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Pachmayr, I.

Publications and source records attributed to Pachmayr, I..

2 recordsLinked to original sources

Mitochondrial proteostatic stress disrupts mitoribosome biogenesis and translation

Protein aggregation in various cellular compartments is a hallmark of proteostasis impairment linked to aging and numerous pathologies. Mitochondrial function depends on a balanced interplay of proteins imported from the cytosol as well as those synthesized on mitochondrial ribosomes (mitoribosomes). Here, we reveal an unexpected susceptibility of mitoribosome biogenesis to organellar proteostatic stress. Importing aggregation-prone proteins into yeast and human mitochondria triggered a chain of detrimental events involving extensive co-aggregation of newly-imported mitoribosome subunits and other RNA-binding proteins, as well as local disruption of mitochondrial cristae morphology. As a result, mitoribosome assembly and mitochondrial translation were severely impaired, leading to respiratory deficiency and, ultimately, loss of mitochondrial DNA. Surprisingly, dysfunction of mitochondrial HSP60 phenocopied the ribosome biogenesis defect and inhibition of translation, indicating a pronounced chaperone dependence of mitoribosome proteins. Declining mitochondrial translation likely contributes to aging and diseases associated with deficiencies in mitochondrial protein quality control machinery.

cell biology↗

Angstrom-resolution imaging of cell-surface glycans

Glycobiology is rooted in the study of monosaccharides, [A]ngstrom-sized molecules that are the building blocks of intricate glycosylation patterns. Glycosylated biomolecules form the glycocalyx, a dense coat encasing every human cell with central relevance - among others - in immunology, oncology, and virology. In order to understand glycosylation function, visualizing its molecular structure is fundamental. However, the ability to visualize the molecular architecture of the glycocalyx has remained elusive. Techniques like mass spectrometry, electron microscopy, and fluorescence microscopy lack the necessary cellular context, specificity, and resolution. Here, we address these limitations by combining metabolic labeling with [A]ngstrom-resolution fluorescence microscopy, enabling the first-ever visualization of individual sugars within glycans on the cell surface. Our work provides unprecedented insights into the molecular architecture of the glycocalyx and constitutes the foundation for future explorations of its function in health and disease.

biophysics↗