TY - JOUR
T1 - Activity-Based Protein Profiling of Retaining α-Amylases in Complex Biological Samples
AU - Chen, Yurong
AU - Armstrong, Zachary
AU - Artola, Marta
AU - Florea, Bogdan I.
AU - Kuo, Chi-Lin
AU - de Boer, Casper
AU - Rasmussen, Mikkel S.
AU - Abou Hachem, Maher
AU - van der Marel, Gijsbert A.
AU - Codée, Jeroen D. C.
AU - Aerts, Johannes M. F. G.
AU - Davies, Gideon J.
AU - Overkleeft, Herman S.
N1 - Funding Information:
We thank the China Scholarship Council (CSC, Ph.D. Grant to Y.C.), the Royal Society (Ken Murray Research Professorship to G.J.D.), and the Biotechnology and Biological Sciences Research Council (BBSRC) (Grant BB/R001162/1 to G.J.D. and Z.A.). We also thank the Novo Nordisk Foundation Post-doc grant within the Biotechnology-Based Synthesis and Production Research program (Grant NNF17OC0025642). We thank the Diamond Light Source for access to beamlines i04 and i03 (Proposal Numbers mx-18598-21 and mx-18598-25) that contributed to the results presented here and Johan Turkenburg and Sam Hart for coordinating data collection.
Publisher Copyright:
© 2021 The Authors. Published by American Chemical Society.
PY - 2021/2/10
Y1 - 2021/2/10
N2 - Amylases are key enzymes in the processing of starch in many kingdoms of life. They are important catalysts in industrial biotechnology where they are applied in, among others, food processing and the production of detergents. In man amylases are the first enzymes in the digestion of starch to glucose and arguably also the preferred target in therapeutic strategies aimed at the treatment of type 2 diabetes patients through down-tuning glucose assimilation. Efficient and sensitive assays that report selectively on retaining amylase activities irrespective of the nature and complexity of the biomaterial studied are of great value both in finding new and effective human amylase inhibitors and in the discovery of new microbial amylases with potentially advantageous features for biotechnological application. Activity-based protein profiling (ABPP) of retaining glycosidases is inherently suited for the development of such an assay format. We here report on the design and synthesis of 1,6-epi-cyclophellitol-based pseudodisaccharides equipped with a suite of reporter entities and their use in ABPP of retaining amylases from human saliva, murine tissue as well as secretomes from fungi grown on starch. The activity and efficiency of the inhibitors and probes are substantiated by extensive biochemical analysis, and the selectivity for amylases over related retaining endoglycosidases is validated by structural studies.
AB - Amylases are key enzymes in the processing of starch in many kingdoms of life. They are important catalysts in industrial biotechnology where they are applied in, among others, food processing and the production of detergents. In man amylases are the first enzymes in the digestion of starch to glucose and arguably also the preferred target in therapeutic strategies aimed at the treatment of type 2 diabetes patients through down-tuning glucose assimilation. Efficient and sensitive assays that report selectively on retaining amylase activities irrespective of the nature and complexity of the biomaterial studied are of great value both in finding new and effective human amylase inhibitors and in the discovery of new microbial amylases with potentially advantageous features for biotechnological application. Activity-based protein profiling (ABPP) of retaining glycosidases is inherently suited for the development of such an assay format. We here report on the design and synthesis of 1,6-epi-cyclophellitol-based pseudodisaccharides equipped with a suite of reporter entities and their use in ABPP of retaining amylases from human saliva, murine tissue as well as secretomes from fungi grown on starch. The activity and efficiency of the inhibitors and probes are substantiated by extensive biochemical analysis, and the selectivity for amylases over related retaining endoglycosidases is validated by structural studies.
UR - https://www.scopus.com/pages/publications/85100696250
U2 - 10.1021/jacs.0c13059
DO - 10.1021/jacs.0c13059
M3 - Article
C2 - 33497208
SN - 0002-7863
VL - 143
SP - 2423
EP - 2432
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 5
ER -