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Oxygen-Generating Biomaterials for Translational Bone Regenerative Engineering

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Summary: Highly absorbent films based on alginate and Quince Seed Gum (QSG) were fabricated using ionic crosslinking. Tensile tests showed that crosslinking time and CaCl2 concentration affected the mechanical properties of the films, while glycerol had a limited effect. The swelling test demonstrated that the optimal crosslinking condition resulted in a high swelling degree due to the hydrophilic groups on QSG and repulsion forces between biopolymers. The addition of glycerol affected the contact angle, solubility, and water vapor transmission (WVT) of the films. Thermogravimetric analysis (TGA) revealed that crosslinking improved the thermal stability, but glycerol had a negative effect. These alginate-QSG films are promising for biomedical applications like wound healing and drug delivery.

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Advanced Electrospun Nanofibrous Stem Cell Niche for Bone Regenerative Engineering

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Regenerative Engineering Animal Models for Knee Osteoarthritis

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Stromal Vascular Fraction for Osteoarthritis of the Knee Regenerative Engineering

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3D-printed oxygen-releasing scaffolds improve bone regeneration in mice

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Methods for fabricating oxygen releasing biomaterials

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Oxygen and Drug-Carrying Periodic Mesoporous Organosilicas for Enhanced Cell Viability under Normoxic and Hypoxic Conditions

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Biodegradable polyphosphazenes for regenerative engineering

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In Situ 3D Bioprinting Living Photosynthetic Scaffolds for Autotrophic Wound Healing

Xiaocheng Wang et al.

Summary: In this study, living photosynthetic scaffolds were created using an in situ microfluidic-assisted 3D bioprinting technique. These scaffolds, incorporating oxygenic photosynthesis microalgae, were able to produce sustainable oxygen under light illumination, promoting cell proliferation, migration, and differentiation. When directly applied to diabetic wounds, these scaffolds significantly accelerated wound closure by alleviating hypoxia, increasing angiogenesis, and promoting extracellular matrix synthesis, suggesting a promising therapeutic strategy for tissue engineering applications.

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Hypoxia Inhibits Osteogenesis and Promotes Adipogenesis of Fibroblast-like Synoviocytes via Upregulation of Leptin in Patients with Rheumatoid Arthritis

Menglei Ding et al.

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Oxygen generating scaffolds regenerate critical size bone defects

Sanika Suvarnapathaki et al.

Summary: Recent innovations in bone tissue engineering have introduced biomaterials that generate oxygen to substitute vasculature. This study demonstrates a novel oxygen-generating tissue scaffold with predictable oxygen release kinetics and modular material properties. The scaffolds showed consistent tissue viability, metabolic activity, and osteogenic differentiation in both in vitro and in vivo experiments.

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Hypoxia-Inducible Factors Signaling in Osteogenesis and Skeletal Repair

Qiuyue Qin et al.

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Hnrnpk maintains chondrocytes survival and function during growth plate development via regulating Hif1α-glycolysis axis

Yuyu Chen et al.

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An endoperoxide-containing covalent organic framework as a singlet oxygen reservoir for cancer therapy

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Design and evaluation of ciprofloxacin loaded collagen chitosan oxygenating scaffold for skin tissue engineering

Satyavrat Tripathi et al.

Summary: The study fabricated an oxygen-releasing, ciprofloxacin-loaded collagen-chitosan scaffold for sustained oxygen delivery, showing potential in promoting wound healing in cell culture and in vivo studies. The scaffold exhibited suitable cell attachment and migration properties for fibroblasts, making it a promising candidate for skin tissue engineering.

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Fabrication of oxygen and calcium releasing microcarriers with different internal structures for bone tissue engineering: Solid filled versus hollow microparticles

Elham Mohseni-Vadeghani et al.

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Oxygen releasing materials: Towards addressing the hypoxia-related issues in tissue engineering

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Summary: One of the biggest challenges in tissue engineering is manufacturing macroscale cell-laden architectures that require adequate oxygen supply, which has led to the development of smart materials with oxygen-releasing capabilities and the emerging concept of combining biomaterials with algae. Future advancements in oxygen-supplying materials regulated by tissue microenvironments hold the potential to generate anatomic scale living constructs with improved cell survival, guided differentiation, and tissue-specific biofunctionality.

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Unlocking mammalian regeneration through hypoxia inducible factor one alpha signaling

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Dual cross-linked organic-inorganic hybrid hydrogels accelerate diabetic skin wound healing

Yuna Qian et al.

Summary: Limited treatment options are available for chronic non-self-healing diabetic wounds characterized by bacterial infection and hypoxic microenvironment. A multifunctional organic-inorganic hybrid hydrogel, SF/Hb/Ga, was developed to address these challenges. This hybrid hydrogel demonstrated antibacterial properties, promoted cell proliferation, and accelerated tissue repair phases, leading to complete healing of infected diabetic wounds in vivo within 15 days.

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Oxygen-Releasing Biomaterials: Current Challenges and Future Applications

Niels G. A. Willemen et al.

Summary: Oxygen plays a crucial role in the survival and function of mammalian cells, controlling cellular behavior through metabolic programming to impact processes like tissue regeneration and stem cell differentiation. Oxygen-releasing materials offer a novel strategy to control in vivo processes, providing innovative solutions in the fields of medicine and bioengineering.

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Discrepancies on the Role of Oxygen Gradient and Culture Condition on Mesenchymal Stem Cell Fate

Jay R. K. Samal et al.

Summary: Studies have shown that culturing MSCs in a low oxygen environment can upregulate stem cell markers and promote cell proliferation in an undifferentiated state. However, there is ambiguity in the results due to differences in oxygen gradients and culture conditions among different studies. This progress report focuses on conflicting findings related to the application of hypoxic conditions for improving MSC proliferation or differentiation, aiming to decipher the factors influencing MSC characteristics under hypoxia.

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Gelatin-CaO2/SAP/PLGA composite scaffold enhances the reparation of critical-sized cranial defects by promoting seed cell survival

Zhiming Zhang et al.

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Therapeutic oxygen delivery by perfluorocarbon-based colloids

Marie Pierre Krafft et al.

Summary: PFC-based O-2 nanoemulsions have shown efficacy in various medical applications, such as relieving hypoxia, protecting vital organs, enhancing cancer therapies, and promoting tissue regeneration. Advanced nanoemulsions with improved O-2 delivery mechanisms and stability have been designed, offering new possibilities in medical and biotechnological applications. Additional uses of PFC-based colloidal nanotherapeutics are being explored, including contrast diagnostic imaging, therapeutic energy delivery, and drug administration, expanding their potential in the medical field.

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F. S. Hosseini et al.

Summary: Regenerative engineering has developed novel biomaterials for treating critical-sized bone injuries, but limitations still exist. Osteoinductive scaffolds can enhance bone regeneration by stimulating stem cell differentiation, and inductive biomaterials include various materials like polymers and ceramics.

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Polyacrylamide-Sodium Alginate Hydrogel Releasing Oxygen and Vitamin C Promotes Bone Regeneration in Rat Skull Defects

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A First in Human Trial Implanting Microalgae Shows Safety of Photosynthetic Therapy for the Effective Treatment of Full Thickness Skin Wounds

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Naphthalene Endoperoxide Heterodimer Designed for Sustained Singlet Oxygen Release

Ziang Liu et al.

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Green oxygen power plants in the brain rescue neuronal activity

Suzan Oezugur et al.

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Cross-Talk Between Mesenchymal Stromal Cells (MSCs) and Endothelial Progenitor Cells (EPCs) in Bone Regeneration

Cyril Bouland et al.

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Oxygen-generating microparticles in chondrocytes-laden hydrogels by facile and versatile click chemistry strategy

Erlane de Sousa Araujo et al.

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Hayriye Ozcelik et al.

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In Situ Oxygen Generation Enhances the SCAP Survival in Hydrogel Constructs

T. Zou et al.

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Rita Lih-Ying Shin et al.

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Xuan Wang et al.

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Algae: A natural active material for biomedical applications

Danni Zhong et al.

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