Controlling differentiation of stem cells via bioactive disordered cues.
Yujie ZhangMurielle RémyEvgeny K ApartsinEmilie ProuvéCécile FeuillieChristine LabrugèreNithavong CamMarie-Christine DurrieuPublished in: Biomaterials science (2023)
Ideal bone tissue engineering is to induce bone regeneration through the synergistic integration of biomaterial scaffolds, bone progenitor cells, and bone-forming factors. Biomimetic scaffolds imitate the native extracellular matrix (ECM) and are often utilized in vitro as analogues of the natural ECM to facilitate investigations of cell-ECM interactions and processes. In vivo , the cellular microenvironment has a crucial impact on regulating cell behavior and functions. A PET surface was activated and then functionalized with mimetic peptides to promote human mesenchymal stem cell (hMSC) adhesion and differentiation into an osteogenic lineage. Spray technology was used to randomly micropattern peptides (RGD and BMP-2 mimetic peptides) on the PET surface. The distribution of the peptides grafted on the surface, the roughness of the surfaces and the chemistry of the surfaces in each step of the treatment were ascertained by atomic force microscopy, fluorescence microscopy, time-of-flight secondary ion mass spectrometry, Toluidine Blue O assay, and X-ray photoelectron spectroscopy. Subsequently, cell lineage differentiation was evaluated by quantifying the expression of immunofluorescence markers: osteoblast markers (Runx-2, OPN) and osteocyte markers (E11, DMP1, and SOST). In this article, we hypothesized that a unique combination of bioactive micro/nanopatterns on a polymer surface improves the rate of morphology change and enhances hMSC differentiation. In DMEM, after 14 days, disordered micropatterned surfaces with RGD and BMP-2 led to a higher osteoblast marker expression than surfaces with a homogeneous dual peptide conjugation. Finally, hMSCs cultured in osteogenic differentiation medium (ODM) showed accelerated cell differentiation. In ODM, our results highlighted the expression of osteocyte markers when hMSCs were seeded on PET surfaces with random micropatterns.
Keyphrases
- bone regeneration
- tissue engineering
- extracellular matrix
- mesenchymal stem cells
- single cell
- stem cells
- cell therapy
- biofilm formation
- poor prognosis
- single molecule
- high resolution
- atomic force microscopy
- mass spectrometry
- computed tomography
- bone marrow
- high speed
- bone mineral density
- positron emission tomography
- umbilical cord
- amino acid
- magnetic resonance imaging
- pseudomonas aeruginosa
- escherichia coli
- magnetic resonance
- liquid chromatography
- body composition
- smoking cessation
- simultaneous determination
- high performance liquid chromatography
- cancer therapy
- drug delivery
- candida albicans
- dual energy
- molecular dynamics simulations
- gas chromatography