Skip to main content
Erschienen in: Aesthetic Plastic Surgery 5/2022

14.03.2022 | Original Article

The Effect of Ultrasonic Liposuction Energy Levels on Fat Graft Viability

verfasst von: İbrahim Giray Genç, Kemal Fındıkçıoğlu, Ali Sadioğlu, Ayhan Işık Erdal, Süheyla Esra Özkoçer, Çiğdem Elmas

Erschienen in: Aesthetic Plastic Surgery | Ausgabe 5/2022

Einloggen, um Zugang zu erhalten

Abstract

Background

The use of fat obtained from ultrasound-assisted liposuction is popular. However, no study has considered the effect of different energy levels on fat grafts.

Objectives

We hypothesized that different ultrasonic energy levels could change the fat graft viability.

Methods

Both flanks of 15 CD1 nude mice (30 experimental areas) were used, with experimental areas randomly distributed into five groups. Using different energy settings, fat grafts were obtained from a patient’s abdominoplasty material and applied to the mouse flank regions. Device settings were intermittent mode with 50% vibration amplitude in group 1, continuous mode with 50% vibration amplitude in group 2, intermittent mode with 90% vibration amplitude in group 3, and continuous mode with 90% vibration amplitude in group 4. The control group was grafted with fat obtained via the conventional method. After 6 weeks, all mice were sacrificed, and fat grafts were excised. Sections were stained with hematoxylin–eosin, Masson’s trichrome, and anti-perilipin A antibody.

Results

The perilipin A immunostaining result was lowest in group 4, indicating the lowest viable cell count (p < 0.01). There was no significant difference between groups for the other parameters (p > 0.05).

Conclusion

High ultrasonic energy may affect fat graft survival. If fat injection is planned, avoiding high energy settings (our recommendation is not to exceed 16 Watts.) should be considered. We also recommend increasing the vibration amplitude rather than switching from intermittent to continuous mode in body parts that are relatively resistant to liposuction.

No Level Assigned

This journal requires that authors assign a level of evidence to each submission to which Evidence-Based Medicine rankings are applicable. This excludes Review Articles, Book Reviews, and manuscripts that concern Basic Science, Animal Studies, Cadaver Studies, and Experimental Studies. For a full description of these Evidence-Based Medicine ratings, please refer to the Table of Contents or the online Instructions to Authors www.​springer.​com/​00266.
Literatur
1.
Zurück zum Zitat Neuber G (1910) Asepsis und kunstliche Blutleere. Verhandl Dtsch Ges Chir (Berl). 22:159 Neuber G (1910) Asepsis und kunstliche Blutleere. Verhandl Dtsch Ges Chir (Berl). 22:159
2.
Zurück zum Zitat Smith P, Adams WP Jr, Lipschitz AH et al (2006) Autologous human fat grafting: effect of harvesting and preparation techniques on adipocyte graft survival. Plast Reconstr Surg 117(6):1836–1844CrossRef Smith P, Adams WP Jr, Lipschitz AH et al (2006) Autologous human fat grafting: effect of harvesting and preparation techniques on adipocyte graft survival. Plast Reconstr Surg 117(6):1836–1844CrossRef
3.
Zurück zum Zitat Thanik VD, Chang CC, Lerman OZ et al (2009) A murine model for studying diffusely injected human fat. Plast Reconstr Surg 124(1):74–81CrossRef Thanik VD, Chang CC, Lerman OZ et al (2009) A murine model for studying diffusely injected human fat. Plast Reconstr Surg 124(1):74–81CrossRef
4.
Zurück zum Zitat Sidman RL (1956) The direct effect of insulin on organ cultures of brown fat. Anat Rec 124(4):723–739CrossRef Sidman RL (1956) The direct effect of insulin on organ cultures of brown fat. Anat Rec 124(4):723–739CrossRef
5.
Zurück zum Zitat Hiragun A, Sato M, Mitsui H (1980) Establishment of a clonal cell line that differentiates into adipose cells in vitro. In Vitro 16(8):685–693CrossRef Hiragun A, Sato M, Mitsui H (1980) Establishment of a clonal cell line that differentiates into adipose cells in vitro. In Vitro 16(8):685–693CrossRef
6.
Zurück zum Zitat Ullmann Y, Hyams M, Ramon Y, Beach D, Peled IJ, Lindenbaum ES (1998) Enhancing the survival of aspirated human fat injected into nude mice. Plast Reconstr Surg 101(7):1940–1944CrossRef Ullmann Y, Hyams M, Ramon Y, Beach D, Peled IJ, Lindenbaum ES (1998) Enhancing the survival of aspirated human fat injected into nude mice. Plast Reconstr Surg 101(7):1940–1944CrossRef
7.
Zurück zum Zitat Smith J, Kaminski MV Jr, Wolosewick J (2002) Use of human serum albumin to improve retention of autologous fat transplant. Plast Reconstr Surg 109(2):814–816CrossRef Smith J, Kaminski MV Jr, Wolosewick J (2002) Use of human serum albumin to improve retention of autologous fat transplant. Plast Reconstr Surg 109(2):814–816CrossRef
8.
Zurück zum Zitat Illouz YG (1988) Present results of fat injection. Aesthet Plast Surg 12(3):175–181CrossRef Illouz YG (1988) Present results of fat injection. Aesthet Plast Surg 12(3):175–181CrossRef
9.
Zurück zum Zitat Beran SJ (2004) Ultrasound-assisted lipoplasty. Aesthet Surg J 24(2):159–160CrossRef Beran SJ (2004) Ultrasound-assisted lipoplasty. Aesthet Surg J 24(2):159–160CrossRef
10.
Zurück zum Zitat Fodor PB (2004) Personal experience with ultrasound-assisted lipoplasty: a pilot study comparing ultrasound-assisted lipoplasty with traditional lipoplasty. Plast Reconstr Surg 113(6):1852–1854CrossRef Fodor PB (2004) Personal experience with ultrasound-assisted lipoplasty: a pilot study comparing ultrasound-assisted lipoplasty with traditional lipoplasty. Plast Reconstr Surg 113(6):1852–1854CrossRef
11.
Zurück zum Zitat Rohrich RJ, Beran SJ, Kenkel JM, Adams WP Jr, DiSpaltro F (1998) Extending the role of liposuction in body contouring with ultrasound-assisted liposuction. Plast Reconstr Surg 101(4):1090–1102CrossRef Rohrich RJ, Beran SJ, Kenkel JM, Adams WP Jr, DiSpaltro F (1998) Extending the role of liposuction in body contouring with ultrasound-assisted liposuction. Plast Reconstr Surg 101(4):1090–1102CrossRef
12.
Zurück zum Zitat Kenkel JM, Robinson JB Jr, Beran SJ et al (1998) The tissue effects of ultrasound-assisted lipoplasty. Plast Reconstr Surg 102(1):213–220CrossRef Kenkel JM, Robinson JB Jr, Beran SJ et al (1998) The tissue effects of ultrasound-assisted lipoplasty. Plast Reconstr Surg 102(1):213–220CrossRef
13.
Zurück zum Zitat Schafer ME, Hicok KC, Mills DC, Cohen SR, Chao JJ (2013) Acute adipocyte viability after third-generation ultrasound-assisted liposuction. Aesthet Surg J 33(5):698–704CrossRef Schafer ME, Hicok KC, Mills DC, Cohen SR, Chao JJ (2013) Acute adipocyte viability after third-generation ultrasound-assisted liposuction. Aesthet Surg J 33(5):698–704CrossRef
14.
Zurück zum Zitat Duscher D, Maan ZN, Luan A et al (2017) Ultrasound-assisted liposuction provides a source for functional adipose-derived stromal cells. Cytotherapy 19(12):1491–1500CrossRef Duscher D, Maan ZN, Luan A et al (2017) Ultrasound-assisted liposuction provides a source for functional adipose-derived stromal cells. Cytotherapy 19(12):1491–1500CrossRef
15.
Zurück zum Zitat Cimino WW (2001) Ultrasonic surgery: power quantification and efficiency optimization. Aesthet Surg J 21(3):233–241CrossRef Cimino WW (2001) Ultrasonic surgery: power quantification and efficiency optimization. Aesthet Surg J 21(3):233–241CrossRef
16.
Zurück zum Zitat Fisher C, Grahovac TL, Schafer ME, Shippert RD, Marra KG, Rubin JP (2013) Comparison of harvest and processing techniques for fat grafting and adipose stem cell isolation. Plast Reconstr Surg 132(2):351–361CrossRef Fisher C, Grahovac TL, Schafer ME, Shippert RD, Marra KG, Rubin JP (2013) Comparison of harvest and processing techniques for fat grafting and adipose stem cell isolation. Plast Reconstr Surg 132(2):351–361CrossRef
17.
Zurück zum Zitat Duscher D, Luan A, Rennert RC et al (2016) Suction assisted liposuction does not impair the regenerative potential of adipose derived stem cells. J Transl Med 14(1):126CrossRef Duscher D, Luan A, Rennert RC et al (2016) Suction assisted liposuction does not impair the regenerative potential of adipose derived stem cells. J Transl Med 14(1):126CrossRef
18.
19.
Zurück zum Zitat Kokai LE, Jones TL, Silowash R et al (2017) Optimization and standardization of the immunodeficient mouse model for assessing fat grafting outcomes. Plast Reconstr Surg 140(6):1185–1194CrossRef Kokai LE, Jones TL, Silowash R et al (2017) Optimization and standardization of the immunodeficient mouse model for assessing fat grafting outcomes. Plast Reconstr Surg 140(6):1185–1194CrossRef
20.
Zurück zum Zitat Ullmann Y, Shoshani O, Fodor A et al (2005) Searching for the favorable donor site for fat injection: in vivo study using the nude mice model. Dermatol Surg 31(10):1304–1307CrossRef Ullmann Y, Shoshani O, Fodor A et al (2005) Searching for the favorable donor site for fat injection: in vivo study using the nude mice model. Dermatol Surg 31(10):1304–1307CrossRef
21.
Zurück zum Zitat Eto H, Kato H, Suga H et al (2012) The fate of adipocytes after nonvascularized fat grafting: evidence of early death and replacement of adipocytes. Plast Reconstr Surg 129(5):1081–1092CrossRef Eto H, Kato H, Suga H et al (2012) The fate of adipocytes after nonvascularized fat grafting: evidence of early death and replacement of adipocytes. Plast Reconstr Surg 129(5):1081–1092CrossRef
22.
Zurück zum Zitat Rohrich RJ, Morales DE, Krueger JE et al (2000) Comparative lipoplasty analysis of in vivo-treated adipose tissue. Plast Reconstr Surg 105(6):2152–2158CrossRef Rohrich RJ, Morales DE, Krueger JE et al (2000) Comparative lipoplasty analysis of in vivo-treated adipose tissue. Plast Reconstr Surg 105(6):2152–2158CrossRef
23.
Zurück zum Zitat Panetta NJ, Gupta DM, Kwan MD, Wan DC, Commons GW, Longaker MT (2009) Tissue harvest by means of suction-assisted or third-generation ultrasound-assisted lipoaspiration has no effect on osteogenic potential of human adipose-derived stromal cells. Plast Reconstr Surg 124(1):65–73CrossRef Panetta NJ, Gupta DM, Kwan MD, Wan DC, Commons GW, Longaker MT (2009) Tissue harvest by means of suction-assisted or third-generation ultrasound-assisted lipoaspiration has no effect on osteogenic potential of human adipose-derived stromal cells. Plast Reconstr Surg 124(1):65–73CrossRef
24.
Zurück zum Zitat Hoyos A, Prendergeist P (2016) High definition body sculpting. Springer, Berlin Hoyos A, Prendergeist P (2016) High definition body sculpting. Springer, Berlin
25.
Zurück zum Zitat Jewell ML, Fodor PB, de Souza Pinto EB, Al Shammari MA (2002) Clinical application of VASER-assisted lipoplasty: a pilot clinical study. Aesthet Surg J 22(2):131–146CrossRef Jewell ML, Fodor PB, de Souza Pinto EB, Al Shammari MA (2002) Clinical application of VASER-assisted lipoplasty: a pilot clinical study. Aesthet Surg J 22(2):131–146CrossRef
26.
Zurück zum Zitat de Souza Pinto EB, Abdala PCDSP, Maciel CM, dos Santos FDPT, de Souza RPM (2006) Liposuction and VASER. Clin Plast Surg 33(1):107–115 de Souza Pinto EB, Abdala PCDSP, Maciel CM, dos Santos FDPT, de Souza RPM (2006) Liposuction and VASER. Clin Plast Surg 33(1):107–115
27.
Zurück zum Zitat Pu LL, Cui X, Fink BF, Cibull ML, Gao D (2005) The viability of fatty tissues within adipose aspirates after conventional liposuction: a comprehensive study. Ann Plast Surg 54(3):288–292PubMed Pu LL, Cui X, Fink BF, Cibull ML, Gao D (2005) The viability of fatty tissues within adipose aspirates after conventional liposuction: a comprehensive study. Ann Plast Surg 54(3):288–292PubMed
28.
Zurück zum Zitat Ferguson RE, Cui X, Fink BF, Vasconez HC, Pu LL (2008) The viability of autologous fat grafts harvested with the LipiVage system: a comparative study. Ann Plast Surg 60(5):594–597CrossRef Ferguson RE, Cui X, Fink BF, Vasconez HC, Pu LL (2008) The viability of autologous fat grafts harvested with the LipiVage system: a comparative study. Ann Plast Surg 60(5):594–597CrossRef
29.
Zurück zum Zitat Nishimura S, Manabe I, Nagasaki M et al (2007) Adipogenesis in obesity requires close interplay between differentiating adipocytes, stromal cells, and blood vessels. Diabetes 56(6):1517–1526CrossRef Nishimura S, Manabe I, Nagasaki M et al (2007) Adipogenesis in obesity requires close interplay between differentiating adipocytes, stromal cells, and blood vessels. Diabetes 56(6):1517–1526CrossRef
30.
Zurück zum Zitat Coleman SR, Mazzola RF (2009) Fat injection: from filling to regeneration. Quality medical publishing, St. Louis Coleman SR, Mazzola RF (2009) Fat injection: from filling to regeneration. Quality medical publishing, St. Louis
31.
Zurück zum Zitat Merrifield BA, Chang A, Hostetter G, Komorowska-Timek E (2018) Volume retention, metabolism, and cellular composition of human fat xenografts. Plast Reconstr Surg Global Open 6(8):e1869CrossRef Merrifield BA, Chang A, Hostetter G, Komorowska-Timek E (2018) Volume retention, metabolism, and cellular composition of human fat xenografts. Plast Reconstr Surg Global Open 6(8):e1869CrossRef
32.
Zurück zum Zitat Pu LL, Cui X, Fink BF, Cibull ML, Gao D (2004) Long-term preservation of adipose aspirates after conventional lipoplasty. Aesthet Surg J 24(6):536–541CrossRef Pu LL, Cui X, Fink BF, Cibull ML, Gao D (2004) Long-term preservation of adipose aspirates after conventional lipoplasty. Aesthet Surg J 24(6):536–541CrossRef
33.
Zurück zum Zitat Shijun L, Khan R, Raza SHA et al (2020) Function and characterization of the promoter region of perilipin 1 (PLIN1): roles of E2F1, PLAG1, C/EBPβ, and SMAD3 in bovine adipocytes. Genomics 112(3):2400–2409CrossRef Shijun L, Khan R, Raza SHA et al (2020) Function and characterization of the promoter region of perilipin 1 (PLIN1): roles of E2F1, PLAG1, C/EBPβ, and SMAD3 in bovine adipocytes. Genomics 112(3):2400–2409CrossRef
34.
Zurück zum Zitat Suga H, Eto H, Aoi N et al (2010) Adipose tissue remodeling under ischemia: death of adipocytes and activation of stem/progenitor cells. Plast Reconstr Surg 126(6):1911–1923CrossRef Suga H, Eto H, Aoi N et al (2010) Adipose tissue remodeling under ischemia: death of adipocytes and activation of stem/progenitor cells. Plast Reconstr Surg 126(6):1911–1923CrossRef
Metadaten
Titel
The Effect of Ultrasonic Liposuction Energy Levels on Fat Graft Viability
verfasst von
İbrahim Giray Genç
Kemal Fındıkçıoğlu
Ali Sadioğlu
Ayhan Işık Erdal
Süheyla Esra Özkoçer
Çiğdem Elmas
Publikationsdatum
14.03.2022
Verlag
Springer US
Erschienen in
Aesthetic Plastic Surgery / Ausgabe 5/2022
Print ISSN: 0364-216X
Elektronische ISSN: 1432-5241
DOI
https://doi.org/10.1007/s00266-022-02824-8

Weitere Artikel der Ausgabe 5/2022

Aesthetic Plastic Surgery 5/2022 Zur Ausgabe

Update Chirurgie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.

S3-Leitlinie „Diagnostik und Therapie des Karpaltunnelsyndroms“

Karpaltunnelsyndrom BDC Leitlinien Webinare
CME: 2 Punkte

Das Karpaltunnelsyndrom ist die häufigste Kompressionsneuropathie peripherer Nerven. Obwohl die Anamnese mit dem nächtlichen Einschlafen der Hand (Brachialgia parästhetica nocturna) sehr typisch ist, ist eine klinisch-neurologische Untersuchung und Elektroneurografie in manchen Fällen auch eine Neurosonografie erforderlich. Im Anfangsstadium sind konservative Maßnahmen (Handgelenksschiene, Ergotherapie) empfehlenswert. Bei nicht Ansprechen der konservativen Therapie oder Auftreten von neurologischen Ausfällen ist eine Dekompression des N. medianus am Karpaltunnel indiziert.

Prof. Dr. med. Gregor Antoniadis
Berufsverband der Deutschen Chirurgie e.V.

S2e-Leitlinie „Distale Radiusfraktur“

Radiusfraktur BDC Leitlinien Webinare
CME: 2 Punkte

Das Webinar beschäftigt sich mit Fragen und Antworten zu Diagnostik und Klassifikation sowie Möglichkeiten des Ausschlusses von Zusatzverletzungen. Die Referenten erläutern, welche Frakturen konservativ behandelt werden können und wie. Das Webinar beantwortet die Frage nach aktuellen operativen Therapiekonzepten: Welcher Zugang, welches Osteosynthesematerial? Auf was muss bei der Nachbehandlung der distalen Radiusfraktur geachtet werden?

PD Dr. med. Oliver Pieske
Dr. med. Benjamin Meyknecht
Berufsverband der Deutschen Chirurgie e.V.

S1-Leitlinie „Empfehlungen zur Therapie der akuten Appendizitis bei Erwachsenen“

Appendizitis BDC Leitlinien Webinare
CME: 2 Punkte

Inhalte des Webinars zur S1-Leitlinie „Empfehlungen zur Therapie der akuten Appendizitis bei Erwachsenen“ sind die Darstellung des Projektes und des Erstellungswegs zur S1-Leitlinie, die Erläuterung der klinischen Relevanz der Klassifikation EAES 2015, die wissenschaftliche Begründung der wichtigsten Empfehlungen und die Darstellung stadiengerechter Therapieoptionen.

Dr. med. Mihailo Andric
Berufsverband der Deutschen Chirurgie e.V.