442
Views
18
CrossRef citations to date
0
Altmetric
Original Articles

Cistanche polysaccharide (CDPS)/polylactic acid (PLA) scaffolds based coaxial electrospinning for vascular tissue engineering

, , , , , , , , , , , & show all
Pages 38-46 | Received 04 Feb 2015, Accepted 23 May 2015, Published online: 10 Oct 2015

References

  • Sell, S. A.; McClure, M. J.; Barnes, C. P.; Knapp, D. C.; Walpoth, B. H.; Simpson, D. G.; Bowlin, G. L. Electrospun polydioxanone-elastin blends: potential for bioresorbable vascular grafts. Biomed. Mater. 2006, 1, 72–80.
  • Boland, E. D.; Matthews, J. A.; Pawlowski, K. J.; Simpson, D. G.; Wnek, G. E.; Bowlin, G. L. Electrospinning collagen and elastin: preliminary vascular tissue engineering. Front Biosci. 2004, 9, 1422–1432.
  • Bos, G. W.; Poot, A. A.; Beugeling, T.; Van Aken, W. G.; Feijen, J. Small-diameter vascular graftprostheses: current status. Arch. Physiol. Biochem. 1998, 106, 100–115.
  • Weinberg, C. B.; Bell, E. A blood vessel model constructed from collagen; & cultured vascular cells. Science 1986, 231, 397–400.
  • Chu, C. R.; Coutts, R. D.; Yoshioka, M.; Harwood, F. L.; Monosov, A. Z.; Amiel, D. Articular cartilage repair using allogeneic perichondrocyteseeded biodegradable porous polylactic acid (PLA): A tissue-engineering study. J. Biomed. Mater. Res. 1995, 29, 1147–1154.
  • Agrawal, C. M.; Athanasiou, K. A.; Heckman, J. D. Biodegradable PLA-PGA polymers for tissue engineering in orthopaedics. Mater. Sci. Forum 1997, 250, 115–128.
  • Cheung, H. Y.; Lau, K. T.; Tao, X.-M.; Hui, D. A potential material for tissue engineering: Silkworm silk/PLA biocomposite. Comp. Part B: Eng. 2008, 39, 1026–1033.
  • Zeng, Q.-L.; Mao, J.-H.; Lü, Z.-L. Purification of polysaccharide of cistanche deserticola Y C Ma and its immunomodulatory effects on T cell function. J. Zhejiang Med. Univ. 1998, 27, 108–111.
  • Sun, Y.; Wang, D.-J.; Zhu, J.; Zhang, H.-Q. Effects of cistanche desertica polysacchrides on the constitution of protein and anti-oxidative capacity of lune in aging mice. Chinese Pharm. Bull. 2001, 17, 101–103.
  • Song, Z.-H.; Lei, L.; Tu, P.-F. Advances in research of pharmacological activity in plants of Cistanche. Chinese Trad. Herbal Drugs 2003, 34, 113–115.
  • Wang, X.-Y.; Qi, Y.; Cai, R.-L.; Li, X.-H.; Yang, M.-H.; Shi, Y. Enhancing effect of polysaccharides of Cistanche deserticola Y C Ma on lymphocyte proliferation. Acta Lab. Animal. Sci. Sinica 2009, 17, 424–427.
  • Gao, H.; Yan, H.; Zhang, H.-Q.; Tong, K. The proliferative effects of Cistanche polysaccharide on human fibroblasts. Chinese Trad. Patent Med. 1998, 20, 43–44.
  • Zhao, W.; Yan, H.; Liang, Z.-Y.; Zhang, Y.-J.; Huo, X. Purification and characterization on water soluble polysaccharides SPA isolated from the stem of Cistanche deserticola Ma. J. Northeast Normal Univ. 2004, 36, 111–115.
  • Zhang, L.; Ao, Q.; Wang, A.-J.; Lu, G.-Y.; Kong, L.-J.; Gong, Y.-D.; Zhao, N.-M.; Zhang, X.-F. A sandwich tubular scaffold derived from chitosan for blood vessel tissue engineering. J. Biomed. Mater. Res. 2006, 77(A), 277–284.
  • Bolland, B. J. R. F.; Kanczler, J. M.; Dunlop, D. G.; Oreffo, R. O. C. Development of in vivo μCT evaluation of neovascularisation in tissue engineered bone constructs. Bone 2008, 43, 195–202.
  • Peschel, G.; Dahse, H. M.; Konrad, A.; Wieland, G. D.; Mueller, P. J.; Martin, D. P.; Roth, M. Growth of keratinocytes on porous films of poly(3-hydroxybutyrate) and poly(4-hydroxybutyrate) blended with hyaluronic acid; and chitosan. J. Biomed. Mater. Res. 2008, 85(A), 1072–1081.
  • Jiang, S.; Liao, G. Synthesis and characterization of biocompatible poly(ethylene glycol)-b-Poly(L-lactide) and study on their electrospun scaffolds. Polym.-Plast. Technol. Eng. 2012, 51, 1237–1244.
  • Baumgarten, P. K. Electrostatic spinning of acrylic microfibers. J. Colloid Interface Sci. 1971, 36, 71–79.
  • Fong, H.; Chun, I.; Reneker, D. H. Beaded nanofibers formed during electrospinning. Polyme. 1999, 40, 4585–4592.
  • Kim, J. S.; Reneker, D. H. Polybenzimidazole nanofiber produced by electrospinning. Polym. Eng. Sci. 1999, 39, 849–854.
  • Jiang, H.-L.; Hu, Y.-Q.; Li, Y.; Zhao, P.-C.; Zhu, K.-J.; Chen, W.-L. A facile technique to prepare biodegradable coaxial electrospun nanofibers for controlled release of bioactive agents. J. Control. Release 2005, 108, 237–243.
  • Qu, H.-L.; Wei, S.-Y.; Guo, Z.-H. Coaxial electrospun nanostructures and their applications. J. Mater. Chem. A 2013, 1, 11513–11528.
  • Drexler, J. W.; Powell, H. M. Regulation of electrospun scaffold stiffness via coaxial core diameter. Acta Mater. 2011, 7, 1133–1139.
  • Zhang, H.-B.; Zhu, M.; You, R.-Q. Modified biopolymer scaffolds by co-axial electrospinning. Adv. Mater. Res. 2010, 160–162, 1062–1066.
  • Park, H.; Yoo, H.; Hwang, T.; Park, T. J.; Paik, D. H.; Choi, S. W.; Kim, J. H. Fabrication of levoflosacin-loaded nanofibrous scaffolds using coaxial electrospinning. J. Pharm. Invest. 2012, 42, 89–93.
  • Zhang, Y.-Z.; Huang, Z.-M. Xu, X.-J. Lim, C. T. Ramakrishna, S. Preparation of core−shell structured PCL-r-gelatin Bi-component nanofibers by coaxial electrospinning. Chem. Mater. 2004, 16, 3406–3409.
  • Sakai, S.; Masuhara, H.; Yamada, Y.; Ono, T.; Ljima, H.; Kawakami, K. Transition of mechanical property of porous alginate scaffold with cells during culture period. J. Biosci. Bioeng. 2005, 100, 127–129.
  • Dado, D.; Levenberg, S. Cell–scaffold mechanical interplay within engineered tissue. Semin. Cell Dev. Biol. 2009, 20, 656–664.
  • Kasoju, N.; Bhondde, R. R.; Bora, U. Preparation and characterization of Antheraea assama silk fibroin based novel non-woven scaffold for tissue engineering applications. J. Tissue Eng. Regen. Med. 2009, 3, 539–552.
  • Zeng, Q.-L.; Huo, Y.-N.; Mao, J.-H.; Zheng, Y.-F. Isolation, purification and identification of polysaccharide of Cistanche deserticola. Chinese Trad. Herbal Drugs 2002, 33, 4–6.
  • Wu, B.; Huang, M.; Ma, Y.-J. Isolation, purification and analysis of polysaccharide of Cistanche deserticola. Acad. J. Guangzhou Med. Coll. 2006, 34, 58–59.
  • Ma, J.-M.; Song, X.-B.; Zhang, L.-J.; Li, W. Determination of the polysaccharides content in herba cistanche. J. Liaoning Univ. TCM 2012, 14, 100–101.
  • Yu, X.-G.; Chen, Z.-J.; Jiang, H.-L.; Wang, H.-J.; Liu, D.-R.; Tu, K.-H.; Wang, L.-Q. Mechanical properties of small-diameter vascular graft fabricated by electrospinning. Chin. J. Biomed. Eng. 2010, 29, 770–776.
  • Zaucha, M. T.; Gauvin, R.; Auger, F. A.; Germain, L.; Gleason, R. L. Biaxial biomechanical properties of self-assembly tissue-engineered blood vessels. J. R. Soc. Interface 2011, 8, 244–256.
  • Khil, M. S.; Cha, D. I.; Kim, H. Y.; Kim, I. S.; Bhattarai, N. Electrospun nanofibrous polyurethane membrane as wound dressing. J. Biomed. Mater. Res. B: Appl. Biomater. 2003, 67B, 675–679.
  • Thorlacius, Vollmar, Seyfert, Vestweber, Menger. The polysaccharide fucoidan inhibits microvascular thrombus formation independently from P- and L-selectin function in vivo. Eur. J. Clin. Invest. 2000, 30, 804–810.
  • Liu, S.-Y.; Zhang, H.-M.; Zhang, X.-J.; Lu, W.; Huang, X.-H.; Xie, H.; Zhou, J.; Wang, W.-H.; Zhang, Y.-J.; Liu, Y.; Deng, Z.-H.; Jin, Y. Synergistic angiogenesis promoting effects of extracellular matrix scaffolds and adipose-derived stem cells during wound repair. Tissue Eng. Part A 2011, 17, 725–739.
  • Phelps, E. A.; Landázuri, N.; Thulé, P. M.; Robert, T. W.; García, A. J. Bioartificial matrices for therapeutic vascularization. Proc. Natl. Acad. Sci. 2010, 107, 3323–3328.
  • Hasegawa, T.; Okada, K.; Takano, Y.; Hiraishi, Y.; Okita, Y. Autologous fibrin-coated small-caliber vascular prostheses improve antithrombogenicity by reducing immunologic response. J. Thorac. Cardiovasc. Surg. 2007, 133, 1268–1276.
  • Yokota, T.; Ichikawa, H.; Matsumiya, G.; Kuratani, T.; Sakaguchi, T.; Iwai, S.; Shirakawa, Y.; Torikai, K.; Saito, A.; Uchimura, E.; Kawaguchi, N.; Matsuura, N.; Sawa, Y. In situ tissue regeneration using a novel tissue-engineered, small-caliber vascular graft without cell seeding. J. Thorac. Cardiovasc. Surg. 2008, 136, 900–907.
  • Hashi, C. K.; Derugin, N.; Janairo, R. R. R.; Lee, R.; Schultz, D.; Lotz, J.; Li, S. Antithrombogenic modification of small-diameter microfibrous vascular grafts. Arterioscler. Thromb. Vasc. Biol. 2010, 30, 1621–1627.
  • Quint, C.; Kondo, Y.; Manson, R. J.; Lawson, J. H.; Dardik, A.; Niklason, L. E. Decellularized tissue-engineered blood vessel as an arterial conduit. Proc. Natl. Acad. Sci. 2011, 108, 9214–9219.
  • Ge, H.-L.; Zhou, Y.-J.; Ma, H.-Y.; Liu, L.; Liu, X.-L.; Wang, Z.-J.; Yang, S.-W.; Nie, B.; Jia, D. Effectiveness of triptolide-coated stent on decreasing inflammation and attenuation of intimal hyperplasia in a pig after coronary angioplasty. Angiology 2011, 62, 265–269.
  • Patel, A.; Fine, B.; Sandig, M.; Mequanint, K. Elastin biosynthesis: The missing link in tissue-engineered blood vessels. Cardiovasc. Res. 2006, 71, 40–49.
  • Rabkin, E.; Schoen, F. J. Cardiovascular tissue engineering. Cardiovasc. Pathol. 2002, 11, 305–317.
  • Walls, T.; Herden, T.; Haverich, A.; Mertsching, H. Influence of scaffold thickness and scaffold composition on bioartificial graft survival. Biomaterials 2003, 24, 1233–1239.
  • Willams, C.; Wick, T. Perfusion bioreactor for small diameter tissue engineered arteries. Tissue Eng. 2004, 10, 930–941.
  • Mitchell, S. L.; Niklason, L. E. Requirements for growing tissueengineered vascular grafts. Cardiovasc. Pathol. 2003, 12, 59–64.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.