Stem cell senescence. Effects of REAC technology on telomerase-independent and telomerase-dependent pathways
S Rinaldi1, M Maioli2, G Pigliaru3
11] Department of Regenerative Medicine, Rinaldi Fontani Institute, Viale Belfiore 43, 50144 Florence, Italy [2] Department of Anti Aging Medicine, Rinaldi Fontani Institute, Viale Belfiore 43, 50144 Florence, Italy [3] Research Department, Rinaldi Fontani Foundation NPO, Viale Belfiore 43, 50144 Florence, Italy [4].
Abstract:
Decline in the gene expression of senescence repressor Bmi1, and telomerase, together with telomere shortening, underlay senescence of stem cells cultured for multiple passages. Here, we investigated whether the impairment of senescence preventing mechanisms can be efficiently counteracted by exposure of human adipose-derived stem cells to radio electric asymmetrically conveyed fields by an innovative technology, named Radio Electric Asymmetric Conveyer (REAC). Due to REAC exposure, the number of stem cells positively stained for senescence associated β-galactosidase was significantly reduced along multiple culturing passages. After a 90-day culture, REAC-treated cells exhibited significantly higher transcription of Bmi1 and enhanced expression of other stem cell pluripotency genes and related proteins, compared to unexposed cells. Transcription of the catalytic telomerase subunit (TERT) was also increased in REAC-treated cells at all passages. Moreover, while telomere shortening occurred at early passages in both REAC-treated and untreated cells, a significant rescue of telomere length could be observed at late passages only in REAC-exposed cells. Thus, REAC-asymmetrically conveyed radio electric fields acted on a gene and protein expression program of both telomerase-independent and telomerase-dependent patterning to optimize stem cell ability to cope with senescence progression.
Insights
Radio Electric Asymmetric Conveyer (REAC) technology can counteract stem cell senescence by enhancing key gene expression and preserving telomere length during extended culturing. This innovative approach optimizes stem cell resilience against aging processes.
Area of Science:
- Biotechnology
- Stem Cell Biology
- Aging Research
Background:
- Stem cell senescence is linked to decreased Bmi1 and telomerase expression, and telomere shortening.
- Impaired senescence prevention mechanisms limit the long-term utility of stem cells in culture.
Purpose of the Study:
- To investigate if Radio Electric Asymmetric Conveyer (REAC) technology can counteract stem cell senescence.
- To evaluate the impact of REAC on stem cell gene expression, pluripotency, and telomere length.
Main Methods:
- Human adipose-derived stem cells were exposed to REAC fields across multiple passages.
- Senescence was assessed via β-galactosidase staining.
- Gene and protein expression of Bmi1, telomerase (TERT), and pluripotency markers were quantified.
- Telomere length was measured over 90 days of culture.
Main Results:
- REAC exposure significantly reduced senescence markers (β-galactosidase).
- REAC-treated cells showed increased Bmi1 transcription and pluripotency gene/protein expression.
- Telomerase reverse transcriptase (TERT) transcription was elevated in REAC-treated cells.
- REAC mitigated telomere shortening at late culture passages.
Conclusions:
- REAC technology effectively counteracts stem cell senescence.
- REAC influences both telomerase-dependent and independent pathways to maintain stem cell function.
- This technology enhances stem cell capacity to manage senescence progression.
Related Concept Videos
Replicative Cell Senescence
Replicative Cell Senescence
Telomeres and Telomerase
Telomeres and Telomerase
Replication in Eukaryotes
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
Replication in Eukaryotes


