Tricarboxylic Acid Cycle Metabolite-Coordinated Biohydrogels Augment Cranial Bone Regeneration Through Neutrophil-Stimulated Mesenchymal Stem Cell Recruitment and Histone Acetylation-Mediated Osteogenesis.
Tingjun LiuZiying YouFangyuan ShenPuying YangJunyu ChenShuhuai MengChenglin WangDing XiongChengjia YouZhenming WangYu ShiLing YePublished in: ACS applied materials & interfaces (2024)
Cranial bone defects remain a major clinical challenge, increasing patients' life burdens. Tricarboxylic acid (TCA) cycle metabolites play crucial roles in facilitating bone tissue regeneration. However, the development of TCA cycle metabolite-modified biomimetic grafts for skull bone regeneration still needs to be improved. The mechanism underlying the release of TCA cycle metabolites from biomaterials in regulating immune responses and mesenchymal stem cell (MSC) fate (migration and differentiation) remains unknown. Herein, this work constructs biomimetic hydrogels composed of gelatin and chitosan networks covalently cross-linked by genipin (CGG hydrogels). A series of TCA cycle metabolite-coordinated CGG hydrogels with strong mechanical and antiswelling performances are subsequently developed. Remarkably, the citrate (Na 3 Cit, Cit)-coordinated CGG hydrogels (CGG-Cit hydrogels) with the highest mechanical modulus and strength significantly promote skull bone regeneration in rat and murine cranial defects. Mechanistically, using a transgenic mouse model, bulk RNA sequencing, and single-cell RNA sequencing, this work demonstrates that CGG-Cit hydrogels promote Gli1 + MSC migration via neutrophil-secreted oncostatin M. Results also indicate that citrate improves osteogenesis via enhanced histone H3K9 acetylation on osteogenic master genes. Taken together, the immune microenvironment- and MSC fate-regulated CGG-Cit hydrogels represent a highly efficient and facile approach toward skull bone tissue regeneration with great potential for bench-to-bedside translation.
Keyphrases
- bone regeneration
- hyaluronic acid
- drug delivery
- tissue engineering
- wound healing
- single cell
- drug release
- mesenchymal stem cells
- highly efficient
- extracellular matrix
- stem cells
- mouse model
- immune response
- bone marrow
- end stage renal disease
- newly diagnosed
- oxidative stress
- chronic kidney disease
- genome wide
- rna seq
- ejection fraction
- quantum dots
- high throughput
- transcription factor
- gene expression
- dendritic cells
- reduced graphene oxide
- gold nanoparticles