Angiogenic potential of gellan-gum-based hydrogels for application in nucleus pulposus regeneration: in vivo study.
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Hydrogel-based nanocomposites and mesenchymal stem cells: a promising synergistic strategy for neurodegenerative disorders therapyIn vivo biofunctional evaluation of hydrogels for disc regeneration.In Vitro and In Vivo Analysis of RTK Inhibitor Efficacy and Identification of Its Novel Targets in Glioblastomas.Intervertebral disc regeneration: from the degenerative cascade to molecular therapy and tissue engineering.Current concepts: tissue engineering and regenerative medicine applications in the ankle joint.Natural-based nanocomposites for bone tissue engineering and regenerative medicine: a review.Multi-Functional Macromers for Hydrogel Design in Biomedical Engineering and Regenerative Medicine.Management of knee osteoarthritis. Current status and future trends.Tissue engineering with gellan gum.Development of a morphogenetically active scaffold for three-dimensional growth of bone cells: biosilica-alginate hydrogel for SaOS-2 cell cultivation.Biocompatibility evaluation of ionic- and photo-crosslinked methacrylated gellan gum hydrogels: in vitro and in vivo study.Loss of WNK2 expression by promoter gene methylation occurs in adult gliomas and triggers Rac1-mediated tumour cell invasiveness.Anti-angiogenic potential of VEGF blocker dendron loaded on to gellan gum hydrogels for tissue engineering applications.Rheological and mechanical properties of acellular and cell-laden methacrylated gellan gum hydrogels.Tumor Growth Suppression Induced by Biomimetic Silk Fibroin Hydrogels.Synthesis and Characterization of Injectable Sulfonate-Containing Hydrogels.Design of Polymeric Culture Substrates to Promote Proangiogenic Potential of Stem Cells.Monocarboxylate transporter 1 is a key player in glioma-endothelial cell crosstalk.Biological performance of cell-encapsulated methacrylated gellan gum-based hydrogels for nucleus pulposus regeneration.Current strategies for treatment of intervertebral disc degeneration: substitution and regeneration possibilitiesGellan Gum-based Hydrogels for Tissue Engineering ApplicationsRecent progress in gellan gum hydrogels provided by functionalization strategiesGellan gum-coated gold nanorods: an intracellular nanosystem for bone tissue engineering
P2860
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P2860
Angiogenic potential of gellan-gum-based hydrogels for application in nucleus pulposus regeneration: in vivo study.
description
2012 nî lūn-bûn
@nan
2012年の論文
@ja
2012年学术文章
@wuu
2012年学术文章
@zh
2012年学术文章
@zh-cn
2012年学术文章
@zh-hans
2012年学术文章
@zh-my
2012年学术文章
@zh-sg
2012年學術文章
@yue
2012年學術文章
@zh-hant
name
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@en
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@nl
type
label
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@en
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@nl
prefLabel
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@en
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@nl
P50
P1476
Angiogenic potential of gellan ...... s regeneration: in vivo study.
@en
P304
P356
10.1089/TEN.TEA.2011.0632
P50
P577
2012-05-08T00:00:00Z