TY - JOUR
T1 - Structural Insights into the Polymorphism of Self-Assembled Amylin Oligomers
AU - Wineman-Fisher, Vered
AU - Miller, Yifat
N1 - Funding Information:
We thank Rob Tycko for providing the atomic coordinates of the model obtained in his laboratory. This project is supported by the Israel Science Foundation (grant No. 532/15) and by the FP7-PEOPLE-2011-CIG, research grant no. 303741. All simulations were performed using the high-performance computational facilities of the Miller lab in the BGU HPC computational center. The support of the BGU HPC computational center staff is greatly appreciated.
Publisher Copyright:
© 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2016/8/1
Y1 - 2016/8/1
N2 - Type 2 diabetes (T2D) affects over 300 million people worldwide. The main component, found in the pancreas of 95 % of T2D patients, is amylin oligomers and fibrils. So far, four different molecular structures of the self-assembled amylin oligomers have been observed experimentally: two ssNMR models and two crystal models. This review illustrates that there are further self-assembled amylin oligomers that differ in the orientations of the side chains along the β-arch and are all derived from the two ssNMR models. This review focuses on polymorphism of the self-assembled amylin oligomers. It also provides the various pathway mechanisms which lead to various amylin oligomers. Finally, it illustrates that interactions of amylin oligomers with further amyloids, such as Aβ oligomers, increase the polymorphism by forming polymorphic states of amylin-Aβ oligomers with various pathway mechanisms. The polymorphism of amylin oligomers and the polymorphism of the cross-seeding amylin-Aβ oligomers phenomena could contribute to explaining, at least in part, the still unknown origins of the pathological conditions, and may assist in preventing aggregation in amyloidogenic diseases with drug design and other therapeutic approaches.
AB - Type 2 diabetes (T2D) affects over 300 million people worldwide. The main component, found in the pancreas of 95 % of T2D patients, is amylin oligomers and fibrils. So far, four different molecular structures of the self-assembled amylin oligomers have been observed experimentally: two ssNMR models and two crystal models. This review illustrates that there are further self-assembled amylin oligomers that differ in the orientations of the side chains along the β-arch and are all derived from the two ssNMR models. This review focuses on polymorphism of the self-assembled amylin oligomers. It also provides the various pathway mechanisms which lead to various amylin oligomers. Finally, it illustrates that interactions of amylin oligomers with further amyloids, such as Aβ oligomers, increase the polymorphism by forming polymorphic states of amylin-Aβ oligomers with various pathway mechanisms. The polymorphism of amylin oligomers and the polymorphism of the cross-seeding amylin-Aβ oligomers phenomena could contribute to explaining, at least in part, the still unknown origins of the pathological conditions, and may assist in preventing aggregation in amyloidogenic diseases with drug design and other therapeutic approaches.
KW - Amyloid
KW - peptides
KW - polymorphism
KW - self-assembly
KW - type 2 diabetes
UR - http://www.scopus.com/inward/record.url?scp=84960456107&partnerID=8YFLogxK
U2 - 10.1002/ijch.201500091
DO - 10.1002/ijch.201500091
M3 - Review article
AN - SCOPUS:84960456107
SN - 0021-2148
VL - 56
SP - 590
EP - 598
JO - Israel Journal of Chemistry
JF - Israel Journal of Chemistry
IS - 8
ER -