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1.
Cell Rep Med ; 5(6): 101588, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38781961

ABSTRACT

Tibial cortex transverse distraction is a surgical method for treating severe diabetic foot ulcers (DFUs), but the underlying mechanism is unclear. We show that antioxidant proteins and small extracellular vesicles (sEVs) with multiple-tissue regenerative potential are released during bone transport (BT) in humans and rats. These vesicles accumulate in diabetic wounds and are enriched with microRNAs (miRNAs) (e.g., miR-494-3p) that have high regenerative activities that improve the circulation of ischemic lower limbs while also promoting neovascularization, fibroblast migration, and nerve fiber regeneration. Deletion of miR-494-3p in rats reduces the beneficial effects of BT on diabetic wounds, while hydrogels containing miR-494-3p and reduced glutathione (GSH) effectively repair them. Importantly, the ginsenoside Rg1 can upregulate miR-494-3p, and a randomized controlled trial verifies that the regimen of oral Rg1 and GSH accelerates wound healing in refractory DFU patients. These findings identify potential functional factors for tissue regeneration and suggest a potential therapy for DFUs.


Subject(s)
Wound Healing , Animals , Wound Healing/drug effects , Humans , Rats , Male , MicroRNAs/metabolism , MicroRNAs/genetics , Extracellular Vesicles/metabolism , Rats, Sprague-Dawley , Diabetic Foot/metabolism , Diabetic Foot/pathology , Diabetes Mellitus, Experimental/metabolism , Glutathione/metabolism , Middle Aged , Regeneration/drug effects , Female , Bone and Bones/metabolism
2.
Cell Signal ; 120: 111222, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38729327

ABSTRACT

BACKGROUND: Bone development involves the rapid proliferation and differentiation of osteogenic lineage cells, which makes accurate chromosomal segregation crucial for ensuring cell proliferation and maintaining chromosomal stability. However, the mechanism underlying the maintenance of chromosome stability during the rapid proliferation and differentiation of Prx1-expressing limb bud mesenchymal cells into osteoblastic precursor cells remains unexplored. METHODS: A transgenic mouse model of RanGAP1 knockout of limb and head mesenchymal progenitor cells was constructed to explore the impact of RanGAP1 deletion on bone development by histomorphology and immunostaining. Subsequently, G-banding karyotyping analysis and immunofluorescence staining were used to examine the effects of RanGAP1 deficiency on chromosome instability. Finally, the effects of RanGAP1 deficiency on chromothripsis and bone development signaling pathways were elucidated by whole-genome sequencing, RNA-sequencing, and qPCR. RESULTS: The ablation of RanGAP1 in limb and head mesenchymal progenitor cells expressing Prx1 in mice resulted in embryonic lethality, severe cartilage and bone dysplasia, and complete loss of cranial vault formation. Moreover, RanGAP1 loss inhibited chondrogenic or osteogenic differentiation of mesenchymal stem cells (MSCs). Most importantly, we found that RanGAP1 loss in limb bud mesenchymal cells triggered missegregation of chromosomes, resulting in chromothripsis of chromosomes 1q and 14q, further inhibiting the expression of key genes involved in multiple bone development signaling pathways such as WNT, Hedgehog, TGF-ß/BMP, and PI3K/AKT in the chromothripsis regions, ultimately disrupting skeletal development. CONCLUSIONS: Our results establish RanGAP1 as a critical regulator of bone development, as it supports this process by preserving chromosome stability in Prx1-expressing limb bud mesenchymal cells.


Subject(s)
Cell Differentiation , Chromosomal Instability , Limb Buds , Mesenchymal Stem Cells , Animals , Mice , Bone Development , Chondrogenesis/genetics , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Limb Buds/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Mice, Knockout , Osteogenesis/genetics , Signal Transduction
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