Integrating zinc/silicon dual ions with 3D-printed GelMA hydrogel promotes in situ hair follicle regeneration

被引:9
|
作者
Zhang, Fanliang [1 ]
Zhang, Zhaowenbin [2 ]
Duan, Xianlan [1 ]
Song, Wei [1 ]
Li, Zhao [1 ]
Yao, Bin [1 ]
Kong, Yi [1 ]
Huang, Xing [3 ]
Fu, Xiaobing [1 ]
Chang, Jiang [2 ,4 ]
Huang, Sha [1 ]
机构
[1] Peoples Liberat Army Gen Hosp, Res Ctr Tissue Repair & Regenerat, Med Innovat Res Dept, Beijing 100853, Peoples R China
[2] Univ Chinese Acad Sci, Wenzhou Inst, Wenzhou 325000, Zhejiang, Peoples R China
[3] Chinese Acad Sci, Tech Inst Phys & Chem, Key Lab Photochem Convers & Optoelect Mat, Beijing 100190, Peoples R China
[4] Chinese Acad Sci, Shanghai Inst Ceram, State Key Lab High Performance Ceram & Superfine M, Shanghai 200050, Peoples R China
基金
中国国家自然科学基金;
关键词
Zinc and silicon ions; 3D bioprinting; GelMA; Hair follicle regeneration; Angiogenesis; SKIN; ANGIOGENESIS; NEOGENESIS; NICHE; PROLIFERATION; FIBROBLASTS; ACTIVATION; INDUCTION; FATE;
D O I
10.18063/ijb.703
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The regeneration of hair follicles lost from injury or disease represents a major challenge in cutaneous regenerative medicine. In this study, we investigated the synergetic effects between zinc and silicon ions on dermal cells and screened the optimal concentration of ions for medical applications. We integrated zinc/silicon dual ions into gelatin methacryloyl (GelMA) to bioprint a scaffold and determined that its mechanical properties are suitable for biological treatment.Then, the scaffold was employed to treat mouse excisional model in order to promote in situ hair follicle regeneration. Our findings showed that GelMA-zinc/silicon-printed hydrogel can significantly activate hair follicle stem cells and enhance neovascularization. The beneficial effects of the scaffold were further confirmed by the growth of hairs in the center of wounds and the improvement in perfusion recovery. Taken together, the present study is the first to combine GelMA with zinc/silicon dual ions to bioprint in situ for treating excisional wound, and this approach may regulate hair follicle regeneration not only directly by impacting stem cells but also indirectly through promoting angiogenesis.
引用
收藏
页码:200 / 215
页数:16
相关论文
共 50 条
  • [31] MicroRNA-loaded 3D-Printed Hydrogel Scaffolds Towards Effective Neural Tissue Regeneration Following Spinal Cord Injuries
    Lau, K.
    Ramanujam, V. Srirangam
    Ju, W.
    Huang, C.
    Chew, S.
    TISSUE ENGINEERING PART A, 2023, 29 (9-10)
  • [32] Enhanced hyaline cartilage formation and continuous osteochondral regeneration via 3D-Printed heterogeneous hydrogel with multi-crosslinking inks
    Wu, Zhonglian
    Yao, Hang
    Sun, Haidi
    Gu, Zehao
    Hu, Xu
    Yang, Jian
    Shi, Junli
    Yang, Haojun
    Dai, Jihang
    Chong, Hui
    Wang, Dong -An
    Lin, Liwei
    Zhang, Wang
    MATERIALS TODAY BIO, 2024, 26
  • [33] Engineering 3D-printed core-shell hydrogel scaffolds reinforced with hybrid hydroxyapatite/polycaprolactone nanoparticles for in vivo bone regeneration
    El-Habashy, Salma E.
    El-Kamel, Amal H.
    Essawy, Marwa M.
    Abdelfattah, Elsayeda-Zeinab A.
    Eltaher, Hoda M.
    BIOMATERIALS SCIENCE, 2021, 9 (11) : 4019 - 4039
  • [34] Amyloid Nanofilm-Induced surface mineralization of 3D-Printed Polyetheretherketone scaffolds for in situ orbital bone regeneration and repair
    Huang, Xiaoming
    Li, Min
    Zhang, Shuting
    Pang, Yanyun
    Zhi, Cheng
    Chen, Zeyuan
    Wang, Hanqing
    Zhao, Sidi
    Zhang, Xu
    Wu, Tong
    MATERIALS & DESIGN, 2024, 248
  • [35] In situ magnesium phosphate/polycaprolactone 3D-printed scaffold induce bone regeneration in rabbit maxillofacial bone defect model
    Lei, Bocheng
    Gao, Xiaobo
    Zhang, Ran
    Yi, Xin
    Zhou, Qing
    MATERIALS & DESIGN, 2022, 215
  • [36] 3D-Printed Atsttrin-Incorporated Alginate/Hydroxyapatite Scaffold Promotes Bone Defect Regeneration with TNF/TNFR Signaling Involvement
    Wang, Quan
    Xia, Qingqing
    Wu, Yan
    Zhang, Xiaolei
    Wen, Feiqiu
    Chen, Xiaowen
    Zhang, Shufang
    Heng, Boon Chin
    He, Yong
    Ouyang, Hong-Wei
    ADVANCED HEALTHCARE MATERIALS, 2015, 4 (11) : 1701 - 1708
  • [37] 3D-Printed Extracellular Matrix/Polyethylene Glycol Diacrylate Hydrogel Incorporating the Anti-inflammatory Phytomolecule Honokiol for Regeneration of Osteochondral Defects
    Zhu, Shouan
    Chen, Pengfei
    Chen, Yang
    Li, Muzhi
    Chen, Can
    Lu, Hongbin
    AMERICAN JOURNAL OF SPORTS MEDICINE, 2020, 48 (11): : 2808 - 2818
  • [38] Sequential Therapy for Osteosarcoma and Bone Regeneration via Chemodynamic Effect and Cuproptosis Using a 3D-Printed Scaffold with TME-Responsive Hydrogel
    Xie, Dingqi
    Hu, Chuan
    Zhu, Yutao
    Yao, Jia
    Li, Jianyi
    Xia, Jiechao
    Ye, Lin
    Jin, Yang
    Jiang, Sicheng
    Hu, Tingting
    Lu, Jingwei
    Song, Honghai
    Tang, Pan
    Dai, Jiayong
    Xi, Yongming
    Hu, Zhijun
    SMALL, 2025, 21 (05)
  • [39] A 3D-printed grid-like hyaluronic acid based hydrogel loaded with deferoxamine as wound dressing promotes diabetic wound healing
    Yang, Hu
    Wang, Yong
    Li, Run
    Shen, Yi-Fan
    Zhou, Fei-Fei
    Tan, Wei-Qiang
    Wang, Yue
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 303
  • [40] 3D bioprinting of a gelatin-alginate hydrogel for tissue-engineered hair follicle regeneration (vol 165, pg 19, 2022)
    Kang, Deni
    Liu, Zhen
    Qian, Chuanmu
    Huang, Junfei
    Zhou, Yi
    Mao, Xiaoyan
    Qu, Qian
    Liu, Bingcheng
    Wang, Jin
    Hu, Zhiqi
    Miao, Yong
    ACTA BIOMATERIALIA, 2023, 165 : 197 - 199