An Injectable Hydrogel Composing Anti-Inflammatory and Osteogenic Therapy toward Bone Erosions Microenvironment Remodeling in Rheumatoid Arthritis.
Xingzhu LiuQin ZhangYi CaoZahid HussainMingsheng XuYuanshan LiuIsmat UllahZhongzhong LuAkiyoshi OsakaJun LinRenjun PeiPublished in: Advanced healthcare materials (2024)
Healing bone erosions in rheumatoid arthritis (RA) remains greatly challenging via biomaterial strategies. Given the unsuccessful innate bone erosion healing due to an inflammatory disorder, over-activated osteoclasts, and impaired osteoblasts differentiation, RA pathogenesis-guided engineering of an innovative hydrogel platform is needed for remodeling osteoimmune and osteogenic microenvironment of bone erosion healing. Herein, in situ adaptable and injectable interpenetrating polymer network (IPN) hydrogel is developed through an ingenious combination of a bio-orthogonal reaction between hyaluronic acid (HA) and collagen, along with effective electrostatic interactions leveraging bisphosphonate (BP)-functionalized HA macromers (HABP) and nanorod shaped zinc (Zn)-doped biphasic calcium phosphate (ZnBCP). IPN hydrogel exhibits exceptional adaptability to the local shape complexity at bone erosions, and by integrating ZnBCP and HABP, a multi-stage releasing platform is engineered, facilitating controlled cargo delivery for remodeling more anti-inflammatory M2 cells and reducing over-activated osteoclastic activities, thereby reconstructing the bone regeneration microenvironment. Sustainedly co-delivering multiple ions (calcium and phosphate) can display excellent osteogenic properties and be conducive to the bone formation process, by effects of osteogenesis-associated cell differentiation. Overall, the introduced bioactive IPN hydrogel therapy remodels the osteoimmune environment by synergistic pro-inflammation-resolving, osteogenesis, and anti-osteoclastic activities, displaying excellent bone reconstruction in the collagen-induced arthritis rabbit model.
Keyphrases
- hyaluronic acid
- bone regeneration
- rheumatoid arthritis
- tissue engineering
- bone mineral density
- anti inflammatory
- drug delivery
- bone loss
- mesenchymal stem cells
- wound healing
- soft tissue
- stem cells
- disease activity
- bone marrow
- oxidative stress
- high throughput
- postmenopausal women
- induced apoptosis
- interstitial lung disease
- cell therapy
- ankylosing spondylitis
- high resolution
- drug induced
- diabetic rats
- systemic sclerosis
- cancer therapy
- cell death
- high glucose
- endothelial cells
- replacement therapy