Molecular chaperones are essential to maintain proteostasis. While the functions of intracellular molecular chaperones that oversee protein synthesis, folding and aggregation, are established, those specialized to work in the extracellular environment are less understood. Extracellular proteins reside in a considerably more oxidizing milieu than cytoplasmic proteins and are stabilized by abundant disulfide bonds. Hence, extracellular proteins are potentially destabilized and sensitive to aggregation under reducing conditions. We combine biochemical and mass spectrometry experiments and elucidate that the molecular chaperone functions of the extracellular protein domain Bri2 BRICHOS only appear under reducing conditions, through the assembly...
Protein aggregation is a hallmark of a wide range of human disorders, including Alzheimer’s disease ...
Protein destabilization by mutations or external stresses may lead to misfolding and aggregation in ...
Efficient folding of many newly synthesized proteins depends on assistance from molecular chaperones...
Molecular chaperones are essential to maintain proteostasis. While the functions of intracellular mo...
Stress, molecular crowding and mutations may jeopardize the native folding of proteins. Misfolded an...
Stress, molecular crowding and mutations may jeopardize the native folding of proteins. Misfolded an...
The biological functions of proteins are governed by their three-dimensional fold. Protein folding, ...
Chaperones are the primary regulators of the proteostasis network and are known to facilitate protei...
Alzheimer's disease is an increasingly prevalent neurodegenerative disorder whose pathogenesis has b...
Molecular chaperones play a central role in protein homeostasis (a.k.a. proteostasis) by balancing p...
Molecular chaperones assist de novo protein folding and facilitate the refolding of stress‐denatured...
After the discovery of the need for extensive assistance in protein folding in the case of many nasc...
To optimize the in vivo folding of proteins, we linked protein stability to antibiotic resistance, t...
Proteins are composed of linear chains of amino acids. Upon synthesis in the cell, most proteins mus...
A variety of cellular internal and external stress conditions can be classified as proteotoxic stres...
Protein aggregation is a hallmark of a wide range of human disorders, including Alzheimer’s disease ...
Protein destabilization by mutations or external stresses may lead to misfolding and aggregation in ...
Efficient folding of many newly synthesized proteins depends on assistance from molecular chaperones...
Molecular chaperones are essential to maintain proteostasis. While the functions of intracellular mo...
Stress, molecular crowding and mutations may jeopardize the native folding of proteins. Misfolded an...
Stress, molecular crowding and mutations may jeopardize the native folding of proteins. Misfolded an...
The biological functions of proteins are governed by their three-dimensional fold. Protein folding, ...
Chaperones are the primary regulators of the proteostasis network and are known to facilitate protei...
Alzheimer's disease is an increasingly prevalent neurodegenerative disorder whose pathogenesis has b...
Molecular chaperones play a central role in protein homeostasis (a.k.a. proteostasis) by balancing p...
Molecular chaperones assist de novo protein folding and facilitate the refolding of stress‐denatured...
After the discovery of the need for extensive assistance in protein folding in the case of many nasc...
To optimize the in vivo folding of proteins, we linked protein stability to antibiotic resistance, t...
Proteins are composed of linear chains of amino acids. Upon synthesis in the cell, most proteins mus...
A variety of cellular internal and external stress conditions can be classified as proteotoxic stres...
Protein aggregation is a hallmark of a wide range of human disorders, including Alzheimer’s disease ...
Protein destabilization by mutations or external stresses may lead to misfolding and aggregation in ...
Efficient folding of many newly synthesized proteins depends on assistance from molecular chaperones...