AI Article Synopsis

  • Natural polyamines play a crucial role in the differentiation of stem cells during skeletal development, with higher levels found in adipose-derived stem cells (ASC) compared to mature skeletal cells.
  • Research shows that polyamines like spermine (SPM) and spermidine (SPD) can protect ASC from oxidative DNA damage, particularly in relation to patient age and BMI.
  • The potential involvement of autophagy in the protective effects of polyamines suggests they could be valuable for regenerative medicine and cell-based therapies.

Article Abstract

According to previous research, natural polyamines exert a role in regulating cell committment and differentiation from stemness during skeletal development. In order to assess whether distinct polyamine patterns are associated with different skeletal cell types, primary cultures of stem cells, chondrocytes or osteoblasts were dedicated for HPLC analysis of intracellular polyamines. Spermine (SPM) and Spermidine (SPD) levels were higher in adipose derived stem cells (ASC) compared to mature skeletal cells, i.e. chondrocytes and osteoblasts, confirming the connection of polyamine content with stemness. To establish whether polyamines can protect ASC against oxidative DNA damage in a 3-D differentiation model, the level of γH2AX was measured by western blot, and found to correlate with age and BMI of patients. Addition of either polyamine to ASC was able to hinder DNA damage in the low micromolecular range, with marked reduction of γH2AX level at 10 µM SPM and 5 µM SPD. Molecular analysis of the mechanisms that might underlie the protective effect of polyamine supplementation evidences a possible involvement of autophagy. Altogether, these results support the idea that polyamines are able to manage both stem cell differentiation and cell oxidative damage, and therefore represent appealing tools for regenerative and cell based applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6776621PMC
http://dx.doi.org/10.1038/s41598-019-50543-zDOI Listing

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