Polymorphism characterization of segesterone acetate: A comprehensive study using XRPD, FT-IR and Raman spectroscopy

被引:4
|
作者
Aragon, Fermin F. H. [1 ]
Haeck, Clement M. [1 ]
Morais, Paulo C. [2 ,3 ]
Variano, Bruce [1 ]
机构
[1] Populat Council, Ctr Biomed Res, 1230 York Ave, New York, NY 10021 USA
[2] Univ Catolica Brasilia, BR-70790160 Brasilia, DF, Brazil
[3] Univ Brasilia, Inst Fis, BR-70910900 Brasilia, DF, Brazil
关键词
Segesterone acetate; Polymorphic Form I and II; Thermal annealing; Polymorphism characterization; Second-order phase transition;
D O I
10.1016/j.ijpharm.2021.120234
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Segesterone acetate (SA) is a promising and recently approved drug substance used as a contraceptive. SA has two major polymorphic forms, Form I and II. We have shown through indirect analysis that Form I is the more thermodynamically stable polymorphic form at room temperature, however, during the manufacturing process of SA drug products the solid-state stability must be shown to be under control. In the present work, a systematic study has been done using X-ray powder diffraction (XRPD), Fourier Transformed Infrared spectroscopy (FT-IR), and room temperature Raman spectroscopy on both micronized and non-micronized SA powder samples. XRPD showed a crystalline structure in both powder samples with a distinct coexistence of the polymorphic Forms I and II which was confirmed by FT-IR and Raman spectroscopy. The study showed that after thermal annealing a noticeable reduction of the amount of polymorphic Form II was found in both samples. Our results suggest the possibility of reducing the amount of SA Form II by thermal treatment inducing an irreversible solid-state transition to yield the thermodynamically more stable polymorphic Form I. To quantify the ratio of polymorphs I and II we have implemented a method that can be used as a routine analysis step in the manufacturing process of SA.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] ROUTINE FT-RAMAN SPECTROSCOPY WITH MODIFIED STANDARD FT-IR INSTRUMENT
    SCHRADER, B
    SIMON, A
    MIKROCHIMICA ACTA, 1988, 2 (1-6) : 227 - 230
  • [22] FT-IR and Raman spectroscopy of C58BN
    Antonova, K
    Byshewski, P
    Zhizhin, G
    Piechota, J
    Marhevka, M
    MIKROCHIMICA ACTA, 1997, : 271 - 273
  • [23] Ensuring Product Quality with Process Raman and FT-IR Spectroscopy
    Wasylyk, John
    SPECTROSCOPY, 2016, 31 (05) : 33 - 35
  • [24] FT-IR and Raman Spectroscopy and Computation of 5-Methylfurfural
    Y. Erdogdu
    T. R. Sertbakan
    M. T. Güllüoğlu
    Ş. Yurdakul
    A. Güvenir
    Journal of Applied Spectroscopy, 2018, 85 : 517 - 525
  • [25] FT-IR and FTAIR Raman spectroscopy of human red cell
    Chen, R
    Feng, SY
    Liu, LN
    Yang, WQ
    Xie, SS
    OPTICS IN HEALTH CARE AND BIOMEDICAL OPTICS: DIAGNOSTICS AND TREATMENT II , PTS 1 AND 2, 2005, 5630 : 468 - 471
  • [26] SURFACE ANALYSIS USING FT-IR SPECTROSCOPY
    ISHIDA, H
    KOENIG, JL
    AMERICAN LABORATORY, 1978, 10 (03) : 33 - &
  • [27] Forensics Applications of Raman Spectroscopy, ATR FT-IR, and Chemometrics
    Workman, Jerome, Jr.
    SPECTROSCOPY, 2021, 36 : 27 - +
  • [28] A comparison of Raman and FT-IR spectroscopy for the prediction of meat spoilage
    Argyri, Anthoula A.
    Jarvis, Roger M.
    Wedge, David
    Xu, Yun
    Panagou, Efstathios Z.
    Goodacre, Royston
    Nychas, George-John E.
    FOOD CONTROL, 2013, 29 (02) : 461 - 470
  • [29] FT-IR and Raman Spectroscopy and Computation of 5-Methylfurfural
    Erdogdu, Y.
    Sertbakan, T. R.
    Gulluoglu, M. T.
    Yurdakul, S.
    Guvenir, A.
    JOURNAL OF APPLIED SPECTROSCOPY, 2018, 85 (03) : 517 - 525
  • [30] SURFACE ANALYSIS USING FT-IR SPECTROSCOPY
    ISHIDA, H
    KOENIG, JL
    INTERNATIONAL LABORATORY, 1978, (MAY-): : 49 - &