Bacillus subtilis Modulated the Expression of Osteogenic Markers in a Human Osteoblast Cell Line.
Jerry Maria SojanCaterina LiciniFabio MarcheggianiOliana CarnevaliLuca TianoMonica Mattioli BelmonteFrancesca MaradonnaPublished in: Cells (2023)
Several in vivo trials have previously demonstrated the beneficial effects of the administration of various probiotic forms on bone health. In this study, we explored the potency of two probiotics, Bacillus subtilis and Lactococcus lactis , alone or in combination with vitamin D (VD), to modulate the transcription of genes involved in the ossification process in a human osteoblast cell line. Genes that mark the "osteoblast proliferation phase", such as RUNX2 , TGFB1 , and ALPL , "extracellular matrix (ECM) maturation", such as SPP1 and SPARC , as well as "ECM mineralization", such as BGN , BGLAP , and DCN , were all highly expressed in osteoblasts treated with B. subtilis extract. The observed increase in the transcription of the ALPL mRNA was further in agreement with its protein levels as observed by Western blot and immunofluorescence. Therefore, this higher transcription and translation of alkaline phosphatase in osteoblasts treated with the B. subtilis extract, indicated its substantial osteogenic impact on human osteoblasts. Although both the probiotic extracts showed no osteogenic synergy with VD, treatment with B. subtilis alone could increase the ECM mineralization, outperforming the effects of L. lactis and even VD. Furthermore, these results supported the validity of employing probiotic extracts rather than live cells to investigate the effects of probiotics in the in vitro systems.
Keyphrases
- bacillus subtilis
- extracellular matrix
- endothelial cells
- mesenchymal stem cells
- transcription factor
- bone marrow
- induced pluripotent stem cells
- oxidative stress
- pluripotent stem cells
- public health
- induced apoptosis
- cell death
- mental health
- risk assessment
- south africa
- gene expression
- long non coding rna
- dna methylation
- small molecule
- cell cycle arrest
- amino acid
- bone mineral density
- soft tissue
- lactic acid
- protein protein
- bone loss