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Tytuł artykułu

Synthesis and characterization of nanostructured CaSiO3 biomaterial

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Here we report a successful preparation of nanostructured calcium silicate by wet chemical approach. The synthesized sample was characterized by various physico-chemical methods. Thermal stability was investigated using thermo-gravimetric and differential thermal analysis (TG-DTA). Structural characterization of the sample was carried out by the X-ray diffraction technique (XRD) which confirmed its single phase hexagonal structure. Transmission electron microscopy (TEM) was used to study the nanostructure of the ceramics while homogeneous grain distribution was revealed by scanning electron microscopy studies (SEM). The elemental analysis data obtained from energy dispersive X-ray spectroscopy (EDAX) were in close agreement with the starting composition used for the synthesis. Superhydrophilic nature of CaSiO3 was investigated at room temperature by sessile drop technique. Effect of porous nanosized CaSiO3 on early adhesion and proliferation of human bone marrow mesenchymal stem cells (BMMSCs) and cord blood mesenchymal stem (CBMSCs) cells was measured in vitro. MTT cytotoxicity test and cell adhesion test showed that the material had good biocompatibility and promoted cell viability and cell proliferation. It has been stated that the cell viability and proliferation are significantly affected by time and concentration of CaSiO3. These findings indicate that the CaSiO3 ceramics has good biocompatibility and that it is promising as a biomaterial.
Wydawca
Rocznik
Strony
269--275
Opis fizyczny
Bibliogr. 28 poz., rys., tab., wykr.
Twórcy
autor
  • Department of Chemistry, Y. M. College, Bharati Vidyapeeth Deemed University, Pune-411038(MS) India
autor
  • Metal Oxide Research Laboratory, Department of Chemistry, Dr. Patangrao Kadam Mahavidyalaya, Sangli-416416, (MS) India
autor
  • Stem One, Biologicals Pvt. Ltd, 801, Urawade, Taluka–Mulashi, Pune-412 108, (MS) India
autor
  • Metal Oxide Research Laboratory, Department of Chemistry, Dr. Patangrao Kadam Mahavidyalaya, Sangli-416416, (MS) India
autor
  • Metal Oxide Research Laboratory, Department of Chemistry, Dr. Patangrao Kadam Mahavidyalaya, Sangli-416416, (MS) India
autor
  • Metal Oxide Research Laboratory, Department of Chemistry, Dr. Patangrao Kadam Mahavidyalaya, Sangli-416416, (MS) India
Bibliografia
  • [1] MANSUR S.H., COSTA H.S., Chem. Eng. J, 137 (2008), 72.
  • [2] LYNCH E., BRAUER D.S., KARPUKHINA N., GILLAM D.G., HILL R.G., Dental Materials, 28 (2012), 168.
  • [3] WU C., ZHOU Y., FAN W., HAN P., CHANG J., YUEN J., ZHANG M., XIAO Y., Biomaterials, 33 (2012), 2076.
  • [4] FAGERLUND S., MASSERA J., MORITZ N., HUPA L., HUPA M., Acta Biomaterialia, 8 (2012), 2331.
  • [5] ZHONG H., WANG L., FAN Y., HE L., LIN K., JIANG W., CHANG J., CHEN L., Ceramics International, 37 (2011), 2459.
  • [6] NI S., CHANG J., CHOU L., J. Biomed Mater Res A., 76 (2006), 196.
  • [7] CHANG C.K., MAO D.L., WU J.S., Ceramics International, 26 (2000), 779.
  • [8] ZHAI W., LU H., CHEN L., LIN X., HUANG Y., DAI K., NAOKI K., CHEN G., CHANG J., Acta Biomaterialia, 8 (2012), 34.
  • [9] XUE W., BANDYOPADHYAY A., BOSE S., Acta Biomaterialia, 5 (2009), 1686.
  • [10] BALAMURUGAN A., SOCKALINGUM G., MICHEL J., FAURE J., BANCHET V., WORTHAM L., BOUTHORS S., LAURENT-MAQUIN D., BALOSSIER G., Materials Letters, 60 (2006), 3752.
  • [11] OONISHI H, HENCH L.L., WILSON J., SUGIHARA F., TSUJI E., MATSUURA M., J. Biomed Mater Res., 51 (2000), 37.
  • [12] LYNN A.K., NAKAMURA T., PATEL N., PORTER A.E., RENOUF A.C., LAITY P.R., J. Biomed Mater Res A., 74 (2005), 447.
  • [13] LIN K., CHANG J., LIU Z., ZENG Y., SHEN R., J. European Ceramic Society, 29 (2009), 2937.
  • [14] WANG C., XUE Y., LIN K., LU J., CHANG J., SUN J., Acta Biomaterialia, 8 (2012), 350.
  • [15] LIU X.Y., DING C.X., CHU P.K., Biomaterials, 25 (2004), 1755.
  • [16] LIN K.L., CHANG J., WANG Z., J. Inorg Mater., 20 (2005), 692.
  • [17] BALASUNDA G., SATO M., WEBSTER T.J., Biomaterials, 27 (2006), 2798.
  • [18] WEBSTER T.J., SMITH T.A., J. Biomed. Mater. Res. A., 74 (2005), 677.
  • [19] THOMPSON S.P., DAY S.J., PARKER J.E., EVANS A., TANG C.C., J. Non-Crystalline Solids, 358 (2012), 885.
  • [20] SAINZ M.A., PENA P., SERENA S., CABALLERO A., Acta Biomaterialia, 6 (2010), 2797.
  • [21] JIA N., LI S.M., MA M.G., SUN R.C., ZHU L., Carbohydrate Research, 346 (2011), 2970.
  • [22] LIN K., ZHAI W., NI S., CHANG J., ZENG Y., QIAN W., Ceramics International, 31 (2005), 323.
  • [23] CULLITY B.D., Addison-Wesley Publishing Reading MA., 1956, p, 352.
  • [24] HAMMOND C., Oxford University Press, Oxford, 1997.
  • [25] KULAL S.R., KHETRE S.S., JAGDALE P.N., GURAMEV.M., WAGHMODE D.P., KOLEKAR G.B., SABALE S.R., BAMANE S.R., Materials letters, 84 (2012), 169.
  • [26] MEISZTERICS A., SINKO K., Colloids and Surfaces A: Physicochemical and Engineering Aspects, 319 (2008), 143.
  • [27] XU S., LIN K., WANG Z., CHANG J., WANG L., LU J., NING C., Biomaterials, 29 (2008), 2588.
  • [28] MAHADIK S., VENKATESWARA RAO A., Applied Surface Science, 25 (2010), 333.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-06308398-b520-4be0-a685-6a61384d90fa
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