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Published on: May 4, 2018
Comparison of the Anabolic Effects of Reported Osteogenic Compounds on Human Mesenchymal Progenitor-derived
Robert Owen1,2,3, Hossein Bahmaee1,2, Frederik Claeyssens1,2
1Department of Materials Science and Engineering, INSIGNEO Institute for in silico medicine, The Pam Liversidge Building, Sir Frederick Mappin Building, Mappin Street, Sheffield S1 3JD, UK.
Abstract:
There is variability in the reported effects of compounds on osteoblasts arising from differences in experimental design and choice of cell type/origin. This makes it difficult to discern a compound's action outside its original study and compare efficacy between compounds. Here, we investigated five compounds frequently reported as anabolic for osteoblasts (17β-estradiol (oestrogen), icariin, lactoferrin, lithium chloride, and menaquinone-4 (MK-4)) on human mesenchymal progenitors to assess their potential for bone tissue engineering with the aim of identifying a potential alternative to expensive recombinant growth factors such as bone morphogenetic protein 2 (BMP-2). Experiments were performed using the same culture conditions to allow direct comparison. The concentrations of compounds spanned two orders of magnitude to encompass the reported efficacious range and were applied continuously for 22 days. The effects on the proliferation (resazurin reduction and DNA quantification), osteogenic differentiation (alkaline phosphatase (ALP) activity), and mineralised matrix deposition (calcium and collagen quantification) were assessed. Of these compounds, only 10 µM MK-4 stimulated a significant anabolic response with 50% greater calcium deposition. Oestrogen and icariin had no significant effects, with the exception of 1 µM icariin, which increased the metabolic activity on days 8 and 22. 1000 µg/mL of lactoferrin and 10 mM lithium chloride both significantly reduced the mineralised matrix deposition in comparison to the vehicle control, despite the ALP activity being higher in lithium chloride-treated cells at day 15. This demonstrates that MK-4 is the most powerful stimulant of bone formation in hES-MPs of the compounds investigated, highlighting its potential in bone tissue engineering as a method of promoting bone formation, as well as its prospective use as an osteoporosis treatment.
Insights
Menaquinone-4 (MK-4) significantly enhanced bone formation in human mesenchymal progenitors, showing potential for bone tissue engineering and osteoporosis treatment. Other tested compounds like oestrogen and icariin had limited effects, while lactoferrin and lithium chloride were detrimental.
Area of Science:
- Biomaterials Science
- Cell Biology
- Regenerative Medicine
Background:
- Variability in osteoblast compound studies hinders direct comparison and efficacy assessment.
- Identifying cost-effective anabolic agents is crucial for bone tissue engineering, offering alternatives to growth factors like BMP-2.
Purpose of the Study:
- To investigate the anabolic potential of five frequently reported compounds on human mesenchymal progenitors.
- To directly compare the efficacy of 17β-estradiol, icariin, lactoferrin, lithium chloride, and menaquinone-4 (MK-4) under identical culture conditions.
Main Methods:
- Human mesenchymal progenitors were treated with compounds over a two-order magnitude concentration range for 22 days.
- Assessed proliferation (resazurin reduction, DNA), osteogenic differentiation (ALP activity), and mineralized matrix deposition (calcium, collagen).
Main Results:
- Only 10 µM MK-4 significantly stimulated bone formation, increasing calcium deposition by 50%.
- Oestrogen and icariin showed no significant anabolic effects; 1 µM icariin increased metabolic activity.
- Lactoferrin and lithium chloride reduced mineralized matrix deposition, despite increased ALP activity with lithium chloride.
Conclusions:
- MK-4 is the most potent stimulant of osteogenic differentiation among the tested compounds in human mesenchymal progenitors.
- MK-4 shows significant potential for bone tissue engineering applications and as a therapeutic agent for osteoporosis.
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