| Literature DB >> 35742970 |
Cheng-Hsin Wu1, Chung-Yin Lin2,3, Tzu-Chieh Lin1, Dar-Fu Tai1.
Abstract
In the present study, molecularly imprinted polymers (MIPs) were used as a tool to grasp a targeted α-helix or β-sheet of protein. During the fabrication of the hinge-mediated MIPs, elegant cavities took shape in a special solvent on quartz crystal microbalance (QCM) chips. The cavities, which were complementary to the protein secondary structure, acted as a peptide conformational imprint (PCI) for adenylate kinase 1 (AK1). We established a promising strategy to examine the binding affinities of human AK1 in conformational dynamics using the peptide-imprinting method. Moreover, when bound to AK1, PCIs are able to gain stability and tend to maintain higher catalytic activities than free AK1. Such designed fixations not only act on hinges as accelerators; some are also inhibitors. One example of PCI inhibition of AK1 catalytic activity takes place when PCI integrates with an AK19-23 β-sheet. In addition, conformation ties, a general MIP method derived from random-coil AK1133-144 in buffer/acetonitrile, are also inhibitors. The inhibition may be due to the need for this peptide to execute conformational transition during catalysis.Entities:
Keywords: adenylate kinase 1; conformation; inhibition; molecularly imprinted polymers; secondary structure
Mesh:
Substances:
Year: 2022 PMID: 35742970 PMCID: PMC9223553 DOI: 10.3390/ijms23126521
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 6.208
Figure 1Adenlyate kinase (AK) enzyme activity. AK enzymes are often used as a metabolic monitor of energy load, leading to the activation or inhibition of downstream enzymes [11]. ATP, adenosine triphosphate; ADP, adenosine diphosphate; AMP, adenosine monophosphate; AMPK, AMP-activated protein kinase; K-ATP, ATP-sensitive potassium channel.
Figure 2The structure of adenylate kinase 1. (a) α-helixes; (b) β-sheets and random coil. Yellow: selected sequence.
Figure 3The fabrication of a peptide conformational imprint for adenylate kinase 1 (AK1). (a) Preparation of the AK169-83 as a template. (b) Fabrication of hinge-mediated molecularly imprinted polymers (MIPs) in a special solvent using cross-linker (N-Acr-L-Cys-NHBn)2 and the template. (c) After template removal, the peptide conformational imprint (PCI) was complementary to the template peptide. (d) PCI loading with AK1. The recognition of an AK1 and its characteristic fragments as acting as an accelerator or an inhibitor is a conformation tie.
The chemical properties of peptides and their affinity toward MIP-QCM.
| QCM Cp a | Template | CD Conformation/ | Kd | Flow |
|---|---|---|---|---|
| AK19-23 CpAB | KIIFVVGGPGSGKGT | RC/AB | 5 | AB |
| AK19-23 CpMB | Sheet/MB | 7 | MB | |
| AK19-23 Cp3T7B | Sheet/3T7B | 10 | MB | |
| AK137-51 CpAB | LSTGDLLRSEVSSGS | RC/AB | 4 | AB |
| AK137-51 CpMB | Helix/MB | 3 | MB | |
| AK137-51 Cp7T3B | Helix/7T3B | 5 | MB | |
| AK169-83 CpAB | LSTGDLLRSEVSSGS | RC/AB | 3 | AB |
| AK169-83 CpMB | Helix/MB | 4 | MB | |
| AK169-83 Cp7T3B | Helix/7T3B | 3 | MB | |
| AK1107-121 Cp2A8B | RRIGQPTLLLYVDAG | RC/2A8B | 3 | AB |
| AK1107-121 Cp7M3B | Sheet/7M3B | 6 | MB | |
| AK1107-121 Cp3T7B | Sheet/3T7B | 2 | MB | |
| AK1107-121 Cp7T3B | Helix/7T3B | 3 | MB | |
| AK1133-144 CpAB | GETSGRVDNEE | RC/AB | <5 | AB |
| AK1141-155 Cp7M3B | DNEETIKKRUETYYK | Helix/7M3B | <5 | MB |
| AK1157-171 Cp3T7B | TEPVIAFYEKRGIVR | Sheet/3T7B | <5 | MB |
| NIP | - | - | - | PBS |
Cp, chip; CD, circular dichroism; NIP, non-imprinted polymer. a AHB/AM/ATA/EBAA = 1:1:2:4. AHB, N-Acr-L-His-NHBn; AM, acrylamide; ATA, N-acryltyramine; EBAA, N,N′-ethylenebisacrylamide. b RC, random coil; buffer: pH 7.2, 20 mM phosphate-buffered saline (PBS) buffer; AB, CH3CN/buffer = 1:1; 2A8B, CH3CN/buffer = 1:4; MB, CH3OH/buffer = 1:1; 3M7B, CH3OH:buffer = 3:7; 7M3B, CH3OH:buffer = 7:3; 3T7B, TFE/buffer = 3:7; 7T3B, TFE/buffer = 7:3.
The effect of integrating a conformation tie into AK1’s catalytic activity.
| QCM Cp | CD | Kd | Conversion a | Activity b |
|---|---|---|---|---|
| AK19-23 CpAB | RC | - | - | - |
| AK19-23 CpMB | Sheet | 9000 | 0.2 | 0.051 |
| AK19-23 Cp3T7B | Sheet | 50 | 0.39 | 0.099 |
| AK137-51 CpAB | RC | 3000 | 41.42 | 10.5 |
| AK137-51 CpMB | Helix | 1000 | 41.58 | 10.5 |
| AK137-51 Cp7T3B | Helix | 70 | 42.36 | 10.7 |
| AK169-83 CpAB | RC | 2000 | 41.82 | 10.6 |
| AK169-83 CpMB | Helix | 400 | 42.49 | 10.7 |
| AK169-83 Cp7T3B | Helix | 40 | 43.35 | 10.9 |
| AK1107-121 Cp2A8B | RC | 200 | 42.21 | 10.7 |
| AK1107-121 Cp7M3B | Sheet | 50 | 42.61 | 10.8 |
| AK1107-121 Cp3T7B | Sheet | 60 | 42.55 | 10.7 |
| AK1107-121 Cp7T3B | Helix | 200 | 42.20 | 10.7 |
| AK1133-144 CpAB | RC | 70 | 0.13 | 0.033 |
| AK1141-155 Cp7M3B | Helix | 50 | 42.85 | 10.8 |
| AK1157-171 Cp3T7B | Sheet | 60 | 42.42 | 10.7 |
| NIP c | - | - | 0.32 | 0.081 |
| Free AK1 d | - | - | 12.01 | 3.03 |
Cp, chip; CD, circular dichroism; NIP, non-imprinted polymer. Assays were performed in the presence of an AK1-integrated QCM Cp (~20 Hz) with 2 mL 20 mM PBS (Na2HPO4 and NaCl), pH 7.4, containing 25 µM AMP, 25 µM ATP, and 5 μM MgCl2 at 37 °C for 90 min. a Conversion (%) as a measure of AK1 activity was determined by the rates of AMP and ATP transphosphorylation. The data were obtained using HPLC. b The mean values of three consecutive measurements using the same chip. c Only one measurement was performed. d AK1 (11 nanograms; purchased from Abcam®, Cambridge, MA, USA).
Figure 4The effect of integrating a conformation tie into AK1’s catalytic activity. Cp, chip; NIP, non-imprinted polymer. Buffer: pH 7.2, 20 mM PBS buffer; AB, CH3CN/buffer = 1:1; MB, CH3OH/buffer = 1:1; 3T7B, TFE/buffer = 3:7; 7T3B, TFE/buffer = 7:3.
Summary of the calculated kinetic parameters of catalytic enzymes.
| QCM Cp | |||||
|---|---|---|---|---|---|
| AK19-23 CpAB | - | - | - | - | - |
| AK19-23 CpMB | 6.55 × 10−11 | 3.36 × 10−11 | 2.57 × 10−5 | 0.007 | 283.55 |
| AK19-23 Cp3T7B | 1.01 × 10−10 | 9.33 × 10−9 | 4.62 × 10−3 | 2.02 | 437.23 |
| AK137-51 CpAB | 1.58 × 10−10 | 2.43 × 10−10 | 7.70 × 10−5 | 0.053 | 683.98 |
| AK137-51 CpMB | 1.60 × 10−10 | 7.39 × 10−10 | 2.31 × 10−4 | 0.16 | 692.64 |
| AK137-51 Cp7T3B | 4.83 × 10−10 | 3.19 × 10−8 | 3.30 × 10−3 | 6.90 | 2090.91 |
| AK169-83 CpAB | 1.08 × 10−10 | 2.49 × 10−10 | 1.16 × 10−4 | 0.054 | 467.53 |
| AK169-83 CpMB | 8.21 × 10−10 | 9.48 × 10−9 | 5.78 × 10−4 | 2.053 | 3554.11 |
| AK169-83 Cp7T3B | 1.22 × 10−9 | 1.41 × 10−7 | 5.77 × 10−3 | 30.50 | 5281.38 |
| AK1107-121 Cp2A8B | 1.20 × 10−10 | 2.77 × 10−9 | 1.12 × 10−3 | 0.60 | 519.48 |
| AK1107-121 Cp7M3B | 5.42 × 10−10 | 5.01 × 10−8 | 4.62 × 10−3 | 10.84 | 2346.32 |
| AK1107-121 Cp3T7B | 3.12 × 10−10 | 2.40 × 10−8 | 3.85 × 10−3 | 5.20 | 1350.65 |
| AK1107-121 Cp7T3B | 1.42 × 10−10 | 3.28 × 10−9 | 1.12 × 10−3 | 0.71 | 614.72 |
| NIP b | 6.52 × 10−11 | - | - | - | - |
| Free AK1 c | 1.29 × 10−11 | - | - | - | - |
Cp, chip; NIP, non-imprinted polymer. a The data were obtained using HPLC. b Only one measurement was performed. c AK1 (11 nanograms; purchased from Abcam®, Cambridge, MA, USA).