19p is important for the formation of functional peroxisomal membranes. Here we show ...
We have cloned and characterized the Hansenula polymorpha PEX11 gene. Our morphological data are con...
In the course of our studies on the molecular mechanisms involved in peroxisome biogenesis, we have ...
PER genes are essential for the biogenesis of peroxisomes in the yeast Hansenula polymorpha. Here we...