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Guillot, P. V.

Publications and source records attributed to Guillot, P. V..

2 recordsLinked to original sources

Rejuvenated human amniotic fluid stem cells: a superior source of standardized induced mesenchymal stem cells for enhanced therapeutic applications

Human fetal mesenchymal stem cells (hfMSCs) present advantageous characteristics compared to their adult counterparts and have emerged as potent cells in the field of regenerative medicine. In the context of skeletal regeneration, human amniotic fluid stem cells (AFSCs) have been shown to improve the quality and structure of the bone extracellular matrix in an experimental model of severe osteogenesis imperfecta. However, primary hfMSCs undergo replicative senescence during in vitro expansion, along with a progressive decrease in plasticity and tissue repair potential. To overcome this challenge, we rejuvenated AFSC to pluripotency using non-integrative episomal reprogramming and subsequently re-derived the cells towards the mesoderm to obtain induced MSCs (iMSCs). We found that iMSCs have a slower proliferation rate compared to their parental cell line (40h{+/-}2h vs. 29h{+/-}5h) but retain the multipotency and differentiation potential characteristic of MSCs. Comparative genomic analysis revealed that iMSCs express higher levels of genes involved in maintaining stemness, cell signaling, adhesion and migration, as well as promoting osteoblast differentiation, whilst AFSC expressed higher levels of genes involved in cell proliferation. In addition, iMSCs secrete small extracellular vesicles (iEVs) that have the potential to stimulate fibroblast migration, a key process in tissue repair and wound healing. Together, these data suggest that resetting the epigenetic clock of primary hfMSCs may represent a promising strategy to address the limitations associated with primary cell use and enhance their therapeutic potential.

cell biology↗

Pleotropic effects of a recessive COL1A2 mutation occurring in a mouse model of severe osteogenesis imperfecta

Approximately 85-90% of individuals with Osteogenesis Imperfecta (OI) have dominant pathogenic variants in the COL1A1 or COL1A2 genes. This leads to decreased or abnormal Collagen type I production. Subsequently, bone formation is strongly reduced, causing bone fragility and liability to fractures throughout life. OI is clinically classified in 5 types with the severity ranging from mild to lethal depending on the gene and the type and location of the OI-causative variant and the subsequent effect on (pro) collagen type I synthesis. However, the specific effects on the phenotype and function of osteoblasts are not fully understood. To investigate this, the OI murine model was used, with the oim/oim (OIM) mice closest resembling severely deforming OI type 3 in humans. We showed that in OIM, COL1 mutation results in a multifactorial inhibition of the osteogenic differentiation and maturation as well as inhibition of osteoclastogenesis. The phenotype of differentiated OIM osteoblasts also differs from that of wild type mature osteoblasts, with upregulated oxidative cell stress and autophagy pathways, possibly in response to the intracellular accumulation of type I collagen mRNA. The extracellular accumulation of defective type I collagen fibres contributes to activation of the TGF-{beta} signalling pathway and activates the inflammatory pathway. These effects combine to destabilise the balance of bone turnover, increasing bone fragility. Together, these findings identify the complex mechanisms underlying OI bone fragility in the OIM model of severe OI and can potentially enable identification of clinically relevant endpoints to assess the efficacy of innovative pro-osteogenic treatment for patients with OI.

genetics↗