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Cellulite-Behandlung mithilfe von Stammzellen und Stoßwellen

Was kann man mit physikalischen Methoden erreichen?

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ästhetische dermatologie & kosmetologie Aims and scope

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© Springer Medizin Verlag

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© Springer Medizin Verlag

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© Springer Medizin Verlag

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© Springer Medizin Verlag

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© Springer Medizin Verlag

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© K. Knobloch

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© K. Knobloch

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© Springer Medizin Verlag

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© K. Knobloch

Literatur

  1. Holfeld J et al. Toll-like receptor 3 signalling mediates angiogenic response upon shock wave treatment of ischaemic muscle. Cardiovasc Res 2016; 109: 331-43

  2. Zhang X et al. The dose-effect relationship in extracorporeal shock wave therapy: the optimal parameter for extracorporeal shock wave therapy. J Surg Res 2014; 186: 484-92

  3. Mazzola RF, Mazzola IC. History of fat grafting. From ram fat to stem cells. Clin Plast Surg 2015; 42: 147-53

  4. Coleman SR, Mazzola RF (Hrsg.). Fat injection. From filling to regeneration. Quality Medical Publishing, St. Louis 2009

  5. Rennekampff HO et al. Möglichkeiten und Grenzen der autologen Fetttransplantation - "Consensus Meeting" der DGPRÄC in Hannover, September 2009. Handchir Mikrochir Plast Chir 2010; 42: 137-42

  6. Rezek D. Stellenwert der autologen Fetttransplantation in der Brustheilkunde. J Ästhet Chir 2015; 8: 50-6

  7. Cehn YW et al. Effect of suction pressures on cell yield and functionality of the adipose-derived stromal vascular fraction. J Plast Reconstr Aesthet Surg 2017; 70: 257-66

  8. Raabe O et al. Effect of extracorporeal shock wave on proliferation and differentiation of equine adipose tissue-derived mesenchymal stem cells in vitro. Am J Stem Cells 2013; 2: 62-73

  9. Schuh CM et al. In vitro extracorporeal shock wave treatment enhancs stemness and preserves multipotency of rat and human adipose-derived stem cells. Cytotherapy 2014; 16: 1666-78

  10. Priglinger E et al. Improvement of adipose tissue-derived cells by low-energy extracorporeal shock wave therapy. Cytotherapy 2017; 19: 1079-95

  11. Priglinger E et al. Extracorporeal shock wave therapy in situ - novel approach to obtain activated fat graft. J Tissue Eng Regen Med 2018; 12: 416-26

  12. Priglinger E et al. The adipose tissue-derived stromal vascular fraction cells from lipedema patients: are they different? Cytotherapy 2017; 19: 849-60

  13. Cianfarani F et al. Diabetes impairs adipose tissue-derived stem cell function and efficiency in promoting wound healing. Wound Repair Regen 2013; 21: 545-53

  14. Siems W et al. Anti-fibrosclerotic effects of shock wave therapy in lipedema and cellulite. Biofactors 2005; 24: 275-82

  15. Knobloch K et al. Cellulite and focused extracorporeal shock wave therapy for non-invasive body contouring: a randomized trial. Dermatol Ther (Heidelb) 2013; 3: 143-55

  16. Knobloch K, Kramer R. Extracorporeal shock wave therapy (ESWT) for the treatment of cellulite - a metaanalysis. Int J Surg 2015; 24(Pt B): 210-7

  17. Hexsel D et al. Acoustic wav therapy for cellulite, body shaping and fat reduction. J Cosmet Laser Ther 2017; 19: 165-73

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Knobloch, K. Was kann man mit physikalischen Methoden erreichen?. ästhet dermatol kosmetol 13, 24–29 (2021). https://doi.org/10.1007/s12634-021-1460-x

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  • DOI: https://doi.org/10.1007/s12634-021-1460-x

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