Literature DB >> 23405887

Two-dimensional nanostructure-reinforced biodegradable polymeric nanocomposites for bone tissue engineering.

Gaurav Lalwani1, Allan M Henslee, Behzad Farshid, Liangjun Lin, F Kurtis Kasper, Yi-Xian Qin, Antonios G Mikos, Balaji Sitharaman.   

Abstract

This study investigates the efficacy of two-dimensional (2D) carbon and inorganic nanostructures as reinforcing agents for cross-linked composites of the biodegradable and biocompatible polymer polypropylene fumarate (PPF) as a function of nanostructure concentration. PPF composites were reinforced using various 2D nanostructures: single- and multiwalled graphene oxide nanoribbons (SWGONRs, MWGONRs), graphene oxide nanoplatelets (GONPs), and molybdenum disulfide nanoplatelets (MSNPs) at 0.01-0.2 weight% concentrations. Cross-linked PPF was used as the baseline control, and PPF composites reinforced with single- or multiwalled carbon nanotubes (SWCNTs, MWCNTs) were used as positive controls. Compression and flexural testing show a significant enhancement (i.e., compressive modulus = 35-108%, compressive yield strength = 26-93%, flexural modulus = 15-53%, and flexural yield strength = 101-262% greater than the baseline control) in the mechanical properties of the 2D-reinforced PPF nanocomposites. MSNP nanocomposites consistently showed the highest values among the experimental or control groups in all the mechanical measurements. In general, the inorganic nanoparticle MSNP showed a better or equivalent mechanical reinforcement compared to carbon nanomaterials, and 2D nanostructures (GONPs, MSNPs) are better reinforcing agents compared to one-dimensional (1D) nanostructures (e.g., SWCNTs). The results also indicated that the extent of mechanical reinforcement is closely dependent on the nanostructure morphology and follows the trend nanoplatelets > nanoribbons > nanotubes. Transmission electron microscopy of the cross-linked nanocomposites indicated good dispersion of nanomaterials in the polymer matrix without the use of a surfactant. The sol-fraction analysis showed significant changes in the polymer cross-linking in the presence of MSNP (0.01-0.2 wt %) and higher loading concentrations of GONP and MWGONR (0.1-0.2 wt %). The analysis of surface area and aspect ratio of the nanostructures taken together with the above results indicated differences in nanostructure architecture (2D vs 1D nanostructures), and the chemical compositions (inorganic vs carbon nanostructures), number of functional groups, and structural defects for the 2D nanostructures may be key properties that affect the mechanical properties of 2D nanostructure-reinforced PPF nanocomposites and the reason for the enhanced mechanical properties compared to the controls.

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Year:  2013        PMID: 23405887      PMCID: PMC3601907          DOI: 10.1021/bm301995s

Source DB:  PubMed          Journal:  Biomacromolecules        ISSN: 1525-7797            Impact factor:   6.988


  43 in total

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  42 in total

1.  Biocompatibility of tungsten disulfide inorganic nanotubes and fullerene-like nanoparticles with salivary gland cells.

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Journal:  Tissue Eng Part A       Date:  2014-12-19       Impact factor: 3.845

2.  In vitro cytocompatibility of one-dimensional and two-dimensional nanostructure-reinforced biodegradable polymeric nanocomposites.

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Journal:  J Biomed Mater Res A       Date:  2014-11-19       Impact factor: 4.396

Review 3.  Assessing and Mitigating the Hazard Potential of Two-Dimensional Materials.

Authors:  Linda M Guiney; Xiang Wang; Tian Xia; André E Nel; Mark C Hersam
Journal:  ACS Nano       Date:  2018-06-18       Impact factor: 15.881

4.  The biocompatibility of calcium phosphate cements containing alendronate-loaded PLGA microparticles in vitro.

Authors:  Yu-Hua Li; Zhen-Dong Wang; Wei Wang; Chang-Wei Ding; Hao-Xuan Zhang; Jian-Min Li
Journal:  Exp Biol Med (Maywood)       Date:  2015-04-14

5.  Porous three-dimensional carbon nanotube scaffolds for tissue engineering.

Authors:  Gaurav Lalwani; Anu Gopalan; Michael D'Agati; Jeyantt Srinivas Sankaran; Stefan Judex; Yi-Xian Qin; Balaji Sitharaman
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Review 6.  Is graphene a promising nano-material for promoting surface modification of implants or scaffold materials in bone tissue engineering?

Authors:  Ming Gu; Yunsong Liu; Tong Chen; Feng Du; Xianghui Zhao; Chunyang Xiong; Yongsheng Zhou
Journal:  Tissue Eng Part B Rev       Date:  2014-02-27       Impact factor: 6.389

7.  In Vitro Bioactivity of One- and Two-Dimensional Nanoparticle-Incorporated Bone Tissue Engineering Scaffolds.

Authors:  Jason T Rashkow; Gaurav Lalwani; Balaji Sitharaman
Journal:  Tissue Eng Part A       Date:  2017-09-25       Impact factor: 3.845

Review 8.  Toxicology of graphene-based nanomaterials.

Authors:  Gaurav Lalwani; Michael D'Agati; Amit Mahmud Khan; Balaji Sitharaman
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9.  The effects of graphene nanostructures on mesenchymal stem cells.

Authors:  Yahfi Talukdar; Jason Rashkow; Gaurav Lalwani; Shruti Kanakia; Balaji Sitharaman
Journal:  Biomaterials       Date:  2014-03-25       Impact factor: 12.479

10.  Synthesis, Characterization, In Vitro Phantom Imaging, and Cytotoxicity of A Novel Graphene-Based Multimodal Magnetic Resonance Imaging - X-Ray Computed Tomography Contrast Agent.

Authors:  Gaurav Lalwani; Joe Livingston Sundararaj; Kenneth Schaefer; Terry Button; Balaji Sitharaman
Journal:  J Mater Chem B       Date:  2014-06-14       Impact factor: 6.331

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