The Preparation of the Recipient Site in Fat Grafting: A Comprehensive Review of the Preclinical Evidence.


Journal

Plastic and reconstructive surgery
ISSN: 1529-4242
Titre abrégé: Plast Reconstr Surg
Pays: United States
ID NLM: 1306050

Informations de publication

Date de publication:
Apr 2019
Historique:
entrez: 29 3 2019
pubmed: 29 3 2019
medline: 23 4 2019
Statut: ppublish

Résumé

Several methods to prepare the recipient site in fat grafting have been proposed in recent decades. However, to date, these procedures have never been reviewed exhaustively. The purpose of the present study is to provide a comprehensive overview of the different techniques to prepare the recipient site for fat grafting as they were investigated in preclinical studies, with resulting outcomes and underlying mechanisms of action. The PubMed/MEDLINE database was queried to search for preclinical investigations on the preparation of the recipient site in fat grafting using the following algorithm: ((recipient site) AND (fat grafting) OR (lipofilling) OR (lipograft)). A priori criteria were applied to review the resulting articles. Thirteen animal studies met inclusion criteria. Overall, five techniques were identified: external volume expansion, implantation of alloplastic material (silicone sheets), administration of cell-proliferation factors (i.e., vascular endothelial growth factor, adipose tissue-derived stromal vascular fraction, and interleukin-8), ischemia, and microneedling. A positive effect on cellular activity (cell proliferation and angiogenesis) was demonstrated by all studies and achieved with all techniques. Seven of the eight authors who examined this aspect reported enhancement of fat graft survival. Improvement of fat grafting surgical outcomes is documented preclinically using different recipient-site preparation techniques, particularly through enhancement of vascularization and soft-tissue expansion. This understanding will lead to further clinical research, especially for those cases where improvement of the recipient site is recommended, such as contracted scars or preirradiated tissues.

Sections du résumé

BACKGROUND BACKGROUND
Several methods to prepare the recipient site in fat grafting have been proposed in recent decades. However, to date, these procedures have never been reviewed exhaustively. The purpose of the present study is to provide a comprehensive overview of the different techniques to prepare the recipient site for fat grafting as they were investigated in preclinical studies, with resulting outcomes and underlying mechanisms of action.
METHODS METHODS
The PubMed/MEDLINE database was queried to search for preclinical investigations on the preparation of the recipient site in fat grafting using the following algorithm: ((recipient site) AND (fat grafting) OR (lipofilling) OR (lipograft)). A priori criteria were applied to review the resulting articles.
RESULTS RESULTS
Thirteen animal studies met inclusion criteria. Overall, five techniques were identified: external volume expansion, implantation of alloplastic material (silicone sheets), administration of cell-proliferation factors (i.e., vascular endothelial growth factor, adipose tissue-derived stromal vascular fraction, and interleukin-8), ischemia, and microneedling. A positive effect on cellular activity (cell proliferation and angiogenesis) was demonstrated by all studies and achieved with all techniques. Seven of the eight authors who examined this aspect reported enhancement of fat graft survival.
CONCLUSIONS CONCLUSIONS
Improvement of fat grafting surgical outcomes is documented preclinically using different recipient-site preparation techniques, particularly through enhancement of vascularization and soft-tissue expansion. This understanding will lead to further clinical research, especially for those cases where improvement of the recipient site is recommended, such as contracted scars or preirradiated tissues.

Identifiants

pubmed: 30921129
doi: 10.1097/PRS.0000000000005403
pii: 00006534-201904000-00027
doi:

Substances chimiques

Vascular Endothelial Growth Factors 0

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

1099-1107

Commentaires et corrections

Type : CommentIn

Références

Gir P, Brown SA, Oni G, Kashefi N, Mojallal A, Rohrich RJ. Fat grafting: Evidence-based review on autologous fat harvesting, processing, reinjection, and storage. Plast Reconstr Surg. 2012;130:249–258.
Del Vecchio D, Rohrich RJ. A classification of clinical fat grafting: Different problems, different solutions. Plast Reconstr Surg. 2012;130:511–522.
Strong AL, Cederna PS, Rubin JP, Coleman SR, Levi B. The current state of fat grafting: A review of harvesting, processing, and injection techniques. Plast Reconstr Surg. 2015;136:897–912.
Oranges CM, Striebel J, Tremp M, Madduri S, Kalbermaten D, Schaefer DJ. The impact of recipient site external expansion in fat grafting surgical outcomes. Plast Reconstr Surg Global Open 2018;6:e1649.
Negenborn VL, Groen JW, Smit JM, Niessen FB, Mullender MG. The use of autologous fat grafting for treatment of scar tissue and scar-related conditions: A systematic review. Plast Reconstr Surg. 2016;137:31e–43e.
Condé-Green A, Marano AA, Lee ES, et al. Fat grafting and adipose-derived regenerative cells in burn wound healing and scarring: A systematic review of the literature. Plast Reconstr Surg. 2016;137:302–312.
Khouri RK Jr, Khouri RK. Current clinical applications of fat grafting. Plast Reconstr Surg. 2017;140:466e–486e.
Oranges CM, Tremp M, Ling B, Wettstein R, Largo RD, Schaefer DJ. A simple, reliable, and inexpensive intraoperative external expansion system for enhanced autologous structural fat grafting. Arch Plast Surg. 2016;43:466–469.
Ho Quoc C, Sinna R, Gourari A, La Marca S, Toussoun G, Delay E. Percutaneous fasciotomies and fat grafting: Indications for breast surgery. Aesthet Surg J. 2013;33:995–1001.
Ho Quoc C, Michel G, Dlimi C, Gourari A, Meruta A, Delay E. Percutaneous fasciotomies to improve fat grafting into the breast (in French). Ann Chir Plast Esthet. 2014;59:130–135.
Abboud MH, Dibo SA. Immediate large-volume grafting of autologous fat to the breast following implant removal. Aesthet Surg J. 2015;35:819–829.
Stillaert FB, Sommeling C, D’Arpa S, et al. Intratissular expansion-mediated, serial fat grafting: A step-by-step working algorithm to achieve 3D biological harmony in autologous breast reconstruction. J Plast Reconstr Aesthet Surg. 2016;69:1579–1587.
Giatsidis G, Cheng L, Facchin F, et al. Moderate-intensity intermittent external volume expansion optimizes the soft-tissue response in a murine model. Plast Reconstr Surg. 2017;139:882–890.
Gassman AA, Lewis MS, Lee JC. Remote ischemic preconditioning recipient tissues improves the viability of murine fat transfer. Plast Reconstr Surg. 2016;138:55e–63e.
Hsiao HY, Liu JW, Brey EM, Cheng MH. The effects of negative pressure by external tissue expansion device on epithelial cell proliferation, neo-vascularization and hair growth in a porcine model. PLoS One 2016;11:e0154328.
Lujan-Hernandez J, Lancerotto L, Nabzdyk C, et al. Induction of adipogenesis by external volume expansion. Plast Reconstr Surg. 2016;137:122–131.
Lee JW, Han YS, Kim SR, Kim HK, Kim H, Park JH. A rabbit model of fat graft recipient site preconditioning using external negative pressure. Arch Plast Surg. 2015;42:150–158.
Sezgin B, Ozmen S, Bulam H, et al. Improving fat graft survival through preconditioning of the recipient site with microneedling. J Plast Reconstr Aesthet Surg. 2014;67:712–720.
Lancerotto L, Chin MS, Freniere B, et al. Mechanisms of action of external volume expansion devices. Plast Reconstr Surg. 2013;132:569–578.
Heit YI, Lancerotto L, Mesteri I, et al. External volume expansion increases subcutaneous thickness, cell proliferation, and vascular remodeling in a murine model. Plast Reconstr Surg. 2012;130:541–547.
Topcu A, Aydin OE, Ünlü M, Barutcu A, Atabey A. Increasing the viability of fat grafts by vascular endothelial growth factor. Arch Facial Plast Surg. 2012;14:270–276.
Koh YJ, Koh BI, Kim H, et al. Stromal vascular fraction from adipose tissue forms profound vascular network through the dynamic reassembly of blood endothelial cells. Arterioscler Thromb Vasc Biol. 2011;31:1141–1150.
Shoshani O, Livne E, Armoni M, et al. The effect of interleukin-8 on the viability of injected adipose tissue in nude mice. Plast Reconstr Surg. 2005;115:853–859.
Baran CN, Celebioğlu S, Sensöz O, Ulusoy G, Civelek B, Ortak T. The behavior of fat grafts in recipient areas with enhanced vascularity. Plast Reconstr Surg. 2002;109:1646–1651; 1652.
Samdal F, Skolleborg KC, Berthelsen B. The effect of preoperative needle abrasion of the recipient site on survival of autologous free fat grafts in rats. Scand J Plast Reconstr Surg Hand Surg. 1992;26:33–36.
Oranges CM, Schaefer DJ. The use of autologous fat grafting for treatment of scar tissue and scar-related conditions: A systematic review. Plast Reconstr Surg. 2016;138:551e–552e.
Oranges CM, Schaefer DJ. Induction of adipogenesis by external volume expansion. Plast Reconstr Surg. 2016;138:769e–770e.
Chin MS, Ogawa R, Lancerotto L, et al. In vivo acceleration of skin growth using a servo-controlled stretching device. Tissue Eng Part C Methods 2010;16:397–405.
Rohrich RJ, Pessa JE. The fat compartments of the face: Anatomy and clinical implications for cosmetic surgery. Plast Reconstr Surg. 2007;119:2219–2227; discussion 22282231.
Wang W, Xie Y, Huang RL, et al. Facial contouring by targeted restoration of facial fat compartment volume: The midface. Plast Reconstr Surg. 2017;139:563–572.
Oranges CM, Tremp M, Haug M, Kalbermatten DF, Schaefer DJ. Facial contouring by targeted restoration of facial fat compartment volume: The midface. Plast Reconstr Surg. 2017;140:622e.
Khouri RK, Rigotti G, Cardoso E, Khouri RK Jr, Biggs TM. Megavolume autologous fat transfer: Part II. Practice and techniques. Plast Reconstr Surg. 2014;133:1369–1377.
Del Vecchio DA, Del Vecchio SJ. The graft-to-capacity ratio: Volumetric planning in large-volume fat transplantation. Plast Reconstr Surg. 2014;133:561–569.
Khouri RK, Rigotti G, Cardoso E, Khouri RK Jr, Biggs TM. Megavolume autologous fat transfer: Part I. Theory and principles. Plast Reconstr Surg. 2014;133:550–557.
Khouri RK Jr, Khouri RE, Lujan-Hernandez JR, Khouri KR, Lancerotto L, Orgill DP. Diffusion and perfusion: The keys to fat grafting. Plast Reconstr Surg Glob Open 2014;2:e220.
Khouri RK, Rigotti G, Khouri RK Jr, et al. Tissue-engineered breast reconstruction with Brava-assisted fat grafting: A 7-year, 488-patient, multicenter experience. Plast Reconstr Surg. 2015;135:643–658.
Khouri RK, Khouri RK Jr, Rigotti G, et al. Aesthetic applications of Brava-assisted megavolume fat grafting to the breasts: A 9-year, 476-patient, multicenter experience. Plast Reconstr Surg. 2014;133:796–807; discussion 808809.
Del Vecchio DA, Bucky LP. Breast augmentation using preexpansion and autologous fat transplantation: A clinical radiographic study. Plast Reconstr Surg. 2011;127:2441–2450.
Aoki S, Toda S, Sakemi T, Sugihara H. Coculture of endothelial cells and mature adipocytes actively promotes immature preadipocyte development in vitro. Cell Struct Funct. 2003;28:55–60.
Hutley LJ, Herington AC, Shurety W, et al. Human adipose tissue endothelial cells promote preadipocyte proliferation. Am J Physiol Endocrinol Metab. 2001;281:E1037–E1044.
Fukumura D, Ushiyama A, Duda DG, et al. Paracrine regulation of angiogenesis and adipocyte differentiation during in vivo adipogenesis. Circ Res. 2003;93:e88–e97.
Elçin YM, Dixit V, Gitnick G. Extensive in vivo angiogenesis following controlled release of human vascular endothelial cell growth factor: Implications for tissue engineering and wound healing. Artif Organs 2001;25:558–565.
Koch AE, Polverini PJ, Kunkel SL, et al. Interleukin-8 as a macrophage-derived mediator of angiogenesis. Science 1992;258:1798–1801.
Petzelbauer P, Watson CA, Pfau SE, Pober JS. IL-8 and angiogenesis. Cytokine 1995;7:267–272.
Hu DE, Hori Y, Fan TP. Interleukin-8 stimulates angiogenesis in rats. Inflammation 1993;17:135–143.
Koch AE, Polverini PJ, Leibovich SJ. Induction of neovascularization by activated human monocytes. J Leukoc Biol. 1986;39:233–238.
Fan KL, Federico C, Kawamoto HK, Bradley JP. Optimizing the timing and technique of Treacher Collins orbital malar reconstruction. J Craniofac Surg. 2012;23(Suppl 1):2033–2037.
van der Bogt KE, Hellingman AA, Lijkwan MA, et al. Molecular imaging of bone marrow mononuclear cell survival and homing in murine peripheral artery disease. JACC Cardiovasc Imaging 2012;5:46–55.
Wang M, Shen J, Feng B, et al. Remote ischemic preconditioning promotes early liver cell proliferation in a rat model of small-for-size liver transplantation. J Surg Res. 2013;179:e245–e253.
Gassman AA, Lewis MS, Bradley JP, Lee JC. Remote ischemic preconditioning improves the viability of donor lipoaspirate during murine fat transfer. Plast Reconstr Surg. 2015;136:495–502.
Kraemer R, Lorenzen J, Kabbani M, et al. Acute effects of remote ischemic preconditioning on cutaneous microcirculation: A controlled prospective cohort study. BMC Surg. 2011;11:32.
Aust MC, Reimers K, Kaplan HM, et al. Percutaneous collagen induction-regeneration in place of cicatrisation? J Plast Reconstr Aesthet Surg. 2011;64:97–107.
Aust MC, Fernandes D, Kolokythas P, Kaplan HM, Vogt PM. Percutaneous collagen induction therapy: An alternative treatment for scars, wrinkles, and skin laxity. Plast Reconstr Surg. 2008;121:1421–1429.
Peer LA. The neglected free fat graft. Plast Reconstr Surg (1946) 1956;18:233–250.
Nguyen A, Pasyk KA, Bouvier TN, Hassett CA, Argenta LC. Comparative study of survival of autologous adipose tissue taken and transplanted by different techniques. Plast Reconstr Surg. 1990;85:378–386; discussion 387389.

Auteurs

Carlo M Oranges (CM)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Julia Striebel (J)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Mathias Tremp (M)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Srinivas Madduri (S)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Daniel F Kalbermatten (DF)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Yves Harder (Y)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Dirk J Schaefer (DJ)

From the Department of Plastic, Reconstructive, Aesthetic, and Hand Surgery, Basel University Hospital, University of Basel; the Departments of Biomedicine and Biomedical Engineering, University of Basel; and the Division of Plastic, Reconstructive, and Aesthetic Surgery, Ospedale Regionale di Lugano, Ente Ospedaliero Cantonale.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH