In Quest for Improved Drugs against Diabetes: The Added Value of X-ray Powder Diffraction Methods
Abstract
:1. Introduction
2. Overview of Insulin Crystalline Structures
2.1. First Human Insulin XRPD Studies
2.2. Characterization of Distinct Insulin Formulations Via XRPD
2.3. Cocrystallization of HI with Phenolic Derivatives and pH Dependence
2.4. Cocrystallization of HI with a Non-Phenolic Derivative and pH Dependence
2.5. Ligand-Free Crystalline HI Studies and pH Dependence
3. Discussion
Acknowledgments
Author Contributions
Conflicts of Interest
References
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A | B | C | D | E | F | G | H | I | J | K | Χ | |
---|---|---|---|---|---|---|---|---|---|---|---|---|
Space group | P21 | C2221 | I213 | R3 | R3 | R3 | R3 | R3 | P43212 | P43212 | P43212 | C2 |
Insulin (mg·mL−1) | 5.2 | 3.5 | 10 | 14 | 3.8 | 3.8 | 3.8 | 1.5 | 3.8 | 3.8 | 1.5 | 3.5 |
Zn/hexamer | 2.3 | 2.3 | 2.5 | 4 | 2.2 | 2.2 | 2.2 | 3 | 3 | 3 | 2.3 | |
Phenol derivative (mM) † | 20 1 | 25 1 | 19 3/19 4 | 65 2 | 65 2 | 65 2 | 7 3/14 4 | 7 3/14 3 | 7 3/14 3 | 25 1 | ||
NaCl (M) | 1.0 | 1.0 | 0.02 | 0.3 | 0.12 | 0.12 | 0.12 | 1.0 | ||||
Na acetate (M) | 0.01 | 0.01 | 0.01 | 0.01 | ||||||||
Na citrate (M) | 0.11 | |||||||||||
Na2HPO4 (M) | 0.48 | 0.05 | 0.04 | 0.013 | 0.013 | 0.013 | 0.05 | |||||
Urea (M) | 1.1 | 1.1 | ||||||||||
Tris (M) | 0.14 | |||||||||||
Protamine | Added in isophane ratio ‡ | |||||||||||
pH | 7.3 | 6.7 | 7.2 | 8.15 | 5.5 | 7.4 | 7.4 | 7.4 | 7.3 | 7.3 | 7.3 | 7.0 |
Unit Cell | |||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Crystal | λ (Å) †/Beamline | Trade Name | Crystal System | Space Group | Sequence Origin ‡ | B-Chain Configuration | a (Å) | b (Å) | c (Å) | β (°) | PDB Ref.§ |
A | 0.97/911-3 | Monoclinic | P21 | H | R6 | 61.3 | 61.7 | 47.5 | 111.3 | 1EV6 [28] | |
B | 1.00/911-2 | Orthorhombic. | C2221 | H | R6 | 58.9 | 219.4 | 223.7 | In-house database | ||
C | 1.00/911-2 | Cubic | I213 | H | T | 78.9 | 78.9 | 78.9 | 1APH [28] | ||
D | 0.97/911-3 | Detemir | Rhombohedral | R3 | H | R6 | 78.9 | 78.9 | 39.5 | 1EV3 [28] | |
E | 0.97/911-3 | Rhombohedral | R3 | H | T3R3f | 80.6 | 80.6 | 37.8 | 1TRZ [19] | ||
F | 0.969/711 | Ultralente | Rhombohedral | R3 | H | T6 | 81.3 | 81.3 | 33.7 | 1MSO [65] | |
G | 0.969/711 | Ultratard | Rhombohedral | R3 | H | T6 | 82.5 | 82.5 | 34.0 | 4INS [18] | |
H | 0.969/711 | Lente | B, P | ||||||||
I | 0.969/711 | Penmix30 | Tetragonal | P43212 | H | R6 | 62.9 | 62.9 | 85.9 | In-house database | |
J | 1.00/911-2 | Novomix30 | Tetragonal | P43212 | H B28Asp | R6 | 62.8 | 62.8 | 86.9 | In-house database | |
K | 0.969/711 | Protaphan | Tetragonal | P43212 | P | R6 | 62.9 | 62.9 | 85.9 | 7INS [61] | |
X | 0.97/911-2 | Monoclinic | C2 | H | Unknown | 100 | 60 | 62 | 116 |
Phenol Derivative | pH Range | Space Group | Indicative Sample’s pH | a (Å) | b (Å) | c (Å) | β (°) | Resolution Range (Å) |
---|---|---|---|---|---|---|---|---|
phenol | ||||||||
5.47–5.70 | P21(α) | 5.70 | 114.682 (6) | 337.63 (2) | 49.270 (4) | 101.555 (6) | 112.2–7.5 | |
5.93–6.54 | C2221 | 6.14 | 60.287 (1) | 221.797 (6) | 228.812 (5) | 90 | 115–7.5 | |
6.70–6.75 | C2 | 6.75 | 103.0115 (5) | 61.3213 (2) | 63.5783 (4) | 117.2244 (5) | 45.9–5.3 | |
7.01–8.25 | P21(β) | 7.46 | 61.0920 (4) | 61.8279 (4) | 47.9302 (4) | 110.6253 (7) | 45–4.4 | |
resorcinol | ||||||||
5.29–5.46 | P21(α) | 5.29 | 114.0228 (8) | 335.430 (3) | 49.211 (6) | 101.531 (8) | 112.2–7.5 | |
5.93–7.45 | C2221 | 6.40 | 60.5579 (7) | 220.907 (3) | 228.320 (3) | 90 | 115–7.5 | |
7.53–8.22 | P21(β) | 8.22 | 61.0008 (4) | 62.0040 (3) | 47.8823 (3) | 110.0465 (5) | 45–4.4 | |
m-cresol | ||||||||
4.50–6.70 | P21(γ) | 87.0749 (7) | 70.1190 (5) | 48.1679 (5) | 106.7442 (8) | 46.5–6.8 | ||
6.70–8.60 | R3 (R6) | 8.15 | 80.0644 (6) | 80.0644 (6) | 40.8396 (3) | 90 | 40.5–3.7 | |
4-nitrophenol | ||||||||
5.1–6.3 | P21(γ) | 5.97 | 87.118 (1) | 70.9493 (9) | 48.4967 (9) | 106.653 (1) | 46.5–6.8 | |
6.2–8.1 | R3 (T3R3f) | 6.41 | 80.721 (1) | 80.721 (1) | 37.8039 (5) | 90 | 40.5–3.6 | |
4-ethylresorcinol | ||||||||
4.95–5.60 | P21(γ) | 5.14 | 87.132 (3) | 70.294 (2) | 48.064 (2) | 106.259 (3) | 47–6.5 | |
5.65–5.80 | P21(α) | 5.80 | 114.130 (7) | 336.086 (3) | 48.987 (5) | 101.935 (8) | 112–12 | |
5.93–6.25 | C2 | 5.97 | 103.0848 (4) | 61.6636 (2) | 63.5006 (4) | 117.417 (5) | 46–7 | |
6.73–8.05 | P21(β) | 6.73 | 62.8231 (7) | 62.1078 (5) | 47.8362 (6) | 111.6913 (9) | 45–6 |
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Karavassili, F.; Valmas, A.; Fili, S.; Georgiou, C.D.; Margiolaki, I. In Quest for Improved Drugs against Diabetes: The Added Value of X-ray Powder Diffraction Methods. Biomolecules 2017, 7, 63. https://doi.org/10.3390/biom7030063
Karavassili F, Valmas A, Fili S, Georgiou CD, Margiolaki I. In Quest for Improved Drugs against Diabetes: The Added Value of X-ray Powder Diffraction Methods. Biomolecules. 2017; 7(3):63. https://doi.org/10.3390/biom7030063
Chicago/Turabian StyleKaravassili, Fotini, Alexandros Valmas, Stavroula Fili, Christos D. Georgiou, and Irene Margiolaki. 2017. "In Quest for Improved Drugs against Diabetes: The Added Value of X-ray Powder Diffraction Methods" Biomolecules 7, no. 3: 63. https://doi.org/10.3390/biom7030063
APA StyleKaravassili, F., Valmas, A., Fili, S., Georgiou, C. D., & Margiolaki, I. (2017). In Quest for Improved Drugs against Diabetes: The Added Value of X-ray Powder Diffraction Methods. Biomolecules, 7(3), 63. https://doi.org/10.3390/biom7030063