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Published on: June 23, 2018
Aggregation kinetics define the temporal window of IAPP proteotoxicity
Annette Plesner1, Ping Cao2, Daniel P Raleigh2,3
1Department of Clinical Immunology, University Hospital-Rigshospitalet, Copenhagen 2200, Denmark.
Summary
Toxic amyloid intermediates, not mature fibrils, cause islet amyloid polypeptide (IAPP) related beta-cell dysfunction in type 2 diabetes. Aggregation kinetics predict the timing and duration of this cellular damage.
Area of Science:
- Biochemistry
- Cell Biology
- Endocrinology
Background:
- Islet amyloid polypeptide (IAPP) aggregation into amyloid is linked to beta-cell dysfunction in type 2 diabetes.
- The exact toxic species and its temporal persistence remain unclear, with competing models involving mature fibrils or transient intermediates.
Purpose of the Study:
- To directly test competing models of IAPP-induced beta-cell toxicity.
- To determine the relationship between IAPP aggregation kinetics and the timing of cellular dysfunction.
Main Methods:
- Combined time-resolved beta-cell functional assays with biophysical measurements of IAPP aggregation.
- Investigated multiple perturbations (concentration, temperature) and sequence variants, including the diabetes-associated S20G variant.
Main Results:
- Maximal beta-cell toxicity occurred during the lag phase of IAPP aggregation and decreased as fibrils formed.
- The duration of beta-cell dysfunction scaled linearly with the lag phase length.
- Altering aggregation kinetics predictably shifted the toxicity window; the S20G variant showed higher peak toxicity in a compressed timeframe.
Conclusions:
- Transient lag-phase intermediates, not mature fibrils or growth phase processes, are the primary drivers of beta-cell dysfunction.
- IAPP aggregation kinetics quantitatively predict the onset, peak, and termination of toxicity, establishing a link between aggregation timing and cellular damage.

