Nanofat in Plastic Reconstructive, Regenerative, and Aesthetic Surgery: A Review of Advancements in Face-Focused Applications
Abstract
:1. Introduction
2. Materials and Methods
3. Results
Authors | Title | Journal | Year of Publication | Main Topics |
---|---|---|---|---|
Batel F.S. et al. [22] | Traitement des ridules de la lèvre supérieure par graisse émulsifiée ou «Nanofat»: étude biologique et clinique à propos de 4 cas | Annales de chirurgie plastique esthétique | 2018 | Evaluate the biological composition of emulsified fat and its clinical effectiveness in the treatment of peri-oral wrinkles in 4 patients aged 50 to 59 years. |
Nosheen S. et al. [10] | Unfiltered Nanofat Injections Rejuvenate Postburn Scars of Face | Annals of Plast. Surg. | 2019 | Effect of unfiltered nanofat injection on the quality of post-burn facial scars, with a final 6-month follow-up and evaluation of scars by both the patient and the surgeon using the POSAS scale. |
Nabil Fakih-Gomez et al. [23] | Nanofat in Facial Rejuvenation: Step-by-Step Procedure, Patient Evaluation and Recovery Process | The American J. of Cosmetic Surg. | 2021 | Intradermal injection of nanofat has been used for skin rejuvenation, texture improvement, and scar treatment. The patients evaluated the treatment using a questionnaire after six months. |
Hui Zheng et al. [24] | Conventional Nanofat and SVF/ADSC-Concentrated Nanofat: A Comparative Study on Improving Photoaging of Nude Mice Skin | Aesthet. Surg J. | 2019 | The hypothesis suggests that centrifugation can be employed to obtain SVF/ADSC-concentrated nanofats, which are believed to outperform conventional nanofats in addressing skin photoaging. |
Yang Z. et al. [25] | Comparison of Microfat, Nanofat and Extracellular Matrix/Stromal Vascular Fraction Gel for Skin Rejuvenation: Basic Animal Research | Aesthet. Surg. J. | 2021 | The effects of treatment with microfat, nanofat, and SVF-gel on UV-induced skin damage in nude mice were evaluated; the results were formulated by studying the skin using scanning electron microscopy. |
van Dongen JA et al. [26] | The Effects of Facial Lipografting on Skin Quality: A Systematic Review. | Plast. Reconstr. Surg. | 2019 | The effectiveness of autologous lipografting in improving skin quality was evaluated, considering a total of nine studies. The review examined various outcomes, including skin texture, color, and elasticity, as well as histologic findings and the incidence of complications. |
Uyulmaz S et al. [27] | Nanofat Grafting for Scar Treatment and Skin Quality Improvement. | Aesthet. Surg. J. | 2018 | The effects of nanofat grafting on scars, wrinkles, and skin discolorations were analyzed. Fifty-two patients were treated, and standardized pre- and post-treatment photographs were compared and analyzed to assess the general improvement of skin aesthetics. |
Huang R et al. [28] | Nanofat Injection for the Treatment of Depressed Facial Scars. | Aesthetic Plast. Surg. | 2021 | A retrospective study was conducted to evaluate the satisfaction of patients who underwent depressed facial scar filling with nanofat. The patients were asked to provide feedback using the FACE-Q scale. |
Surowiecka A. et al. [29] | Adipose-Derived Stem Cells for Facial Rejuvenation. | J Pers Med. | 2022 | Evaluation of the recent evidence obtained from the application of adipose-derived stem cells in facial rejuvenation and their microscopic composition. |
Atiyeh B. et al. [30] | Nanofat Cell-Mediated Anti-Aging Therapy: Evidence-Based Analysis of Efficacy and an Update of Stem Cell Facelift. | Aesthetic Plast. Surg. | 2021 | Seven articles published after 2013 have been identified to review any emerging evidence regarding the clinical efficacy of fat grafting as a natural filler. |
Bhooshan LS et al. [31] | Autologous emulsified fat injection for rejuvenation of scars: A prospective observational study | Indian J. Plast. Surg. | 2018 | A total of 34 patients were included in this study, which aimed to determine the aesthetic outcome of autologous emulsified nanofat injection in scars. The assessment was conducted using a standardized and validated Patient Observer Scar Assessment Scale (POSAS) and photographs. |
Trotzier C et al. [32] | Fat Graft Retention: Adipose Tissue, Adipose-Derived Stem Cells, and Aging. | Plast. Reconstr. Surg. | 2023 | In this review, the authors aim to analyze the effect of aging on adipose tissue components, particularly adipose-derived stem cells (ASCs), that could lead to a decrease in skin regeneration and fat graft retention. Additionally, they seek to examine the parameters involved in graft survival. |
Annie Suh et al. [33] | Adipose-derived cellular and cell-derived regenerative therapies in dermatology and aesthetic rejuvenation. | Ageing Research Reviews | 2019 | Aesthetic applications, including hair growth, scar reduction, skin ischemia-reperfusion recovery, and facial rejuvenation, are reviewed. The discussions focus on the conclusions derived from the studies examined. |
Madhan J. et al. [3] | Nanofat: A therapeutic paradigm in regenerative medicine. | World J. Stem Cells | 2021 | Literature review on the role of nanofat in modern medicine. |
Rihani J. [18] | Microfat and Nanofat: When and Where These Treatments Work. | Facial Plast. Surg. Clin. North Am. | 2019 | The basic principles of microfat and nanofat are explored, including their utilization for enhancing skin texture and achieving structural volume, alongside a detailed description of the injection procedure. |
Cohen SR. et al. [12] | Regenerative cells for facial surgery: biofilling and bio contouring. | Aesthet. Surg. J. | 2017 | Fat grafting is now being used for both filling and regeneration. |
Gaur M et al. [5] | Mesenchymal stem cells from adipose tissue in clinical applications for dermatological indications and skin aging. | Int. J. Mol. Sci. | 2017 | The identification of the mechanisms by which ADSCs accomplish dermatological rejuvenation and wound healing has great potential to identify novel targets for the treatment of disorders and to combat aging. |
Menkes S. et al. [34] | Subcutaneous Injections of Nanofat Adipose-derived Stem Cell Grafting in Facial Rejuvenation. | Plast. Reconstr. Surg. Glob. Open | 2020 | The use of subcutaneous nanofat injections for facial rejuvenation demonstrates promising results, effectively enhancing the skin’s appearance by altering the dermal pattern. |
Wei H et al. [35] | Nanofat-derived stem cells with platelet-rich fibrin improve facial contour remodeling and skin rejuvenation after autologous structural fat transplantation. | Oncotarget | 2017 | Transplants that combine newly isolated nanofat, which has a rich stromal vascular fraction (SVF), with PRF and autologous structural fat granules may therefore be a safe, highly effective, and long-lasting method for remodeling facial contours and rejuvenating the skin. |
Tonnard P. et al. [13] | Fat Grafting for Facial Rejuvenation with Nanofat Grafts. | Clin. Plastic Surg. | 2020 | Nanofat is a highly concentrated solution of progenitor cells without viable adipocytes. Nanofat grafting creates striking skin quality improvement. |
Girard P. [47] | Modified nanofat grafting: Stromal vascular fraction simple and efficient mechanical isolation technique and perspectives in clinical recellularization applications | Frontiers in bioengineering and biotechnology | 2022 | The study analyzed three groups of SVF obtained by 20, 30, and 40 inter-syringe passages. The control group was an SVF obtained by enzymatic digestion. They studied their cell composition by flow cytometry, observed their architecture by confocal microscopy, and observed immunomodulatory properties of the ASCs from each of the SVFs by measuring inflammatory markers of macrophages obtained by an ASC monocyte co-culture. |
Qui H. et al. [48] | The Effect of Different Diameters of Fat Converters on Adipose Tissue and Its Cellular Components: Selection for Preparation of Nanofat | Aesthetic Surgery Journal | 2021 | The 3-dimensional finite element method was employed to simulate the process of mechanical emulsification of fat and to research the stress with five different converters (3.76 mm, 2.00 mm, 1.20 mm, 1.00 mm, 0.80 mm). An assessment of the morphology of emulsified fat was conducted. Isolated stromal vascular fraction (SVF) was analyzed for cellular components, number, and viability through flowcytometry and live/dead staining. Adipocytic and angiogenic differentiation assay allowed the assessment of the differentiation capacity of the SVF. |
Jan N.S. et al. [10] | Unfiltered nanofat injections rejuvenate postburn scars of face | Annals Plastic Surgery | 2018 | The aim of this study was to compare the quality of postburn facial scars before and after injection of unfiltered nanofat. |
Ding P. et al. [36] | Research progress on preparation, mechanism, and clinical application of nanofat | Journal of Burn Care and Research | 2022 | Nanofat grafting is a relatively new technology that has gained popularity and is produced by mechanical shuffling and filtration of microfat. Unlike microfat, nanofat particles are too small to provide a notable volumizing effect. Studies have shown that nanofat contains abundant stromal vascular fraction cells and adipose-derived stem cells, which help reconstruct dermal support structures and regenerate healthier, younger-looking skin. Moreover, the fluid consistency of nanofat allows application in lipofilling such as scars, chronic wounds, and facial rejuvenation. |
Sanchez-Macedo N. et al. [37] | Protein profiling of mechanically processed lipoaspirates: discovering wound healing and antifibrotic biomarkers in nanofat | Plastic and Reconstructive Surgery | 2022 | Microfat and nanofat samples were isolated from 18 healthy patients. Proteomic profiling was performed through untargeted mass spectrometry proteomics and multiplex antibody arrays. |
Sesè B. et al. [38] | Nanofat Cell Aggregates: A Nearly Constitutive Stromal Cell Inoculum for Regenerative Site-Specific Therapies | Plastic and Reconstructive Surgery | 2019 | The authors compared the number of cells recovered from 1 g of lipoaspirate between stromal vascular fraction and nanofat preparations, and subsequently determined the final cell inoculum obtained following their respective protocols. |
Gentile P. et al. [39] | Comparing different nanofat procedures on scars: role of the stromal vascular fraction and its clinical implications | Regenerative Medicine | 2017 | Three different modified nanofat grafting procedures (supercharged-, evo- and centrifuged-modified nanofat) were compared with the classic nanofat method, and histological analysis was performed to assess skin regeneration. Residual nanofat samples were analyzed to determine SVF immunophenotype and yield from each procedure. |
Daumas A. et al. [40] | Fat grafting for treatment of facial scleroderma | Clinical Plastic Surgery | 2020 | Fat grafting in scleroderma patients likely improves skin manifestations by recreating fullness, correcting contour deformities, and improving skin quality. The injected fat provides a mixture of cells that influences the recipient site, resulting in improved outcomes. |
Bertheumil N. et al. [41] | Mechanically isolated stromal vascular fraction by nanofat emulsification techniques | Plastic and Reconstructive Surgery | 2017 | ASCs isolated by nanofat technique show immunosuppressive properties by decreasing the proliferation of human T cells, by the secretion of paracrine factors, and favoring angiogenesis. |
Verpaele et al. [15] | Nanofat needling: a novel method for uniform delivery of adipose derived stromal vascular fraction into the skin | Plastic and Reconstructive Surgery | 2019 | A novel method for delivering nanofat into the skin is microneedling. This technique combines the regenerative capacities of microneedling with those of nanofat injection. |
3.1. Concept of Nanofat
3.2. The Three Phases of Nanofat
3.3. How Does It Work?
How Standardized and Automatized Is the Technique?
3.4. Nanofat Processing Technique
3.5. What Kind of Treatment Is It Possible to Combine with Nanofat?
3.6. Nanofat as a Treatment for Facial Rejuvenation
3.7. Long Term Outcomes and Patient Satisfaction
3.8. Are There Any Possible Alternatives to Nanofat?
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Strengths | Opportunities | Weaknesses | Threats |
---|---|---|---|
Minimally invasive | Use of this technique as a bridge to surgery in severely burned patients | Few studies dills about long term effects | New techniques of fat transfer are being studied |
Patient’s satisfaction | Combinable with other face rejuvenation procedures | Not yet a standardized technique | The high impact of dermal filler in aesthetic field |
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La Padula, S.; Ponzo, M.; Lombardi, M.; Iazzetta, V.; Errico, C.; Polverino, G.; Russo, F.; D’Andrea, L.; Hersant, B.; Meningaud, J.P.; et al. Nanofat in Plastic Reconstructive, Regenerative, and Aesthetic Surgery: A Review of Advancements in Face-Focused Applications. J. Clin. Med. 2023, 12, 4351. https://doi.org/10.3390/jcm12134351
La Padula S, Ponzo M, Lombardi M, Iazzetta V, Errico C, Polverino G, Russo F, D’Andrea L, Hersant B, Meningaud JP, et al. Nanofat in Plastic Reconstructive, Regenerative, and Aesthetic Surgery: A Review of Advancements in Face-Focused Applications. Journal of Clinical Medicine. 2023; 12(13):4351. https://doi.org/10.3390/jcm12134351
Chicago/Turabian StyleLa Padula, Simone, Martina Ponzo, Mariagiovanna Lombardi, Vincenzo Iazzetta, Concetta Errico, Gianmarco Polverino, Francesca Russo, Luca D’Andrea, Barbara Hersant, Jean Paul Meningaud, and et al. 2023. "Nanofat in Plastic Reconstructive, Regenerative, and Aesthetic Surgery: A Review of Advancements in Face-Focused Applications" Journal of Clinical Medicine 12, no. 13: 4351. https://doi.org/10.3390/jcm12134351
APA StyleLa Padula, S., Ponzo, M., Lombardi, M., Iazzetta, V., Errico, C., Polverino, G., Russo, F., D’Andrea, L., Hersant, B., Meningaud, J. P., Salzano, G., & Pensato, R. (2023). Nanofat in Plastic Reconstructive, Regenerative, and Aesthetic Surgery: A Review of Advancements in Face-Focused Applications. Journal of Clinical Medicine, 12(13), 4351. https://doi.org/10.3390/jcm12134351