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L-Iditol

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aGraduate School of Science for Creative Emergence, Kagawa University, 2217-20 Hayashi-cho, Takamatsu, Kagawa 761-0396, Japan
*Correspondence e-mail: [email protected]

Edited by L. Van Meervelt, Katholieke Universiteit Leuven, Belgium (Received 31 July 2026; accepted 5 August 2026; online 7 August 2026)

L-Iditol, C6H14O6, the sugar alcohol corresponding to L-idose, was crystallized from aqueous solution. Colourless block-shaped single crystals suitable for single-crystal X-ray diffraction analysis were obtained. The title compound crystallizes in the monoclinic space group P21, with one mol­ecule in the asymmetric unit. In the crystal, all six hy­droxy groups act as donors in O—H⋯O hydrogen bonds, forming a three-dimensional hydrogen-bonded network. The crystal structure of its enanti­omer, D-iditol, has been reported previously [Aza­rnia et al. (1972View full citation). Acta Cryst. B28, 1007–1013].

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

Structure description

L-Iditol is the sugar alcohol corresponding to the rare sugar L-idose. Systematic bioproduction strategies have expanded the availability of rare hexoses and their corresponding sugar alcohols (Izumori, 2002View full citation). Sugar alcohols possess multiple hy­droxy groups and can therefore form extensive inter­molecular hydrogen-bonding networks. Elucidation of their mol­ecular conformations and crystal packing is important for understanding their solid-state properties.

The crystal structure of the enanti­omer D-iditol was reported previously by Aza­rnia et al. (1972View full citation; CSD refcode IDITOL), and that of racemic D,L-iditol was reported by Kopf et al. (1992View full citation; CSD refcode VOMXEA). The present study provides a modern high-precision single-crystal X-ray determination of the corresponding L enanti­omer. The refinement converged at R1 = 0.0337, and the standard uncertainties of the C—C and C—O bond lengths are in the range 0.003–0.004 Å. Together with the deposited structure-factor data and detailed hydrogen-bond geometry, the present results provide an updated crystallographic description of iditol and specifically document the crystal structure of the L enanti­omer.

L-iditol adopts a twisted, acyclic six-carbon chain conformation (Fig. 1[link]). The C1—C2—C3—C4, C2—C3—C4—C5 and C3—C4—C5—C6 torsion angles are −179.9 (2), 62.2 (3) and −175.3 (2)°, respectively. Single-crystal X-ray diffraction analysis revealed that it crystallizes in the monoclinic space group P21. The asymmetric unit contains one mol­ecule of L-iditol. The stereogenic carbon atoms C2, C3, C4 and C5 have S, R, R and S configurations, respectively.

[Figure 1]
Figure 1
The mol­ecular structure of L-iditol showing the atom-labeling scheme. Displacement ellipsoids are drawn at the 50% probability level, and hydrogen atoms are shown as spheres of arbitrary radii.

In the crystal, all six hy­droxy groups act as hydrogen-bond donors, forming six inter­molecular O—H⋯O hydrogen bonds (Table 1[link]). The donor⋯acceptor distances range from 2.736 (3) to 2.848 (3) Å. These inter­actions connect the mol­ecules into a three-dimensional hydrogen-bonded network. The crystal packing viewed along the a axis is shown in Fig. 2[link]. The inter­molecular hydrogen bonding contributes to the consolidation of the crystal packing.

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1⋯O3i 0.82 2.04 2.834 (3) 163
O2—H2⋯O6ii 0.82 1.95 2.764 (3) 171
O3—H3⋯O5iii 0.82 2.01 2.736 (3) 147
O4—H4⋯O2iv 0.82 1.98 2.755 (2) 158
O5—H5⋯O1iii 0.90 (4) 1.88 (4) 2.766 (3) 170 (3)
O6—H6⋯O3v 0.82 2.25 2.848 (3) 130
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation; (v) Mathematical equation.
[Figure 2]
Figure 2
Crystal packing of L-iditol viewed along the a axis, showing the three-dimensional hydrogen-bonded network formed by O—H⋯O hydrogen bonds. Hydrogen bonds are shown as dashed lines, and the crystallographic b- and c-axis directions are indicated.

Synthesis and crystallization

Commercially available L-iditol (Sigma–Aldrich) was used as received without further purification. The sample was dissolved in water, and the solution was allowed to evaporate slowly at room temperature. Colorless block-shaped single crystals suitable for single-crystal X-ray diffraction analysis were obtained. The absolute configuration was assigned on the basis of the known configuration of the commercially available L-iditol sample.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link]. Although the refined value of the Flack parameter is slightly negative, it is within approximately 1.5 standard uncertainties of zero and is consistent with the absolute configuration assigned from the known configuration of the commercially available L-iditol sample.

Table 2
Experimental details

Crystal data
Chemical formula C6H14O6
Mr 182.17
Crystal system, space group Monoclinic, P21
Temperature (K) 296
a, b, c (Å) 5.8678 (2), 8.3869 (3), 8.1213 (3)
β (°) 93.182 (2)
V3) 399.05 (2)
Z 2
Radiation type Cu Kα
μ (mm−1) 1.19
Crystal size (mm) 0.10 × 0.10 × 0.10
 
Data collection
Diffractometer Rigaku R-AXIS RAPID
Absorption correction Multi-scan (ABSCOR; Rigaku, 1995View full citation)
Tmin, Tmax 0.822, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 4219, 1377, 1329
Rint 0.057
(sin θ/λ)max−1) 0.602
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.034, 0.083, 1.12
No. of reflections 1377
No. of parameters 114
No. of restraints 1
H-atom treatment H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 0.20, −0.20
Absolute structure Flack x determined using 538 quotients [(I+)−(I)]/[(I+)+(I)] (Parsons et al., 2013View full citation)
Absolute structure parameter −0.24 (16)
Computer programs: RAPID-AUTO (Rigaku, 2009View full citation), SHELXT2018/2 (Sheldrick, 2015aView full citation), SHELXL2018/3 (Sheldrick, 2015bView full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Structural data


Computing details top

(2S,3R,4R,5S)-Hexane-1,2,3,4,5,6-hexol top
Crystal data top
C6H14O6F(000) = 196
Mr = 182.17Dx = 1.516 Mg m3
Monoclinic, P21Cu Kα radiation, λ = 1.54187 Å
a = 5.8678 (2) ÅCell parameters from 3800 reflections
b = 8.3869 (3) Åθ = 5.3–68.3°
c = 8.1213 (3) ŵ = 1.19 mm1
β = 93.182 (2)°T = 296 K
V = 399.05 (2) Å3Block, clear light colourless
Z = 20.1 × 0.1 × 0.1 mm
Data collection top
Rigaku R-AXIS RAPID
diffractometer
1329 reflections with I > 2σ(I)
Detector resolution: 10.000 pixels mm-1Rint = 0.057
ω scansθmax = 68.2°, θmin = 5.5°
Absorption correction: multi-scan
(ABSCOR; Rigaku, 1995)
h = 67
Tmin = 0.822, Tmax = 1.000k = 1010
4219 measured reflectionsl = 99
1377 independent reflections
Refinement top
Refinement on F2H atoms treated by a mixture of independent and constrained refinement
Least-squares matrix: full w = 1/[σ2(Fo2) + (0.032P)2 + 0.0743P]
where P = (Fo2 + 2Fc2)/3
R[F2 > 2σ(F2)] = 0.034(Δ/σ)max < 0.001
wR(F2) = 0.083Δρmax = 0.20 e Å3
S = 1.12Δρmin = 0.20 e Å3
1377 reflectionsExtinction correction: SHELXL 2018/3 (Sheldrick, 2015b), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
114 parametersExtinction coefficient: 0.165 (10)
1 restraintAbsolute structure: Flack x determined using 538 quotients [(I+)-(I-)]/[(I+)+(I-)] (Parsons et al., 2013)
Primary atom site location: dualAbsolute structure parameter: 0.24 (16)
Hydrogen site location: mixed
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.

Refinement. The structure was solved using SHELXT (Sheldrick, 2015a) and refined on F2 by full-matrix least-squares methods using SHELXL (Sheldrick, 2015b). All non-hydrogen atoms were refined anisotropically. The hydroxy hydrogen atom H5 was located in a difference-Fourier map and refined freely. All other hydrogen atoms were placed in geometrically calculated positions and refined using constrained models. The final refinement gave R1 = 0.0337 for reflections with I > 2σ(I) and wR2 = 0.0829 for all data. The maximum and minimum residual electron densities were 0.20 and -0.20 e Å-3, respectively. The Flack parameter was -0.24 (16), determined using 538 quotients of the type [(I+) - (I-)]/[(I+) + (I-)] (Parsons et al., 2013). Although the refined value is slightly negative, it is within approximately 1.5 standard uncertainties of zero and is consistent with the absolute configuration assigned from the known configuration of the commercially available L-iditol sample.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
O10.4782 (4)0.8448 (2)0.4118 (2)0.0308 (6)
H10.5031870.8558730.5115270.037*
O20.0813 (3)0.6622 (2)0.2718 (2)0.0251 (5)
H20.0784390.6702040.3723030.030*
O30.3411 (3)0.3703 (2)0.2584 (2)0.0198 (5)
H30.3652770.2847010.2138520.024*
O40.2410 (3)0.3107 (2)0.0653 (2)0.0230 (5)
H40.1522400.2868240.1429210.028*
O50.4315 (3)0.5928 (2)0.2005 (2)0.0216 (5)
H50.466 (6)0.505 (5)0.258 (4)0.044 (11)*
O60.0239 (4)0.7005 (3)0.3950 (2)0.0334 (6)
H60.0049730.7824530.3452330.040*
C10.4802 (5)0.6794 (3)0.3717 (3)0.0194 (6)
H1A0.4369970.6164250.4651560.023*
H1B0.6319960.6471820.3434780.023*
C20.3120 (4)0.6535 (3)0.2265 (3)0.0168 (6)
H2A0.3350940.7391050.1469730.020*
C30.3538 (4)0.4961 (3)0.1405 (3)0.0158 (6)
H3A0.5088250.4978530.1013290.019*
C40.1871 (4)0.4652 (3)0.0076 (3)0.0159 (6)
H4A0.0309150.4649810.0293490.019*
C50.2062 (5)0.5907 (3)0.1429 (3)0.0176 (6)
H5A0.1793510.6949650.0930780.021*
C60.0294 (5)0.5697 (4)0.2842 (3)0.0257 (7)
H6A0.0627130.4730210.3438780.031*
H6B0.1198570.5573520.2400930.031*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0586 (14)0.0176 (11)0.0153 (9)0.0104 (10)0.0058 (9)0.0010 (8)
O20.0237 (10)0.0349 (12)0.0161 (8)0.0088 (9)0.0028 (7)0.0053 (8)
O30.0318 (10)0.0126 (9)0.0150 (9)0.0036 (7)0.0005 (7)0.0004 (7)
O40.0313 (11)0.0153 (9)0.0214 (9)0.0014 (8)0.0066 (7)0.0058 (8)
O50.0233 (10)0.0194 (9)0.0224 (10)0.0052 (8)0.0047 (8)0.0020 (8)
O60.0435 (13)0.0402 (13)0.0168 (10)0.0142 (10)0.0035 (9)0.0063 (10)
C10.0285 (14)0.0152 (15)0.0141 (12)0.0017 (11)0.0026 (11)0.0000 (10)
C20.0239 (13)0.0149 (13)0.0114 (11)0.0002 (11)0.0003 (10)0.0018 (10)
C30.0193 (12)0.0150 (13)0.0130 (11)0.0000 (10)0.0014 (9)0.0001 (9)
C40.0190 (12)0.0142 (13)0.0148 (12)0.0012 (10)0.0015 (10)0.0017 (9)
C50.0223 (13)0.0169 (12)0.0136 (12)0.0024 (11)0.0019 (10)0.0018 (10)
C60.0276 (15)0.0305 (17)0.0188 (13)0.0007 (13)0.0015 (11)0.0027 (12)
Geometric parameters (Å, º) top
O1—H10.8200C1—H1B0.9700
O1—C11.425 (3)C1—C21.511 (3)
O2—H20.8200C2—H2A0.9800
O2—C21.424 (3)C2—C31.521 (3)
O3—H30.8200C3—H3A0.9800
O3—C31.430 (3)C3—C41.529 (3)
O4—H40.8200C4—H4A0.9800
O4—C41.420 (3)C4—C51.530 (4)
O5—H50.90 (4)C5—H5A0.9800
O5—C51.427 (3)C5—C61.514 (4)
O6—H60.8200C6—H6A0.9700
O6—C61.418 (4)C6—H6B0.9700
C1—H1A0.9700
C1—O1—H1109.5C2—C3—H3A108.2
C2—O2—H2109.5C2—C3—C4113.3 (2)
C3—O3—H3109.5C4—C3—H3A108.2
C4—O4—H4109.5O4—C4—C3105.6 (2)
C5—O5—H5114 (2)O4—C4—H4A109.2
C6—O6—H6109.5O4—C4—C5111.3 (2)
O1—C1—H1A110.2C3—C4—H4A109.2
O1—C1—H1B110.2C3—C4—C5112.3 (2)
O1—C1—C2107.7 (2)C5—C4—H4A109.2
H1A—C1—H1B108.5O5—C5—C4110.5 (2)
C2—C1—H1A110.2O5—C5—H5A107.3
C2—C1—H1B110.2O5—C5—C6111.2 (2)
O2—C2—C1112.4 (2)C4—C5—H5A107.3
O2—C2—H2A107.5C6—C5—C4112.9 (2)
O2—C2—C3110.1 (2)C6—C5—H5A107.3
C1—C2—H2A107.5O6—C6—C5112.4 (2)
C1—C2—C3111.6 (2)O6—C6—H6A109.1
C3—C2—H2A107.5O6—C6—H6B109.1
O3—C3—C2108.48 (18)C5—C6—H6A109.1
O3—C3—H3A108.2C5—C6—H6B109.1
O3—C3—C4110.3 (2)H6A—C6—H6B107.8
O1—C1—C2—O273.8 (3)O5—C5—C6—O664.8 (3)
O1—C1—C2—C3162.0 (2)C1—C2—C3—O357.2 (3)
O2—C2—C3—O368.3 (2)C1—C2—C3—C4179.9 (2)
O2—C2—C3—C454.6 (2)C2—C3—C4—O4176.3 (2)
O3—C3—C4—O454.5 (2)C2—C3—C4—C562.2 (3)
O3—C3—C4—C5176.0 (2)C3—C4—C5—O559.4 (3)
O4—C4—C5—O558.8 (3)C3—C4—C5—C6175.3 (2)
O4—C4—C5—C666.5 (3)C4—C5—C6—O6170.3 (2)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1···O3i0.822.042.834 (3)163
O2—H2···O6ii0.821.952.764 (3)171
O3—H3···O5iii0.822.012.736 (3)147
O4—H4···O2iv0.821.982.755 (2)158
O5—H5···O1iii0.90 (4)1.88 (4)2.766 (3)170 (3)
O6—H6···O3v0.822.252.848 (3)130
Symmetry codes: (i) x+1, y+1/2, z+1; (ii) x, y, z+1; (iii) x+1, y1/2, z; (iv) x, y1/2, z; (v) x, y+1/2, z.
 

Acknowledgements

The authors thank Professor Genta Sakane (Okayama University of Science) for insightful discussions and technical suggestions, and Kei Takeshita (FUSHIMI Pharmaceutical Co., Ltd.) for valuable advice. This work received support from the JST Support for Pioneering Research Initiated by the Next Generation (SPRING) program, Japan.

References

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