Biomineralized Dipeptide Self-Assembled Hydrogel with Ultrahigh Mechanical Strength and Osteoinductivity for Bone Regeneration
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P. Seeberger | S. Bai | Jian Yin | Anhe Wang | Jieling Li | Linna Hao | Yafeng Jing | Qingquan Han | Qi Li | J. Fu | Sen Liang
[1] Shanmeng Lin,et al. Supramolecular Self-assembly in Living Cells. , 2022, Angewandte Chemie.
[2] C. Hall,et al. De novo design of peptides that coassemble into β sheet–based nanofibrils , 2021, Science advances.
[3] C. Hauser,et al. Scaffolds from Self-Assembling Tetrapeptides Support 3D Spreading, Osteogenic Differentiation, and Angiogenesis of Mesenchymal Stem Cells , 2021, Biomacromolecules.
[4] Yi Yan Yang,et al. Synthetic peptide hydrogels as 3D scaffolds for tissue engineering. , 2020, Advanced drug delivery reviews.
[5] S. Bai,et al. Role of Thermolysin in Catalytic-Controlled Self-Assembly of Fmoc-Dipeptides , 2020 .
[6] S. Bai,et al. Preparation of hydroxyapatite with high surface area and dispersity templated on calcium carbonate in dipeptide hydrogels , 2020 .
[7] W. Tremel,et al. Bone Scaffolds Based on Degradable Vaterite/PEG‐Composite Microgels , 2020, Advanced healthcare materials.
[8] Luyang Zhao,et al. Dipeptide Self-Assembled Hydrogels with Shear-Thinning and Instantaneously Self-Healing Properties Determined by Peptide Sequences. , 2020, ACS applied materials & interfaces.
[9] Xiaojun Zhao,et al. Designer Self‐Assembling Peptide Hydrogels to Engineer 3D Cell Microenvironments for Cell Constructs Formation and Precise Oncology Remodeling in Ovarian Cancer , 2020, Advanced science.
[10] Changsheng Liu,et al. Controllable Synthesis of Biomimetic Hydroxyapatite Nanorods with High Osteogenic Bioactivity. , 2020, ACS Biomaterials Science & Engineering.
[11] D. Nisbet,et al. Peptide Programmed Hydrogels as Safe Sanctuary Microenvironments for Cell Transplantation , 2019, Advanced Functional Materials.
[12] S. Bai,et al. Dipeptide Self-Assembled Hydrogels with Tunable Mechanical Properties and Degradability for 3D Bioprinting. , 2019, ACS applied materials & interfaces.
[13] P. Tao,et al. Enhancement of cardiac lymphangiogenesis by transplantation of CD34+VEGFR-3+ endothelial progenitor cells and sustained release of VEGF-C , 2019, Basic Research in Cardiology.
[14] S. Bai,et al. Fabrication of short peptide cages by interfacial self-assembly on CaCO3 templates , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[15] F. Liu,et al. Human umbilical cord mesenchymal stem cell derived exosomes encapsulated in functional peptide hydrogels promote cardiac repair. , 2019, Biomaterials science.
[16] Zhimou Yang,et al. Enzyme‐Instructed Self‐Assembly (EISA) and Hydrogelation of Peptides , 2019, Advanced materials.
[17] C. Mura,et al. Stimuli-Responsive, Pentapeptide, Nanofiber Hydrogel for Tissue Engineering. , 2019, Journal of the American Chemical Society.
[18] D. Schaubroeck,et al. Mineralization of gellan gum hydrogels with calcium and magnesium carbonates by alternate soaking in solutions of calcium/magnesium and carbonate ion solutions , 2018, Journal of tissue engineering and regenerative medicine.
[19] C. Parmenter,et al. Tunable Pentapeptide Self‐Assembled β‐Sheet Hydrogels , 2018, Angewandte Chemie.
[20] Yonghou Jiang,et al. Rational design of charged peptides that self-assemble into robust nanofibers as immune-functional scaffolds. , 2017, Acta biomaterialia.
[21] Xiaocen Dou,et al. Amino Acids and Peptide‐Based Supramolecular Hydrogels for Three‐Dimensional Cell Culture , 2017, Advanced materials.
[22] S. Bai,et al. Using porous CaCO3/hyaluronic acid nanocages to accommodate hydrophobic photosensitizer in aqueous media for photodynamic therapy , 2017 .
[23] A. N. Moore,et al. Self-Assembling Multidomain Peptide Nanofibers for Delivery of Bioactive Molecules and Tissue Regeneration , 2017, Accounts of chemical research.
[24] Fei Gao,et al. A Mineralized High Strength and Tough Hydrogel for Skull Bone Regeneration , 2017 .
[25] Ruirui Xing,et al. Peptide self-assembly: thermodynamics and kinetics. , 2016, Chemical Society reviews.
[26] L. Adler-Abramovich,et al. Fmoc-modified amino acids and short peptides: simple bio-inspired building blocks for the fabrication of functional materials. , 2016, Chemical Society reviews.
[27] A. Miller,et al. Osteogenic differentiation of human mesenchymal stem cells promotes mineralization within a biodegradable peptide hydrogel , 2016, Journal of tissue engineering.
[28] M. Stevens,et al. A materials science vision of extracellular matrix mineralization , 2016 .
[29] C. Farquharson,et al. Characterisation of matrix vesicles in skeletal and soft tissue mineralisation. , 2016, Bone.
[30] J. Fei,et al. Fabrication of Mesoporous Silica Nanoparticle with Well-Defined Multicompartment Structure as Efficient Drug Carrier for Cancer Therapy in Vitro and in Vivo. , 2016, ACS applied materials & interfaces.
[31] Junbai Li,et al. Gelatin-Assisted Synthesis of Vaterite Nanoparticles with Higher Surface Area and Porosity as Anticancer Drug Containers In Vitro. , 2016, ChemPlusChem.
[32] Jie Zhou,et al. Supramolecular Hydrogelators and Hydrogels: From Soft Matter to Molecular Biomaterials , 2015, Chemical reviews.
[33] Rein V. Ulijn,et al. Selection of Lineage Guiding Metabolites in Stem Cell Cultures , 2015 .
[34] W. Tremel,et al. Transformation of vaterite nanoparticles to hydroxycarbonate apatite in a hydrogel scaffold: relevance to bone formation. , 2015, Journal of materials chemistry. B.
[35] L. Serpell,et al. Modular Design of Self-Assembling Peptide-Based Nanotubes. , 2015, Journal of the American Chemical Society.
[36] Rui L Reis,et al. Natural‐Based Nanocomposites for Bone Tissue Engineering and Regenerative Medicine: A Review , 2015, Advanced materials.
[37] Joseph C Wenke,et al. Novel osteoinductive photo-cross-linkable chitosan-lactide-fibrinogen hydrogels enhance bone regeneration in critical size segmental bone defects. , 2014, Acta biomaterialia.
[38] M. Sogayar,et al. Bone Morphogenetic Proteins: structure, biological function and therapeutic applications. , 2014, Archives of biochemistry and biophysics.
[39] W. Tremel,et al. Designed peptides for biomineral polymorph recognition: a case study for calcium carbonate. , 2014, Journal of materials chemistry. B.
[40] T. Koji,et al. In situ tissue engineering with synthetic self-assembling peptide nanofiber scaffolds, PuraMatrix, for mucosal regeneration in the rat middle-ear , 2013, International journal of nanomedicine.
[41] Ralph Müller,et al. Low dose BMP-2 treatment for bone repair using a PEGylated fibrinogen hydrogel matrix. , 2013, Biomaterials.
[42] Tzu-Wei Wang,et al. Self-assembling functionalized nanopeptides for immediate hemostasis and accelerative liver tissue regeneration. , 2013, Nanoscale.
[43] R. Antolini,et al. Sub-micrometer vaterite containers: synthesis, substance loading, and release. , 2012, Angewandte Chemie.
[44] Yihua Loo,et al. Ultrasmall natural peptides self-assemble to strong temperature-resistant helical fibers in scaffolds suitable for tissue engineering , 2011 .
[45] S. Weiner,et al. Bone mineralization proceeds through intracellular calcium phosphate loaded vesicles: a cryo-electron microscopy study. , 2011, Journal of structural biology.
[46] Xuehai Yan,et al. Self-assembly and application of diphenylalanine-based nanostructures. , 2010, Chemical Society reviews.
[47] R. Tang,et al. Size effect of hydroxyapatite nanoparticles on proliferation and apoptosis of osteoblast-like cells. , 2009, Acta biomaterialia.
[48] Y. Levi-Kalisman,et al. Matrices of Acidic β‐Sheet Peptides as Templates for Calcium Phosphate Mineralization , 2008 .
[49] Andrew M. Smith,et al. Designing peptide based nanomaterials. , 2008, Chemical Society reviews.
[50] Xiaojun Zhao,et al. Temperature and pH effects on biophysical and morphological properties of self‐assembling peptide RADA16‐I , 2008, Journal of peptide science : an official publication of the European Peptide Society.
[51] A. Boccaccini,et al. Vaterite deposition on biodegradable polymer foam scaffolds for inducing bone-like hydroxycarbonate apatite coatings , 2007, Journal of materials science. Materials in medicine.
[52] Michelle Prevot,et al. Matrix polyelectrolyte microcapsules: new system for macromolecule encapsulation. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[53] D. Pochan,et al. Thermally reversible hydrogels via intramolecular folding and consequent self-assembly of a de novo designed peptide. , 2003, Journal of the American Chemical Society.
[54] S. Stupp,et al. Self-Assembly and Mineralization of Peptide-Amphiphile Nanofibers , 2001, Science.
[55] V. Rosen,et al. Bone morphogenetic protein-2 converts the differentiation pathway of C2C12 myoblasts into the osteoblast lineage [published erratum appears in J Cell Biol 1995 Feb;128(4):following 713] , 1994, The Journal of cell biology.
[56] M. Zaidi,et al. Extracellular Ca2+ sensing by the osteoclast. , 1993, Cell calcium.
[57] J O Hollinger,et al. The critical size defect as an experimental model to test bone repair materials. , 1990, The Journal of craniofacial surgery.