Javascript must be enabled to continue!
Cosolutes modulate Polyubiquitin Fibrillation
View through CrossRef
Ubiquitin, a 76-residue polypeptide, functions as a post-translational modifier and forms polyubiquitin (polyUb) chains on substrate proteins to activate diverse cellular functions. Ubiquitin is often found in the lesions associated with neurodegenerative disorders like Alzheimer's and Huntington's disease. It was recently observed that polyubiquitin chains, under in vitro conditions, often form β-sheet-rich fibrillar amyloid aggregates. However, the exact mechanism of conversion from monomer polyUb to amyloid-like fibrils is poorly understood. We report that polyubiquitin forms higher-order oligomeric fibrils under in vitro conditions. Temperature, pH, and ionic strength modulate polyubiquitin (polyUb) fibrillation. Co-solutes such as ionic liquids and macromolecular crowding agents also enhance the aggregation rate. These findings uncover that temperature/cosolutes lower the energy barrier to populate a partially unfolded form (M*), which drives amyloid-like fibril formation. Other factors increase the effective protein concentration of these partially unfolded forms, accelerating aggregation. These insights provide the fundamental basis for ubiquitin chain aggregation, which is necessary to guide the development of therapies and diagnostics.
Title: Cosolutes modulate Polyubiquitin Fibrillation
Description:
Ubiquitin, a 76-residue polypeptide, functions as a post-translational modifier and forms polyubiquitin (polyUb) chains on substrate proteins to activate diverse cellular functions.
Ubiquitin is often found in the lesions associated with neurodegenerative disorders like Alzheimer's and Huntington's disease.
It was recently observed that polyubiquitin chains, under in vitro conditions, often form β-sheet-rich fibrillar amyloid aggregates.
However, the exact mechanism of conversion from monomer polyUb to amyloid-like fibrils is poorly understood.
We report that polyubiquitin forms higher-order oligomeric fibrils under in vitro conditions.
Temperature, pH, and ionic strength modulate polyubiquitin (polyUb) fibrillation.
Co-solutes such as ionic liquids and macromolecular crowding agents also enhance the aggregation rate.
These findings uncover that temperature/cosolutes lower the energy barrier to populate a partially unfolded form (M*), which drives amyloid-like fibril formation.
Other factors increase the effective protein concentration of these partially unfolded forms, accelerating aggregation.
These insights provide the fundamental basis for ubiquitin chain aggregation, which is necessary to guide the development of therapies and diagnostics.
Related Results
Cosolutes modulate Polyubiquitin Fibrillation
Cosolutes modulate Polyubiquitin Fibrillation
Ubiquitin, a 76-residue polypeptide, functions as a post-translational modifier and forms polyubiquitin (polyUb) chains on substrate proteins to activate diverse cellular functions...
Induced Termination of Fibrillation
Induced Termination of Fibrillation
Induced Termination of Fibrillation. A previous communication in the Creative Musings section of this Journal summarized additions to the wavelet hypothesis related to the initiati...
Adiponectin and Lone atrial fibrillation
Adiponectin and Lone atrial fibrillation
Objective: Lone atrial fibrillation is an idiopathic arrhythmia seen in younger individuals without any secondary disease. Adiponectin is an endogenous adipocytokine that increases...
Beyond Coronary Risk: Clinical Scores as Predictors of Atrial Fibrillation in Chronic Coronary Syndrome
Beyond Coronary Risk: Clinical Scores as Predictors of Atrial Fibrillation in Chronic Coronary Syndrome
Atrial fibrillation frequently coexists with chronic coronary syndrome, sharing common cardiovascular risk factors and pathophysiological mechanisms. Identifying patients with chro...
Correlation Between the Ventricular Electrogram Amplitude in Sinus Rhythm and in Ventricular Fibrillation
Correlation Between the Ventricular Electrogram Amplitude in Sinus Rhythm and in Ventricular Fibrillation
During testing of implantable defibrillators, ability to sense ventricular fibrillation is assessed by observing electrograms and the emitted ECG interpretation channel during indu...
ASSA13-03-9 Decreased Expression of Small-Conductance Ca2+-Activated K+ Channels SK1, SK2, and SK3 in Patients with Persistent Atrial Fibrillation
ASSA13-03-9 Decreased Expression of Small-Conductance Ca2+-Activated K+ Channels SK1, SK2, and SK3 in Patients with Persistent Atrial Fibrillation
Background
Small-conductance Ca2+-activated K+ channels (SK channels) have been reported involved in atrial fibrillation (AF) as a new ion channel candidates, as ...
Genetic markers and traditional risk factors in predicting atrial fibrillation in patients with arterial hypertension, focus on the renin-angiotensin-aldosterone system genes
Genetic markers and traditional risk factors in predicting atrial fibrillation in patients with arterial hypertension, focus on the renin-angiotensin-aldosterone system genes
BACKGROUND: Genetic and environmental factors are involved in the development of atrial fibrillation in arterial hypertension. This determines the relevance of studying gene-enviro...
Diagnostic accuracy of an oscillometric blood pressure monitor for atrial fibrillation screening
Diagnostic accuracy of an oscillometric blood pressure monitor for atrial fibrillation screening
Objective
Atrial fibrillation is the most common arrhythmia of clinical significance and hypertension is one of its major risk factors. This study aimed to evaluate the...

