Cryoprinting of Nanoparticle-Enhanced Injectable Hydrogel with Shape-Memory Properties

[1]  D. Kaplan,et al.  Intraarticularly injectable silk hydrogel microspheres with enhanced mechanical and structural stability to attenuate osteoarthritis. , 2022, Biomaterials.

[2]  Zunfeng Liu,et al.  A Protein‐Like Nanogel for Spinning Hierarchically Structured Artificial Spider Silk , 2022, Advanced materials.

[3]  Peiran Li,et al.  High‐Strength and Injectable Supramolecular Hydrogel Self‐Assembled by Monomeric Nucleoside for Tooth‐Extraction Wound Healing , 2022, Advanced materials.

[4]  G. Stemme,et al.  3D Microvascularized Tissue Models by Laser‐Based Cavitation Molding of Collagen , 2022, Advanced materials.

[5]  Soojin Park,et al.  Effect of graphene oxide/graphitic nanofiber nanohybrids on interfacial properties and fracture toughness of carbon fibers-reinforced epoxy matrix composites , 2021, Composites Part B: Engineering.

[6]  Yilong Cheng,et al.  Highly Stretchable Nanocomposite Hydrogels with Outstanding Antifatigue Fracture Based on Robust Noncovalent Interactions for Wound Healing , 2021, Chemistry of Materials.

[7]  Zhongtang Liu,et al.  Facile extrusion 3D printing of gelatine methacrylate/Laponite nanocomposite hydrogel with high concentration nanoclay for bone tissue regeneration. , 2021, International journal of biological macromolecules.

[8]  Xiaolong Li,et al.  Enzymatically crosslinked silk-nanosilicate reinforced hydrogel with dual-lineage bioactivity for osteochondral tissue engineering. , 2021, Materials science & engineering. C, Materials for biological applications.

[9]  K. Ito,et al.  Tough hydrogels with rapid self-reinforcement , 2021, Science.

[10]  Mingchao Zhang,et al.  Biomimetic Mechanically Enhanced Carbon Nanotube Fibers by Silk Fibroin Infiltration. , 2021, Small.

[11]  Jing Zhao,et al.  Modeling and characterization of shape memory properties and decays for 4D printed parts using stereolithography , 2021 .

[12]  Yuming Zhao,et al.  Injectable GelMA Cryogel Microspheres for Modularized Cell Delivery and Potential Vascularized Bone Regeneration. , 2021, Small.

[13]  J. Jansen,et al.  The molecular conformation of silk fibroin regulates osteogenic cell behavior by modulating the stability of the adsorbed protein-material interface , 2021, Bone Research.

[14]  Laura C. Andreae,et al.  Sulfonated cryogel scaffolds for focal delivery in ex-vivo brain tissue cultures. , 2021, Biomaterials.

[15]  A. Taubert,et al.  Sulfobetaine Cryogels for Preferential Adsorption of Methyl Orange from Mixed Dye Solutions , 2021, Polymers.

[16]  Yong Han,et al.  Injectable dry cryogels with excellent blood-sucking expansion and blood clotting to cease hemorrhage for lethal deep-wounds, coagulopathy and tissue regeneration , 2021 .

[17]  Quan-hong Yang,et al.  pH-Dependent Morphology Control of Cellulose Nanofiber/Graphene Oxide Cryogels. , 2020, Small.

[18]  Deniz A. Bölükbas,et al.  Extracellular‐Matrix‐Reinforced Bioinks for 3D Bioprinting Human Tissue , 2020, Advanced materials.

[19]  F. Dai,et al.  Self-contracting oxidized starch/gelatin hydrogel for noninvasive wound closure and wound healing , 2020 .

[20]  Nathaniel S. Hwang,et al.  Sequential growth factor releasing double cryogel system for enhanced bone regeneration. , 2020, Biomaterials.

[21]  L. Lona,et al.  Porous nanocellulose gels and foams: Breakthrough status in the development of scaffolds for tissue engineering , 2020, Materials Today.

[22]  K. Rhee,et al.  Amine-terminated chain-grafted nanodiamond/epoxy nanocomposites as interfacial materials: Thermal conductivity and fracture resistance , 2020 .

[23]  Jakob A Faber,et al.  Encoding multiple permanent shapes in 3D printed structures , 2020 .

[24]  B. D. Mattos,et al.  Plant Nanomaterials and Inspiration from Nature: Water Interactions and Hierarchically Structured Hydrogels , 2020, Advanced materials.

[25]  Anamika Singh,et al.  Exosome laden oxygen releasing antioxidant and antibacterial cryogel wound dressing OxOBand alleviate diabetic and infectious wound healing. , 2020, Biomaterials.

[26]  P. Bártolo,et al.  Aligned multi-walled carbon nanotubes with nanohydroxyapatite in a 3D printed polycaprolactone scaffold stimulates osteogenic differentiation. , 2020, Materials science & engineering. C, Materials for biological applications.

[27]  P. Buchwald,et al.  A Collagen Based Cryogel Bioscaffold that Generates Oxygen for Islet Transplantation , 2020, Advanced functional materials.

[28]  Jinrong Yao,et al.  Artificial ligament made from silk protein/ Laponite hybrid fibers. , 2020, Acta biomaterialia.

[29]  Ye Been Seo,et al.  Digital light processing 3D printed silk fibroin hydrogel for cartilage tissue engineering. , 2019, Biomaterials.

[30]  Zachary J. Rogers,et al.  Injectable Cryogels for Biomedical Applications. , 2019, Trends in biotechnology.

[31]  Yasamin A. Jodat,et al.  3D Printed Cartilage‐Like Tissue Constructs with Spatially Controlled Mechanical Properties , 2019, Advanced functional materials.

[32]  P. Coelho,et al.  Cell Therapy: Effect of Locally Injected Mesenchymal Stromal Cells Derived from Bone Marrow or Adipose Tissue on Bone Regeneration of Rat Calvarial Defects , 2019, Scientific Reports.

[33]  Sebastien G M Uzel,et al.  Biomanufacturing of organ-specific tissues with high cellular density and embedded vascular channels , 2019, Science Advances.

[34]  P. G. Campbell,et al.  3D bioprinting of collagen to rebuild components of the human heart , 2019, Science.

[35]  Bagrat Grigoryan,et al.  Multivascular networks and functional intravascular topologies within biocompatible hydrogels , 2019, Science.

[36]  Peter Y. Li,et al.  A new class of biological materials: Cell membrane-derived hydrogel scaffolds. , 2019, Biomaterials.

[37]  Angelo S. Mao,et al.  An injectable bone marrow–like scaffold enhances T cell immunity after hematopoietic stem cell transplantation , 2019, Nature Biotechnology.

[38]  Meik Neufurth,et al.  In Situ Polyphosphate Nanoparticle Formation in Hybrid Poly(vinyl alcohol)/Karaya Gum Hydrogels: A Porous Scaffold Inducing Infiltration of Mesenchymal Stem Cells , 2018, Advanced science.

[39]  Yan-fang Zhou,et al.  Low-dose tubacin promotes BMSCs proliferation and morphological changes through the ERK pathway. , 2019, American journal of translational research.

[40]  Junjie Zhu,et al.  Inflammatory Cytokine TNFα Promotes the Long-Term Expansion of Primary Hepatocytes in 3D Culture , 2018, Cell.

[41]  M. Yassin,et al.  Coating 3D Printed Polycaprolactone Scaffolds with Nanocellulose Promotes Growth and Differentiation of Mesenchymal Stem Cells. , 2018, Biomacromolecules.

[42]  Boguang Yang,et al.  Correction to Injectable Fullerenol/Alginate Hydrogel for Suppression of Oxidative Stress Damage in Brown Adipose-Derived Stem Cells and Cardiac Repair. , 2018, ACS nano.

[43]  Wenwen Huang,et al.  Silkworm silk-based materials and devices generated using bio-nanotechnology. , 2018, Chemical Society reviews.

[44]  P. Ma,et al.  Injectable antibacterial conductive nanocomposite cryogels with rapid shape recovery for noncompressible hemorrhage and wound healing , 2018, Nature Communications.

[45]  Dong-Woo Cho,et al.  3D cell printing of in vitro stabilized skin model and in vivo pre-vascularized skin patch using tissue-specific extracellular matrix bioink: A step towards advanced skin tissue engineering. , 2018, Biomaterials.

[46]  Ok Joo Lee,et al.  Precisely printable and biocompatible silk fibroin bioink for digital light processing 3D printing , 2018, Nature Communications.

[47]  Mingzheng Peng,et al.  Impact of bone marrow mesenchymal stem cell immunomodulation on the osteogenic effects of laponite , 2018, Stem Cell Research & Therapy.

[48]  Boguang Yang,et al.  Injectable Fullerenol/Alginate Hydrogel for Suppression of Oxidative Stress Damage in Brown Adipose-Derived Stem Cells and Cardiac Repair. , 2017, ACS nano.

[49]  Xinxin Zhang,et al.  Repair of bone defects with prefabricated vascularized bone grafts and double-labeled bone marrow-derived mesenchymal stem cells in a rat model , 2017, Scientific Reports.

[50]  Ashok Kumar,et al.  Development of polymer based cryogel matrix for transportation and storage of mammalian cells , 2017, Scientific Reports.

[51]  Chih-Hao Chen,et al.  Dual Function of Glucosamine in Gelatin/Hyaluronic Acid Cryogel to Modulate Scaffold Mechanical Properties and to Maintain Chondrogenic Phenotype for Cartilage Tissue Engineering , 2016, International journal of molecular sciences.

[52]  M. Darabi,et al.  Highly Flexible and Resilient Elastin Hybrid Cryogels with Shape Memory, Injectability, Conductivity, and Magnetic Responsive Properties , 2016, Advanced materials.

[53]  Bowen Zhu,et al.  Silk Fibroin for Flexible Electronic Devices , 2016, Advanced materials.

[54]  Z. Shao,et al.  Enhancing the Gelation and Bioactivity of Injectable Silk Fibroin Hydrogel with Laponite Nanoplatelets. , 2016, ACS applied materials & interfaces.

[55]  Manish K Jaiswal,et al.  Bioactive nanoengineered hydrogels for bone tissue engineering: a growth-factor-free approach. , 2015, ACS nano.

[56]  Chuan Wang,et al.  Preparation of Laponite Bioceramics for Potential Bone Tissue Engineering Applications , 2014, PloS one.

[57]  J. Lewis,et al.  3D Bioprinting of Vascularized, Heterogeneous Cell‐Laden Tissue Constructs , 2014, Advanced materials.

[58]  David J Mooney,et al.  Injectable, porous, and cell-responsive gelatin cryogels. , 2014, Biomaterials.

[59]  D. Kaplan,et al.  Materials fabrication from Bombyx mori silk fibroin , 2011, Nature Protocols.

[60]  Anna Sarnowska,et al.  The performance of laminin-containing cryogel scaffolds in neural tissue regeneration. , 2011, Biomaterials.

[61]  K. Kar,et al.  Synthesis and characterization of elastic and macroporous chitosan-gelatin cryogels for tissue engineering. , 2009, Acta biomaterialia.

[62]  Randolph V Lewis,et al.  A protocol for the production of recombinant spider silk-like proteins for artificial fiber spinning , 2009, Nature Protocols.