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We demonstrate that a composite surface of microgroove titanium (Ti) with immobilized fibronectin (FN) or bone sialoprotein II (BSP2) promotes osteoblastic differentiation and osteogenic transcription factor expression in human bone marrow-derived mesenchymal stem cells (MSCs). Comparisons made between smooth microgrooves, microgrooves with silanization and microgrooves with matrix protein (FN or BSP2)-immobilization Ti surfaces revealed a significant promotion of in vitro osteogenic activity and osteoblastic differentiation at various timelines of culture. An even more significant increase was verified on microgrooves with a matrix protein-immobilization Ti surface in 28 d time-dependent gene expression of the main osteogenic transcription factors, such as ARF4, FRA1, RUNX2, and OSX. As a result, a synergestic effect regarding the promotion of osteogenic transcription factor expression and osteoblastic differentiation in the matrix protein-microgroove Ti composite surface was confirmed. From a multiple regression analysis using various timelines of osteogenic culture as independent variables, day 13 was verified as the most prominent influential timeline for the promotion of osteoblastic differentiation induced by the matrix protein-microgroove Ti composite surface. The FN- or BSP2-microgroove Ti composite surface resulting from silanization can strongly induce the promotion of osteoblastic differentiation in human MSCs. The proposed surface is expected to be useful in the development of a variety of osteogenic biomaterial surfaces.
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http://dx.doi.org/10.1088/1748-6041/11/3/035020 | DOI Listing |
J Biomed Mater Res B Appl Biomater
September 2025
Fertility and Infertility Research Center, Health Technology Institute, Kermanshah University of Medical Sciences, Kermanshah, Iran.
In the current in vitro experiment, we fabricated and characterized placenta/platelet-rich plasma (PL/Pt) composite scaffolds and evaluated their effect on differentiating adipose stem cells (ASCs) into insulin-producing cells (IPCs) in vitro. The human placenta (PL) was decellularized (dPL), characterized, and digested in pepsin. PRP was extracted using a two-step centrifugation process and then freeze-dried.
View Article and Find Full Text PDFInt J Implant Dent
September 2025
Department of Periodontology, Center for Biomedical Education and Research (ZBAF), School of Dentistry, Faculty of Health, Witten/Herdecke University, Witten, Germany.
Background: Guided bone regeneration (GBR) relies on biocompatible membranes to support osteogenesis. 1,4-butanediol diglycidyl ether (BDDE)-crosslinked hyaluronic acid (xHyA) has shown promise in enhancing bone regeneration, yet its mechanisms remain unclear.
Objective: This study evaluates the osteogenic effects of xHyA-functionalized native pericardium collagen membrane (NPCM) and ribose-crosslinked collagen membrane (RCCM) using an airlift culture model with SaOS-2 cells.
Blood Adv
September 2025
Zhongnan Hospital of Wuhan University, Wuhan, China.
The role of inflammation in the regulation of acute myeloid leukemia (AML) and stressed hematopoiesis is significant, though the molecular mechanisms are not fully understood. Here, we found that mesenchymal stromal cells (MSCs) had dysregulated expression of the inflammatory cytokine S100A8 in AML. Upregulating S100A8 in MSCs increased the proliferation of AML cells in vitro.
View Article and Find Full Text PDFStem Cells Int
August 2025
Academy of Integrative Medicine, Fujian University of Traditional Chinese Medicine, Fuzhou 350122, Fujian, China.
Postmenopausal osteoporosis (PMOP) is a common bone metabolic disorder in middle-aged and elderly women, yet its pathogenesis remains unclear. This study investigates the effect of nuclear factor erythroid 2-related factor 2 (Nrf2) deficiency on bone homeostasis to provide insight into the mechanisms underlying PMOP. Sixteen female SD rats were randomly assigned to Sham and ovariectomized (OVX) groups.
View Article and Find Full Text PDFJOR Spine
September 2025
Spine Center, Department of Orthopaedics Changzheng Hospital, Naval Medical University (Second Military Medical University) Shanghai People's Republic of China.
Background: Ossification of the posterior longitudinal ligament (OPLL) is a pathological condition characterized by ectopic ossification of spinal ligaments, primarily driven by abnormal osteogenic differentiation of ligament fibroblasts with stem cell-like properties. The SOX transcription factor family is crucial in regulating cell stemness and differentiation. Among them, SOX8 is known to influence osteoblast differentiation, but its role in OPLL remains unclear.
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