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Journal logoIUCrDATA
ISSN: 2414-3146

1-Benzyl-3′-[(1H-indol-3-yl)carbon­yl]-1′-methyl-2-oxo-4′-(pyridin-3-yl)spiro­[indoline-3,2′-pyrrolidine]-3′-carbo­nitrile

CROSSMARK_Color_square_no_text.svg

aDepartment of Chemistry, Jawahar Science College, Cuddalore, Neyveli 607 803, India, and bPG & Research Department of Chemistry, Government Arts College, Chidambaram, Tamilnadu, India
*Correspondence e-mail: palanivelchem@gmail.com

Edited by H. Stoeckli-Evans, University of Neuchâtel, Switzerland (Received 12 September 2016; accepted 20 October 2016; online 1 November 2016)

In the title compound, C34H27N5O2, the central pyrrolidine ring adopts an envelope conformation, with the N atom as the flap. The mean planes of the two indoline ring systems are inclined to the mean plane of the central pyrrolidine ring by 86.26 (9) and 69.30 (9)°, respectively. The dihedral angle between the benzene and pyridine rings is 75.09 (11)°. In the crystal, mol­ecules are linked by N—H⋯N and C—H⋯N hydrogen bonds, forming sheets parallel to the ab plane.

3D view (loading...)
[Scheme 3D1]
Chemical scheme
[Scheme 1]

Structure description

Spiro-pyrrolidine derivatives are unique tetra­cyclic 5-HT(2A) receptor antagonists (Obniska et al., 2003[Obniska, J., Pawlowski, M., Kolaczkowski, M., Czopek, A., Duszyn'ska, B., Klodzin'ska, A., Tatarczyn'ska, E. & Chojnacka-Wo'jcik, E. (2003). Pol. J. Pharmacol. 55, 553-557.]; Peddi et al., 2004[Peddi, S., Roth, B. L., Glennon, R. A. & Westkaemper, R. B. (2004). Bioorg. Med. Chem. Lett. 14, 2279-2283.]). These derivatives possess anti­cancer (Zapf et al., 2011[Zapf, C. W., Bloom, J. D., Li, Z., Dushin, R. G., Nittoli, T., Otteng, M., Nikitenko, A., Golas, J. M., Liu, H., Lucas, J., Boschelli, F., Vogan, E., Olland, A., Johnson, M. & Levin, J. I. (2011). Bioorg. Med. Chem. Lett. 21, 4602-4607.]) and anti-influenza virus (Stylianakis et al., 2003[Stylianakis, I., Kolocouris, A., Kolocouris, N., Fytas, G., Foscolos, G. B., Padalko, E., Neyts, J. & De Clercq, E. (2003). Bioorg. Med. Chem. Lett. 13, 1699-1703.]) activities. Highly functionalized pyrrolidines have attracted much inter­est in recent years as they constitute the main structural element of many natural and synthetic pharmacologically active compounds (Waldmann, 1995[Waldmann, H. (1995). Synlett, pp. 133-141.]). Optically active pyrrolidines have been used as inter­mediates, chiral ligands or auxiliaries in controlled asymmetric synthesis (Suzuki et al., 1994[Suzuki, H., Aoyagi, S. & Kibayashi, C. (1994). Tetrahedron Lett. 35, 6119-6122.]; Huryn et al., 1991[Huryn, D. M., Trost, B. M. & Fleming, I. (1991). Curr. Org. Synth. 1, 64-74.]). In view of their importance and in continuation of our work on the crystal structure analysis of spiro-pyrrolidine derivatives, we report herein on the synthesis and crystal structure of a new spiro-pyrrolidine derivative.

The mol­ecular structure of the title compound is illustrated in Fig. 1[link]. The five-membered ring (N2/C6–C9) in the pyrrolidine moiety adopts an envelope conformation, with atom N2 as the flap atom [puckering parameters: q2 = 0.410 (2) Å and φ2 = 181.7 (3)°], and the pyridine ring (N1/C1–C5) exhibits a slightly twisted conformation [puckering parameters: q2 = 0.093 (2) Å and Φ2 = 49.9 (2)°]. The sum of angles at atom N2 [328.4 (15)°] is in accordance with sp2-hybiridization, and the sum of angles at atom N3 [313.6 (14)°] is in accordance with sp3-hybridization. The dihedral angle between the benzene (C20–C25) and pyridine (N1/C1–C5) rings is 75.09 (11)°.

[Figure 1]
Figure 1
The mol­ecular structure of the title compound, showing the atom labelling and 20% probability displacement ellipsoids.

In the crystal, mol­ecules are linked by N—H⋯N and C—H⋯N hydrogen bonds, forming sheets parallel to the ab plane (Table 1[link] and Fig. 2[link]).

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
N5—H5⋯N1i 0.86 1.96 2.812 (2) 170
C19—H19A⋯N4ii 0.97 2.46 3.370 (3) 157
Symmetry codes: (i) [-x+1, y+{\script{1\over 2}}, -z+{\script{1\over 2}}]; (ii) [x-{\script{1\over 2}}, y, -z+{\script{1\over 2}}].
[Figure 2]
Figure 2
The crystal packing of the title compound, viewed along the c axis. Hydrogen bonds are shown as dashed lines (see Table 1[link]) and, for clarity, only H atoms H5 and H19A have been included.

Synthesis and crystallization

N-Benzyl­isatin, (1) (0.3 mmol), was mixed with sarcosine, (2) (0.3 mmol), and (E)-2-[(1H-indol-3-yl)carbon­yl]-3-(pyridin-3-yl)acrylo­nitrile in ethanol (10 ml) in a round-bottomed flask. The reaction mixture was heated at 358 K for 3 h. After cooling to ambient temperature, the reaction mixture was filtered to afford the pure title product as a white solid (yield 92%). The filtrate was left to evaporate slowly and after 48 h yellow crystals of the title compound were obtained.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link].

Table 2
Experimental details

Crystal data
Chemical formula C34H27N5O2
Mr 537.60
Crystal system, space group Orthorhombic, Pbca
Temperature (K) 296
a, b, c (Å) 14.7421 (6), 17.5573 (6), 21.4675 (9)
V3) 5556.5 (4)
Z 8
Radiation type Mo Kα
μ (mm−1) 0.08
Crystal size (mm) 0.25 × 0.16 × 0.12
 
Data collection
Diffractometer Bruker APEXII CCD
No. of measured, independent and observed [I > 2σ(I)] reflections 22838, 4884, 3251
Rint 0.031
(sin θ/λ)max−1) 0.595
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.040, 0.095, 0.97
No. of reflections 4884
No. of parameters 372
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.13, −0.17
Computer programs: APEX2 and SAINT (Bruker, 2014[Bruker (2014). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.]), SHELXS97 and SHELXTL (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]), SHELXL2014 (Sheldrick, 2015[Sheldrick, G. M. (2015). Acta Cryst. C71, 3-8.]), Mercury (Macrae et al., 2008[Macrae, C. F., Bruno, I. J., Chisholm, J. A., Edgington, P. R., McCabe, P., Pidcock, E., Rodriguez-Monge, L., Taylor, R., van de Streek, J. & Wood, P. A. (2008). J. Appl. Cryst. 41, 466-470.]) and PLATON (Spek, 2009[Spek, A. L. (2009). Acta Cryst. D65, 148-155.]).

Structural data


Computing details top

Data collection: APEX2 (Bruker, 2014); cell refinement: SAINT (Bruker, 2014); data reduction: SAINT (Bruker, 2014); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL2014 (Sheldrick, 2015); molecular graphics: SHELXTL (Sheldrick, 2008) and Mercury (Macrae et al., 2008); software used to prepare material for publication: SHELXTL (Sheldrick, 2008) and PLATON (Spek, 2009).

1-Benzyl-3'-[(1H-indol-3-yl)carbonyl]-1'-methyl-2-oxo-4'-(pyridin-3-yl)spiro[indoline-3,2'-pyrrolidine]-3'-carbonitrile top
Crystal data top
C34H27N5O2Dx = 1.285 Mg m3
Mr = 537.60Mo Kα radiation, λ = 0.71073 Å
Orthorhombic, PbcaCell parameters from 5384 reflections
a = 14.7421 (6) Åθ = 2.3–24.1°
b = 17.5573 (6) ŵ = 0.08 mm1
c = 21.4675 (9) ÅT = 296 K
V = 5556.5 (4) Å3Rectangular, yellow
Z = 80.25 × 0.16 × 0.12 mm
F(000) = 2256
Data collection top
Bruker APEXII CCD
diffractometer
Rint = 0.031
φ and ω scansθmax = 25.0°, θmin = 1.9°
22838 measured reflectionsh = 1417
4884 independent reflectionsk = 2020
3251 reflections with I > 2σ(I)l = 1825
Refinement top
Refinement on F2Hydrogen site location: inferred from neighbouring sites
Least-squares matrix: fullH-atom parameters constrained
R[F2 > 2σ(F2)] = 0.040 w = 1/[σ2(Fo2) + (0.0237P)2 + 2.8668P]
where P = (Fo2 + 2Fc2)/3
wR(F2) = 0.095(Δ/σ)max < 0.001
S = 0.97Δρmax = 0.13 e Å3
4884 reflectionsΔρmin = 0.17 e Å3
372 parametersExtinction correction: SHELXL2014 (Sheldrick 2015), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
0 restraintsExtinction coefficient: 0.00063 (9)
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.63234 (14)0.06447 (11)0.42023 (9)0.0517 (5)
H10.64040.03770.45720.062*
C20.70167 (15)0.10825 (13)0.39656 (11)0.0627 (6)
H20.75680.11160.41740.075*
C30.68837 (16)0.14676 (12)0.34183 (11)0.0644 (6)
H30.73580.17580.32590.077*
C40.54388 (15)0.10303 (11)0.33427 (10)0.0524 (5)
H40.48890.10240.31310.063*
C50.55064 (13)0.06054 (10)0.38871 (9)0.0438 (5)
C60.47250 (13)0.01328 (10)0.41220 (9)0.0445 (5)
H60.49070.00630.45310.053*
C70.38438 (14)0.05742 (11)0.42225 (10)0.0537 (5)
H7A0.37630.09600.39040.064*
H7B0.38370.08170.46280.064*
C80.33670 (12)0.04828 (10)0.36441 (9)0.0419 (5)
C90.44388 (13)0.05810 (10)0.37192 (8)0.0405 (4)
C100.31830 (13)0.01138 (11)0.29978 (10)0.0458 (5)
C110.24722 (13)0.12705 (11)0.29981 (9)0.0470 (5)
C120.19527 (15)0.18821 (12)0.28185 (11)0.0637 (6)
H120.17320.19260.24140.076*
C130.17724 (17)0.24293 (13)0.32648 (13)0.0788 (8)
H130.14330.28550.31550.095*
C140.20803 (18)0.23604 (13)0.38641 (12)0.0757 (7)
H140.19390.27340.41550.091*
C150.26003 (15)0.17389 (11)0.40409 (10)0.0593 (6)
H150.28040.16890.44490.071*
C160.28089 (13)0.11976 (10)0.35996 (9)0.0455 (5)
C170.22168 (15)0.02969 (13)0.41757 (12)0.0748 (7)
H17A0.17920.01120.41190.112*
H17B0.20970.05470.45650.112*
H17C0.21550.06560.38410.112*
C180.48887 (13)0.05771 (10)0.31095 (10)0.0426 (5)
C190.24710 (15)0.04824 (13)0.19947 (10)0.0622 (6)
H19A0.18140.04890.19690.075*
H19B0.26730.00250.18830.075*
C200.28439 (15)0.10381 (12)0.15286 (9)0.0522 (5)
C210.22805 (17)0.13774 (15)0.10973 (11)0.0762 (7)
H210.16600.12830.11130.091*
C220.2618 (2)0.18511 (17)0.06460 (13)0.0908 (9)
H220.22260.20700.03570.109*
C230.3517 (2)0.20027 (16)0.06171 (13)0.0888 (9)
H230.37430.23210.03080.107*
C240.40917 (18)0.16848 (16)0.10455 (12)0.0805 (8)
H240.47080.17970.10330.097*
C250.37569 (15)0.11979 (13)0.14957 (10)0.0620 (6)
H250.41530.09750.17800.074*
C260.47020 (13)0.13396 (10)0.40690 (9)0.0453 (5)
C270.47548 (13)0.20507 (10)0.37413 (9)0.0455 (5)
C280.44590 (14)0.22198 (11)0.31459 (10)0.0528 (5)
H280.42390.18630.28630.063*
C290.48880 (14)0.33263 (11)0.35534 (10)0.0531 (5)
C300.50841 (16)0.40925 (12)0.36446 (13)0.0700 (7)
H300.49860.44520.33340.084*
C310.54281 (18)0.42924 (13)0.42120 (14)0.0776 (8)
H310.55630.48010.42910.093*
C320.55800 (16)0.37571 (13)0.46725 (12)0.0710 (7)
H320.58130.39140.50540.085*
C330.53938 (14)0.29933 (12)0.45804 (10)0.0565 (6)
H330.55060.26370.48920.068*
C340.50338 (13)0.27721 (10)0.40092 (9)0.0465 (5)
N10.61087 (13)0.14454 (9)0.31048 (8)0.0588 (5)
N20.31418 (11)0.00086 (9)0.41796 (8)0.0509 (4)
N30.27357 (10)0.06328 (9)0.26387 (7)0.0477 (4)
N40.52502 (12)0.05610 (10)0.26381 (8)0.0572 (5)
N50.45319 (12)0.29669 (9)0.30315 (8)0.0587 (5)
H50.43820.31890.26900.070*
O10.34090 (10)0.05210 (7)0.28292 (7)0.0599 (4)
O20.48569 (11)0.12999 (7)0.46262 (7)0.0646 (4)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.0643 (14)0.0493 (12)0.0416 (12)0.0037 (11)0.0093 (11)0.0065 (10)
C20.0557 (14)0.0682 (14)0.0643 (16)0.0042 (12)0.0136 (12)0.0109 (13)
C30.0679 (16)0.0581 (13)0.0671 (16)0.0158 (12)0.0047 (13)0.0013 (13)
C40.0580 (13)0.0468 (11)0.0525 (14)0.0043 (10)0.0129 (11)0.0027 (11)
C50.0566 (13)0.0371 (10)0.0377 (11)0.0020 (9)0.0059 (10)0.0053 (9)
C60.0592 (13)0.0388 (10)0.0354 (11)0.0025 (9)0.0034 (10)0.0058 (9)
C70.0684 (14)0.0415 (11)0.0512 (13)0.0009 (10)0.0045 (11)0.0087 (10)
C80.0483 (11)0.0384 (10)0.0388 (11)0.0013 (8)0.0022 (9)0.0019 (9)
C90.0496 (11)0.0392 (10)0.0326 (11)0.0036 (9)0.0018 (9)0.0026 (9)
C100.0423 (11)0.0433 (11)0.0516 (13)0.0045 (9)0.0008 (10)0.0034 (10)
C110.0439 (11)0.0456 (11)0.0515 (13)0.0002 (9)0.0001 (10)0.0020 (10)
C120.0667 (15)0.0608 (13)0.0638 (15)0.0106 (12)0.0107 (12)0.0001 (12)
C130.0919 (19)0.0590 (14)0.086 (2)0.0292 (14)0.0058 (16)0.0034 (15)
C140.100 (2)0.0584 (14)0.0689 (18)0.0263 (14)0.0033 (15)0.0124 (13)
C150.0755 (15)0.0527 (12)0.0495 (13)0.0070 (11)0.0058 (12)0.0051 (11)
C160.0474 (12)0.0430 (10)0.0460 (12)0.0008 (9)0.0037 (10)0.0013 (10)
C170.0643 (16)0.0686 (15)0.0914 (19)0.0096 (12)0.0192 (14)0.0141 (14)
C180.0445 (11)0.0431 (11)0.0401 (12)0.0027 (9)0.0077 (10)0.0038 (10)
C190.0595 (14)0.0734 (15)0.0535 (14)0.0075 (12)0.0152 (12)0.0114 (12)
C200.0577 (14)0.0597 (12)0.0393 (12)0.0074 (11)0.0110 (11)0.0101 (11)
C210.0650 (16)0.105 (2)0.0589 (16)0.0134 (15)0.0171 (14)0.0009 (16)
C220.099 (2)0.113 (2)0.0605 (18)0.0353 (19)0.0144 (17)0.0123 (17)
C230.112 (3)0.095 (2)0.0593 (18)0.0244 (19)0.0108 (17)0.0166 (15)
C240.0728 (17)0.103 (2)0.0654 (17)0.0064 (15)0.0134 (15)0.0091 (16)
C250.0571 (15)0.0769 (15)0.0520 (14)0.0146 (12)0.0048 (12)0.0003 (13)
C260.0529 (12)0.0434 (11)0.0397 (12)0.0050 (9)0.0050 (10)0.0033 (10)
C270.0533 (13)0.0407 (10)0.0426 (12)0.0071 (9)0.0053 (10)0.0067 (10)
C280.0608 (13)0.0461 (11)0.0516 (14)0.0110 (10)0.0063 (11)0.0084 (10)
C290.0521 (13)0.0463 (11)0.0611 (14)0.0071 (10)0.0001 (11)0.0064 (11)
C300.0755 (17)0.0464 (13)0.0882 (19)0.0106 (11)0.0065 (15)0.0124 (13)
C310.0872 (19)0.0482 (13)0.097 (2)0.0185 (13)0.0103 (17)0.0056 (15)
C320.0763 (17)0.0647 (15)0.0719 (17)0.0191 (13)0.0038 (14)0.0151 (14)
C330.0570 (13)0.0539 (12)0.0585 (14)0.0078 (10)0.0008 (11)0.0026 (11)
C340.0448 (11)0.0435 (11)0.0512 (13)0.0059 (9)0.0001 (10)0.0024 (10)
N10.0668 (12)0.0492 (10)0.0603 (12)0.0118 (9)0.0086 (10)0.0058 (9)
N20.0547 (11)0.0461 (9)0.0518 (11)0.0049 (8)0.0098 (9)0.0080 (8)
N30.0474 (10)0.0515 (9)0.0440 (10)0.0014 (8)0.0062 (8)0.0062 (8)
N40.0557 (11)0.0711 (12)0.0447 (11)0.0006 (9)0.0005 (9)0.0045 (10)
N50.0698 (12)0.0487 (10)0.0575 (12)0.0070 (9)0.0063 (10)0.0211 (9)
O10.0665 (10)0.0466 (8)0.0666 (10)0.0015 (7)0.0079 (8)0.0144 (7)
O20.1075 (13)0.0464 (8)0.0399 (9)0.0101 (8)0.0152 (9)0.0022 (7)
Geometric parameters (Å, º) top
C1—C21.376 (3)C17—H17A0.9600
C1—C51.383 (3)C17—H17B0.9600
C1—H10.9300C17—H17C0.9600
C2—C31.370 (3)C18—N41.144 (2)
C2—H20.9300C19—N31.460 (2)
C3—N11.327 (3)C19—C201.502 (3)
C3—H30.9300C19—H19A0.9700
C4—N11.329 (2)C19—H19B0.9700
C4—C51.390 (3)C20—C251.377 (3)
C4—H40.9300C20—C211.379 (3)
C5—C61.507 (3)C21—C221.370 (4)
C6—C71.528 (3)C21—H210.9300
C6—C91.580 (2)C22—C231.353 (4)
C6—H60.9800C22—H220.9300
C7—N21.458 (2)C23—C241.369 (3)
C7—H7A0.9700C23—H230.9300
C7—H7B0.9700C24—C251.381 (3)
C8—N21.458 (2)C24—H240.9300
C8—C161.504 (2)C25—H250.9300
C8—C101.555 (3)C26—O21.220 (2)
C8—C91.598 (3)C26—C271.435 (2)
C9—C181.467 (3)C27—C281.383 (3)
C9—C261.578 (2)C27—C341.451 (2)
C10—O11.218 (2)C28—N51.339 (2)
C10—N31.364 (2)C28—H280.9300
C11—C121.374 (3)C29—C301.390 (3)
C11—C161.389 (3)C29—N51.389 (3)
C11—N31.414 (2)C29—C341.397 (3)
C12—C131.383 (3)C30—C311.365 (3)
C12—H120.9300C30—H300.9300
C13—C141.370 (3)C31—C321.382 (3)
C13—H130.9300C31—H310.9300
C14—C151.387 (3)C32—C331.383 (3)
C14—H140.9300C32—H320.9300
C15—C161.377 (3)C33—C341.391 (3)
C15—H150.9300C33—H330.9300
C17—N21.465 (3)N5—H50.8600
C2—C1—C5119.6 (2)H17A—C17—H17C109.5
C2—C1—H1120.2H17B—C17—H17C109.5
C5—C1—H1120.2N4—C18—C9178.5 (2)
C3—C2—C1119.1 (2)N3—C19—C20114.55 (17)
C3—C2—H2120.5N3—C19—H19A108.6
C1—C2—H2120.5C20—C19—H19A108.6
N1—C3—C2123.0 (2)N3—C19—H19B108.6
N1—C3—H3118.5C20—C19—H19B108.6
C2—C3—H3118.5H19A—C19—H19B107.6
N1—C4—C5124.34 (19)C25—C20—C21117.8 (2)
N1—C4—H4117.8C25—C20—C19121.6 (2)
C5—C4—H4117.8C21—C20—C19120.5 (2)
C1—C5—C4116.54 (19)C22—C21—C20121.2 (3)
C1—C5—C6121.97 (18)C22—C21—H21119.4
C4—C5—C6121.49 (18)C20—C21—H21119.4
C5—C6—C7114.71 (15)C23—C22—C21120.5 (3)
C5—C6—C9117.24 (15)C23—C22—H22119.8
C7—C6—C9104.63 (15)C21—C22—H22119.8
C5—C6—H6106.5C22—C23—C24119.7 (3)
C7—C6—H6106.5C22—C23—H23120.2
C9—C6—H6106.5C24—C23—H23120.2
N2—C7—C6103.80 (15)C23—C24—C25120.1 (3)
N2—C7—H7A111.0C23—C24—H24120.0
C6—C7—H7A111.0C25—C24—H24120.0
N2—C7—H7B111.0C20—C25—C24120.8 (2)
C6—C7—H7B111.0C20—C25—H25119.6
H7A—C7—H7B109.0C24—C25—H25119.6
N2—C8—C16113.72 (15)O2—C26—C27121.35 (17)
N2—C8—C10115.22 (15)O2—C26—C9117.69 (16)
C16—C8—C10101.27 (15)C27—C26—C9120.97 (17)
N2—C8—C9101.96 (14)C28—C27—C26128.52 (18)
C16—C8—C9117.23 (15)C28—C27—C34105.57 (16)
C10—C8—C9107.90 (15)C26—C27—C34125.49 (18)
C18—C9—C26108.50 (15)N5—C28—C27110.76 (18)
C18—C9—C6111.34 (15)N5—C28—H28124.6
C26—C9—C6110.09 (14)C27—C28—H28124.6
C18—C9—C8110.89 (15)C30—C29—N5129.2 (2)
C26—C9—C8112.48 (15)C30—C29—C34122.9 (2)
C6—C9—C8103.51 (14)N5—C29—C34107.86 (17)
O1—C10—N3125.13 (19)C31—C30—C29116.8 (2)
O1—C10—C8126.77 (18)C31—C30—H30121.6
N3—C10—C8108.09 (16)C29—C30—H30121.6
C12—C11—C16122.13 (19)C30—C31—C32121.6 (2)
C12—C11—N3128.23 (19)C30—C31—H31119.2
C16—C11—N3109.63 (16)C32—C31—H31119.2
C11—C12—C13117.1 (2)C33—C32—C31121.7 (2)
C11—C12—H12121.4C33—C32—H32119.2
C13—C12—H12121.4C31—C32—H32119.2
C14—C13—C12121.7 (2)C32—C33—C34118.2 (2)
C14—C13—H13119.1C32—C33—H33120.9
C12—C13—H13119.1C34—C33—H33120.9
C13—C14—C15120.7 (2)C33—C34—C29118.79 (18)
C13—C14—H14119.7C33—C34—C27134.53 (18)
C15—C14—H14119.7C29—C34—C27106.67 (18)
C16—C15—C14118.6 (2)C3—N1—C4117.45 (19)
C16—C15—H15120.7C8—N2—C7106.80 (15)
C14—C15—H15120.7C8—N2—C17114.61 (17)
C15—C16—C11119.75 (18)C7—N2—C17113.82 (16)
C15—C16—C8130.88 (19)C10—N3—C11110.69 (16)
C11—C16—C8109.36 (16)C10—N3—C19122.93 (17)
N2—C17—H17A109.5C11—N3—C19125.88 (17)
N2—C17—H17B109.5C28—N5—C29109.12 (17)
H17A—C17—H17B109.5C28—N5—H5125.4
N2—C17—H17C109.5C29—N5—H5125.4
C5—C1—C2—C30.4 (3)C21—C22—C23—C240.5 (4)
C1—C2—C3—N10.7 (3)C22—C23—C24—C251.5 (4)
C2—C1—C5—C40.8 (3)C21—C20—C25—C240.2 (3)
C2—C1—C5—C6179.71 (17)C19—C20—C25—C24177.1 (2)
N1—C4—C5—C11.9 (3)C23—C24—C25—C201.4 (4)
N1—C4—C5—C6178.56 (18)C18—C9—C26—O2139.91 (19)
C1—C5—C6—C7123.4 (2)C6—C9—C26—O217.8 (2)
C4—C5—C6—C756.0 (2)C8—C9—C26—O297.0 (2)
C1—C5—C6—C9113.2 (2)C18—C9—C26—C2740.2 (2)
C4—C5—C6—C967.3 (2)C6—C9—C26—C27162.28 (17)
C5—C6—C7—N2156.36 (16)C8—C9—C26—C2782.8 (2)
C9—C6—C7—N226.51 (19)O2—C26—C27—C28168.1 (2)
C5—C6—C9—C1810.9 (2)C9—C26—C27—C2811.8 (3)
C7—C6—C9—C18117.49 (17)O2—C26—C27—C343.4 (3)
C5—C6—C9—C26109.52 (18)C9—C26—C27—C34176.69 (18)
C7—C6—C9—C26122.14 (17)C26—C27—C28—N5172.8 (2)
C5—C6—C9—C8130.04 (16)C34—C27—C28—N50.1 (2)
C7—C6—C9—C81.70 (18)N5—C29—C30—C31179.6 (2)
N2—C8—C9—C18142.99 (15)C34—C29—C30—C310.4 (3)
C16—C8—C9—C1892.16 (19)C29—C30—C31—C320.4 (4)
C10—C8—C9—C1821.2 (2)C30—C31—C32—C330.2 (4)
N2—C8—C9—C2695.31 (16)C31—C32—C33—C340.8 (4)
C16—C8—C9—C2629.5 (2)C32—C33—C34—C290.8 (3)
C10—C8—C9—C26142.95 (15)C32—C33—C34—C27179.9 (2)
N2—C8—C9—C623.50 (17)C30—C29—C34—C330.2 (3)
C16—C8—C9—C6148.35 (16)N5—C29—C34—C33179.80 (18)
C10—C8—C9—C698.24 (16)C30—C29—C34—C27179.7 (2)
N2—C8—C10—O148.4 (3)N5—C29—C34—C270.3 (2)
C16—C8—C10—O1171.61 (19)C28—C27—C34—C33179.5 (2)
C9—C8—C10—O164.7 (2)C26—C27—C34—C337.4 (4)
N2—C8—C10—N3132.87 (16)C28—C27—C34—C290.2 (2)
C16—C8—C10—N39.69 (19)C26—C27—C34—C29173.29 (19)
C9—C8—C10—N3113.99 (16)C2—C3—N1—C40.4 (3)
C16—C11—C12—C130.2 (3)C5—C4—N1—C31.7 (3)
N3—C11—C12—C13178.6 (2)C16—C8—N2—C7169.48 (16)
C11—C12—C13—C141.3 (4)C10—C8—N2—C774.2 (2)
C12—C13—C14—C151.1 (4)C9—C8—N2—C742.32 (18)
C13—C14—C15—C160.7 (4)C16—C8—N2—C1763.5 (2)
C14—C15—C16—C112.2 (3)C10—C8—N2—C1752.8 (2)
C14—C15—C16—C8178.4 (2)C9—C8—N2—C17169.36 (16)
C12—C11—C16—C151.9 (3)C6—C7—N2—C844.46 (19)
N3—C11—C16—C15177.05 (17)C6—C7—N2—C17171.97 (17)
C12—C11—C16—C8178.56 (18)O1—C10—N3—C11172.32 (19)
N3—C11—C16—C82.4 (2)C8—C10—N3—C119.0 (2)
N2—C8—C16—C1548.1 (3)O1—C10—N3—C190.1 (3)
C10—C8—C16—C15172.3 (2)C8—C10—N3—C19178.67 (16)
C9—C8—C16—C1570.7 (3)C12—C11—N3—C10174.6 (2)
N2—C8—C16—C11131.37 (17)C16—C11—N3—C104.3 (2)
C10—C8—C16—C117.2 (2)C12—C11—N3—C192.5 (3)
C9—C8—C16—C11109.90 (19)C16—C11—N3—C19176.42 (18)
N3—C19—C20—C2552.9 (3)C20—C19—N3—C10122.3 (2)
N3—C19—C20—C21130.3 (2)C20—C19—N3—C1166.5 (3)
C25—C20—C21—C220.7 (3)C27—C28—N5—C290.3 (3)
C19—C20—C21—C22176.1 (2)C30—C29—N5—C28179.6 (2)
C20—C21—C22—C230.6 (4)C34—C29—N5—C280.4 (2)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N5—H5···N1i0.861.962.812 (2)170
C19—H19A···N4ii0.972.463.370 (3)157
Symmetry codes: (i) x+1, y+1/2, z+1/2; (ii) x1/2, y, z+1/2.
 

Acknowledgements

PS and CP thank the Department of Chemistry, IIT, Chennai, India, for the X-ray diffraction data collection.

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