Logo image
Coactivation of Endogenous Wnt10b and Foxc2 by CRISPR Activation Enhances BMSC Osteogenesis and Promotes Calvarial Bone Regeneration
期刊文章   同儕審查

Coactivation of Endogenous Wnt10b and Foxc2 by CRISPR Activation Enhances BMSC Osteogenesis and Promotes Calvarial Bone Regeneration

Mu-Nung Hsu, Kai-Lun Huang, Fu-Jen Yu, Po-Liang Lai, Anh Vu Truong, Mei-Wei Lin, Nuong Thi Kieu Nguyen, Chih-Che Shen, Shiaw-Min Hwang, Yu-Han Chang, …
Molecular Therapy, 卷.28(2), 頁碼.441-451
02/2020
PMID: 31882321

摘要

baculovirus bone regeneration CRISPRa Foxc2 gene activation Wnt10b Molecular Medicine Molecular Biology Genetics Pharmacology Drug Discovery
The potential of CRISPR activation (CRISPRa) for tissue regeneration remains to be explored. Hsu et al. developed a CRISPRa system delivered by a hybrid baculovirus, which enabled robust and prolonged coactivation of Wnt10b and Foxc2 in stem cells, thereby promoting osteogenesis in vitro and improving bone healing in vivo. CRISPR activation (CRISPRa) is a burgeoning technology for programmable gene activation, but its potential for tissue regeneration has yet to be fully explored. Bone marrow-derived mesenchymal stem cells (BMSCs) can differentiate into osteogenic or adipogenic pathways, which are governed by the Wnt (Wingless-related integration site) signaling cascade. To promote BMSC differentiation toward osteogenesis and improve calvarial bone healing by BMSCs, we harnessed a highly efficient hybrid baculovirus vector for gene delivery and exploited a synergistic activation mediator (SAM)-based CRISPRa system to activate Wnt10b (that triggers the canonical Wnt pathway) and forkhead c2 (Foxc2) (that elicits the noncanonical Wnt pathway) in BMSCs. We constructed a Bac-CRISPRa vector to deliver the SAM-based CRISPRa system into rat BMSCs. We showed that Bac-CRISPRa enabled CRISPRa delivery and potently activated endogenous Wnt10b and Foxc2 expression in BMSCs for >14 days. Activation of Wnt10b or Foxc2 alone was sufficient to promote osteogenesis and repress adipogenesis in vitro. Furthermore, the robust and prolonged coactivation of both Wnt10b and Foxc2 additively enhanced osteogenic differentiation while inhibiting adipogenic differentiation of BMSCs. The CRISPRa-engineered BMSCs with activated Wnt10b and Foxc2 remarkably improved the calvarial bone healing after implantation into the critical-sized calvarial defects in rats. These data implicate the potentials of CRISPRa technology for bone tissue regeneration.

相關連結

指標

1 檢視次數

詳細資料

Logo image