TY - JOUR
T1 - Synthesis and characterization of PCL-DA:PEG-DA based polymeric blends grafted with SMA hydrogel as bio-degradable intrauterine contraceptive implant
AU - Subramanian, Bhuvaneshwaran
AU - Agarwal, Tarun
AU - Roy, Arpita
AU - Parida, Sheetal
AU - Kundu, Biswanath
AU - Maiti, Tapas Kumar
AU - Basak, Piyali
AU - Guha, Sujoy K.
N1 - Funding Information:
The authors of this manuscript acknowledge the Ministry of Health and Family Welfare and Indian Council of Medical Research , New Delhi, Government of India, for providing financial support. Central Research Facility, Indian Institute of Technology , Kharagpur, is profoundly acknowledged for providing support in experimental work.
Funding Information:
The authors of this manuscript acknowledge the Ministry of Health and Family Welfare and Indian Council of Medical Research, New Delhi, Government of India, for providing financial support. Central Research Facility, Indian Institute of Technology, Kharagpur, is profoundly acknowledged for providing support in experimental work. The authors declare no conflict of interest.
Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2020/11
Y1 - 2020/11
N2 - Presently available long-acting reversible female contraceptive implants are said to be an effective way of preventing unintended pregnancy. Unacceptable side effects attributed by these contraceptive implants act as a major drawback for the practitioners. These problems pave the way for the development of a new form of long-acting non-hormonal female contraceptive implant, especially in the developing countries. PCL-DA: PEG-DA polymeric scaffold is grafted with Styrene Maleic Anhydride (SMA) based hydrogel, and their physicochemical, thermal and biological parameters are being explored for developing a bio-degradable form of the non-hormonal intrauterine contraceptive implant. With the fixed ratio of PEG-DA: PCL-DA polymer, SMA hydrogel was added at four different concentrations to determine the optimum concentration of SMA hydrogel for the development of a promising long-acting biodegradable intrauterine contraceptive implant. Structural elucidation of the polymers was confirmed using 1H and 13C NMR spectroscopic analyses. The physiochemical characterization report suggests that SMA hydrogel interacts with the PCL-DA: PEG-DA polymeric scaffold through intermolecular hydrogen bonding interaction. The in-vitro spermicidal activity of the polymeric scaffold increases when the concentration of SMA based hydrogel in the polymer samples is increased without showing any significant toxicological effects. From the study results, it may be concluded that SMA hydrogel grafted PCL-DA: PEG-DA scaffold can be developed as intra-uterine biodegradable non-hormonal female contraceptive implant due to its excellent bio-compatibility and spermicidal activity.
AB - Presently available long-acting reversible female contraceptive implants are said to be an effective way of preventing unintended pregnancy. Unacceptable side effects attributed by these contraceptive implants act as a major drawback for the practitioners. These problems pave the way for the development of a new form of long-acting non-hormonal female contraceptive implant, especially in the developing countries. PCL-DA: PEG-DA polymeric scaffold is grafted with Styrene Maleic Anhydride (SMA) based hydrogel, and their physicochemical, thermal and biological parameters are being explored for developing a bio-degradable form of the non-hormonal intrauterine contraceptive implant. With the fixed ratio of PEG-DA: PCL-DA polymer, SMA hydrogel was added at four different concentrations to determine the optimum concentration of SMA hydrogel for the development of a promising long-acting biodegradable intrauterine contraceptive implant. Structural elucidation of the polymers was confirmed using 1H and 13C NMR spectroscopic analyses. The physiochemical characterization report suggests that SMA hydrogel interacts with the PCL-DA: PEG-DA polymeric scaffold through intermolecular hydrogen bonding interaction. The in-vitro spermicidal activity of the polymeric scaffold increases when the concentration of SMA based hydrogel in the polymer samples is increased without showing any significant toxicological effects. From the study results, it may be concluded that SMA hydrogel grafted PCL-DA: PEG-DA scaffold can be developed as intra-uterine biodegradable non-hormonal female contraceptive implant due to its excellent bio-compatibility and spermicidal activity.
KW - Polycaprolactone diacrylate
KW - Semi-interpenetrating polymer network
KW - Spermicidal activity
KW - Styrene Maleic Anhydride (SMA)
KW - Uterine primary cell lines
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U2 - 10.1016/j.msec.2020.111159
DO - 10.1016/j.msec.2020.111159
M3 - Article
C2 - 32806299
AN - SCOPUS:85086144937
SN - 0928-4931
VL - 116
JO - Materials Science and Engineering C
JF - Materials Science and Engineering C
M1 - 111159
ER -