| Literature DB >> 23122334 |
Adrian Riviş1, Nicoleta G Hădărugă, Zeno Gârban, Daniel I Hădărugă.
Abstract
BACKGROUND: Recently, various metallocenes were synthesized and analyzed by biological activity point of view (such as antiproliferative properties): ruthenocenes, cobaltoceniums, titanocenes, zirconocenes, vanadocenes, niobocenes, molibdocenes etc. Two main disadvantages of metallocenes are the poor hydrosolubility and the hydrolytic instability. These problems could be resolved in two ways: synthetically modifying the structure or finding new formulations with enhanced properties. The aqueous solubility of metallocenes with cytostatic activities could be enhanced by molecular encapsulation in cyclodextrins, as well as the hydrolytic instability of these compounds could be reduced.Entities:
Year: 2012 PMID: 23122334 PMCID: PMC3537657 DOI: 10.1186/1752-153X-6-129
Source DB: PubMed Journal: Chem Cent J ISSN: 1752-153X Impact factor: 4.215
Titanocene structures (see Scheme 1) and cytotoxic activities
| 1 | 01TC | M: Si; X: CH3; Y: CH=CH2; R: all H; R’: all CH3 | 4.10 | 4.20 | 3.87 |
| 2 | 02TC | M: Si; X: CH3; Y: H; R: all CH3; R’: all CH3 | 3.96 | 4.23 | 3.93 |
| 3 | 03TC | M: Si; X: CH3; Y: (CH2)2Si(CH3)2(CH=CH2); R: all H; R’: all CH3 | 3.72 | 3.81 | 3.70 |
| 4 | 08TC | M: Si; X: CH3; Y: CH3; R: all H; R’: all CH3 | 3.87 | 4.18 | 4.02 |
| 5 | 09TC | M: Ge; X: CH3; Y: CH3; R: all H; R’: all CH3 | 3.81 | 4.14 | 3.97 |
| 6 | 10TC | M: Si; X: CH3; Y: H; R: all CH3; R’: all CH3 | 3.96 | 4.23 | 3.94 |
| 7 | 11TC | M: Si; X: CH3; Y: CH3; R: 3-CH3, 2,4,5-H; R’: all CH3 | 3.93 | 4.06 | 4.00 |
| 8 | 18TC | M: Si; X: CH3; Y: (CH2)2Si(CH=CH2)3; R: all H; R’: all CH3 | 3.70 | 3.70 | |
| 9 | 23TC | M,X,Y: none; R: 3-CH2(3-pyridinium); R’: all H | 3.94 | | |
| 10 | 24TC | M,X,Y: none; R: 3-CH2(3-pyridinium); R’: 3-CH2(3-pyridinium) | 4.25 | | |
| 11 | 26TC | M,X,Y: none; R: 3-CH2(4-pyridinium); R: 3-CH2(4-pyridinium); | 4.97 |
(a) cytotoxic activity was expressed as the logarithm of the inverse inhibitory concentration 50%, pIC = log(1/IC); pA, pA, pA were used for in vitro cytotoxic activity against HeLa, K562, and Fem-x cell lines, respectively.
Scheme 1General structure of titanocene compounds.
Figure 1Superimposed minimum energy conformations of titanocene structures (OX, OY, and OZ view).
Values of the structural descriptorsfor minimum energy conformations of titanocenes
| ( | ( | ( | ( | ( | |||
|---|---|---|---|---|---|---|---|
| 1 | 01TC | 340 | 317 | 1.68 | 0.86 | 77.7 | 33.4 |
| 2 | 02TC | 359 | 351 | 3.57 | 0.80 | 87.7 | 37.3 |
| 3 | 03TC | 446 | 414 | 3.10 | 0.36 | 98.5 | 43.1 |
| 4 | 08TC | 327 | 302 | 2.97 | 0.73 | 74.0 | 31.8 |
| 5 | 09TC | 310 | 297 | 2.72 | 1.06 | 75.5 | 32.5 |
| 6 | 10TC | 506 | 958 | 3.55 | 0.80 | 87.7 | 37.3 |
| 7 | 11TC | 492 | 897 | 3.32 | 0.81 | 78.6 | 33.6 |
| 8 | 18TC | 470 | 438 | 0.70 | 0.62 | 106.0 | 46.3 |
| 9 | 23TC | 305 | 273 | −3.02 | 0.51 | 74.6 | 30.4 |
| 10 | 24TC | 401 | 361 | −7.32 | 1.63 | 103.0 | 41.7 |
| 11 | 26TC | 401 | 361 | −7.85 | 1.63 | 103.0 | 41.7 |
(a) van der Waals molecular surface (S, Å2), van der Waals molecular volume (V, Å3), hydration energy (E, kcal/mole), logarithm of the octanol/water partition coefficient (logP), refractivity (Rf, Å3), and polarizability (Pol, Å3).
Intercorrelational matrix for titanocene structural descriptors
| 1.00 | 0.54 | −0.40 | 0.52 | 0.49 | ||
| | 1.00 | 0.52 | −0.02 | 0.17 | 0.13 | |
| | | 1.00 | −0.23 | 0.43 | 0.38 | |
| | | | 1.00 | − | − | |
| | | | | 1.00 | ||
| 1.00 |
QSAR results for cytotoxic activity of titanocenes against HeLa, K562, and Fem-x cell lines (experimental activities – and p, predicted activities – p, and the differences between experimental and predicted activities, Δp)
| 1 | 01TC | 79.2±6.9 | 63.7±9.5 | 134.3±18.1 | 4.10 | 4.20 | 3.87 | 3.99 | 4.13 | 3.97 | 4.18 | 0.11 | 0.07 | −0.10 | 0.02 |
| 2 | 02TC | 108.6±8.6 | 59.4±8 | 116.3±8.7 | 3.96 | 4.23 | 3.93 | 3.95 | 4.09 | 3.94 | 4.04 | 0.01 | 0.14 | −0.01 | 0.19 |
| 3 | 03TC | 189±13.1 | 155.2±8.7 | 200 | 3.72 | 3.81 | 3.70 | 3.65 | 3.79 | 3.77 | 3.89 | 0.07 | 0.02 | −0.07 | −0.08 |
| 4 | 08TC | 135±6 | 66±6 | 96±4 | 3.87 | 4.18 | 4.02 | 3.90 | 4.04 | 3.92 | 4.23 | −0.03 | 0.14 | 0.11 | −0.05 |
| 5 | 09TC | 154±4 | 73±1 | 106±5 | 3.81 | 4.14 | 3.97 | 4.13 | 4.27 | 4.04 | 4.21 | −0.32 | −0.13 | −0.07 | −0.07 |
| 6 | 10TC | 109±9 | 59±8 | 116±9 | 3.96 | 4.23 | 3.94 | 3.95 | 4.09 | 3.94 | 4.04 | 0.01 | 0.14 | −0.00 | 0.19 |
| 7 | 11TC | 117±3 | 88±4 | 101±9 | 3.93 | 4.06 | 4.00 | 3.96 | 4.10 | 3.95 | 4.17 | −0.03 | −0.04 | 0.05 | −0.11 |
| 8 | 18TC | 200 | 200 | | 3.70 | 3.70 | | 3.83 | 3.97 | | 3.79 | −0.13 | −0.27 | | −0.09 |
| 9 | 23TC | 114.2±57 | | | 3.94 | | | 3.75 | | | | 0.19 | | | |
| 10 | 24TC | 55.9±16.2 | | | 4.25 | | | 4.53 | | | | −0.28 | | | |
| 11 | 26TC | 10.8±0.6 | 4.97 | 4.53 | 0.45 |
(a) Compounds No 1–3 are selected from reference [16], compounds No 4–8 from [17], and compounds No 9–11 from [22].
(b)A (IC, μM) – the in vitro cytotoxic activity (±SD) of titanocenes selected from references [16,17,22]; pA – the logarithm of the inverse inhibitory concentration 50%, pIC = log(1/IC); pA – the predicted cytotoxic activity (as the logarithm of the predicted inverse inhibitory concentration 50%, pA = pIC = log(1/IC); ΔpA – the difference between experimental and predicted activities (as the logarithm of the inverse inhibitory concentration 50%), ΔpA = pA – pA
Figure 2Titanocene (code 03TC) / α-cyclodextrin supramolecular system (theoretically modeled by MM+).
Energies (resulted from the MM+ molecular modeling and titanocene/cyclodextrin optimization experiments) for cyclodextrins (, α-, β-, and γ-cyclodextrin, codes aCD, bCD, and gCD), titanocenes (, codes xTC, where x = 01–03, 08–11, 18, 23, 24, and 26), the sum of titanocene and cyclodextrin energies, with no interaction (), the energies of the TC-CD complex (), and the TC-CD interaction energies (), determined as the difference between the TC+CD energy, with no interaction, and the energy of the TC-CD complex
| 1 | 01TC_aCD | | 572.70 | 642.05 | 626.0 | 16.08 |
| 2 | 02TC_aCD | | 601.41 | 670.76 | 651.1 | 19.67 |
| 3 | 03TC_aCD | | 567.76 | 637.11 | 619.1 | 17.97 |
| 4 | 08TC_aCD | | 571.92 | 641.27 | 624.8 | 16.43 |
| 5 | 09TC_aCD | | 686.73 | 756.08 | 740.3 | 15.79 |
| 6 | 10TC_aCD | 69.35 | 601.53 | 670.88 | 653.8 | 17.04 |
| 7 | 11TC_aCD | | 575.11 | 644.46 | 631.6 | 12.88 |
| 8 | 18TC_aCD | | 571.08 | 640.43 | 623.4 | 16.98 |
| 9 | 23TC_aCD | | 557.15 | 626.50 | 613.3 | 13.19 |
| 10 | 24TC_aCD | | 566.55 | 635.90 | 624.0 | 11.90 |
| 11 | 26TC_aCD | | 566.44 | 635.79 | 621.5 | 14.28 |
| 12 | 01TC_bCD | | 572.70 | 652.50 | 637.9 | 14.64 |
| 13 | 02TC_bCD | | 601.41 | 681.21 | 660.1 | 21.11 |
| 14 | 03TC_bCD | | 567.76 | 647.56 | 630.8 | 16.73 |
| 15 | 08TC_bCD | | 571.92 | 651.72 | 632.2 | 19.51 |
| 16 | 09TC_bCD | | 686.73 | 766.53 | 746.0 | 20.50 |
| 17 | 10TC_bCD | 79.80 | 601.53 | 681.33 | 660.8 | 20.49 |
| 18 | 11TC_bCD | | 575.11 | 654.91 | 634.9 | 19.97 |
| 19 | 18TC_bCD | | 571.08 | 650.88 | 629.1 | 21.76 |
| 20 | 23TC_bCD | | 557.15 | 636.95 | 617.3 | 19.68 |
| 21 | 24TC_bCD | | 566.55 | 646.35 | 622.0 | 24.32 |
| 22 | 26TC_bCD | | 566.44 | 646.24 | 622.6 | 23.65 |
| 23 | 01TC_gCD | | 572.70 | 663.99 | 640.2 | 23.78 |
| 24 | 02TC_gCD | | 601.41 | 692.70 | 664.3 | 28.36 |
| 25 | 03TC_gCD | | 567.76 | 659.05 | 635.6 | 23.44 |
| 26 | 08TC_gCD | | 571.92 | 663.21 | 637.1 | 26.09 |
| 27 | 09TC_gCD | | 686.73 | 778.02 | 752.4 | 25.61 |
| 28 | 10TC_gCD | 91.29 | 601.53 | 692.82 | 664.2 | 28.59 |
| 29 | 11TC_gCD | | 575.11 | 666.40 | 639.6 | 26.83 |
| 30 | 18TC_gCD | | 571.08 | 662.37 | 640.9 | 21.43 |
| 31 | 23TC_gCD | | 557.15 | 648.44 | 629.3 | 19.10 |
| 32 | 24TC_gCD | | 566.55 | 657.84 | 629.7 | 28.12 |
| 33 | 26TC_gCD | 566.44 | 657.73 | 630.4 | 27.34 |
Figure 3Titanocene (code 23TC) / β-cyclodextrin supramolecular system (theoretically modeled by MM+).
Figure 4Titanocene (code 01TC) / γ-cyclodextrin supramolecular system (theoretically modeled by MM+).
Figure 5Interaction energy .Number of cycles from MM+ titanocene/cyclodextrin geometry optimization experiments for 23TC.