| Literature DB >> 23828239 |
Maria Serena Piccinno1, Elena Veronesi, Pietro Loschi, Marco Pignatti, Alba Murgia, Giulia Grisendi, Ilaria Castelli, Daniela Bernabei, Olivia Candini, Pierfranco Conte, Paolo Paolucci, Edwin M Horwitz, Giorgio De Santis, Lorenzo Iughetti, Massimo Dominici.
Abstract
Autologous fat transfer (AFT) is a procedure for adipose tissue (AT) repair after <span class="Disease">trauma, burns, post-<span class="Disease">tumor resections and lipodystrophies still negatively impacted by the lack of graft persistence. The reasons behind this poor outcome are unclear and seem to involve damages in either harvested/transplanted mature adipocytes or on their mesenchymal progenitors, namely adipose stromal/stem cells (ASC), and due to post-transplant AT apoptosis and involution. A rabbit subcutaneous AT regeneration model was here developed to first evaluate graft quality at different times after implant focusing on related parameters, such as necrosis and vasculogenesis. Standard AFT was compared with a strategy where purified autologous ASC, combined with hyaluronic acid (HA), assisted AFT. Five million of autologous ex vivo isolated CD29+, CD90+, CD49e+ ASC, loaded into HA, enriched 1 ml of AT generating an early significant protective effect in reducing AFT necrosis and increasing vasculogenesis with a preservation of transplanted AT architecture. This beneficial impact of ASC assisted AFT was then confirmed at three months with a robust lipopreservation and no signs of cellular transformation. By a novel ASC assisted AFT approach we ensure a reduction in early cell death favoring an enduring graft performance possibly for a more stable benefit in patients.Entities:
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Year: 2013 PMID: 23828239 PMCID: PMC3775159 DOI: 10.1007/s10495-013-0878-7
Source DB: PubMed Journal: Apoptosis ISSN: 1360-8185 Impact factor: 4.677
Fig. 1Experimental groups. a–c Animals were divided in two groups (n = 10/each), one received autologous fat transfer (AFT) supplemented by adipose mesenchymal stem cells (ASC) defined as AFT-ASC group (panels a and left sided c). Control group received autologous fat transfer only (AFT group; panels b and right sided c). The AFT-ASC group underwent to a first liposuction from the left inguinal fat pad to generate ASC. After 30 days the AFT-ASC groups underwent a second liposuction from the contralateral right inguinal fat pad and, after tissue decantation, 1 ml of compact lipoaspirate was combined with 200 μl of suspension containing 5 × 106 ASC embedded into hyaluronic acid (HA). The obtained AFT-ASC composite was then injected in the right upper lip and equally distributed in subcutaneous position. AFT animals received standard autologous fat transplant into the right upper lip without ASC. d Lipoaspirate collection from inguinal fat pad. e Graft injection
Antibodies for rabbit ASC characterization by FACS
| Antigen | Host | Clone | Dilution | Manufacturer | Reported cross reactivity |
|---|---|---|---|---|---|
| CD29 | Mouse | 12G10 | 1/20 | AbDserotec | No |
| CD49e | Mouse | JBS5 | 1/20 | AbDserotec | No |
| CD90 FITC | Mouse | OX-7 | 1/30 | Biolegend | Yes |
| CD10 APC | Mouse | HI10a | 1/20 | BD | No |
| CD31 | Mouse | JC/70A | 1/50 | Abcam | Yes |
| CD45 | Mouse | L12/201 | 1/20 | GeneTex | Yes |
| CD73 PE | Mouse | AD2 | 1/20 | BD | No |
| CD105 | Mouse | SN6 | 1/20 | Serotec | No |
| CD146 | Mouse | P1H12 | 1/500 | Abcam | Yes |
| IgGk1 anti mouse APCa | Goat | Polyclonal | 5/100 | BD | No |
aSecondary ANTIBODY
Fig. 2Rabbit fat pad originate performing ASC in vitro. a Photomicrographs of fibroblastoid elements adhering to plastic after adipose tissue digestion (upper left panel) subsequently generating colonies (upper right panel) visualized by Crystal Violet staining (lower left panel) and reaching confluence after three passages (lower right panel Ph1, scale bar 100 μm). b Rabbit ASC cumulative population doubling after passage 3(P3). c Mean values ± SEM of antigen expressed on rabbit ASC by FACS (left table); representative immunophenotypical characterizations of rabbit ASC with cells positive for CD29, CD49e and CD90 (isotype control in gray). d Adipogenic differentiation after 10 days of induction visualized by Oil Red O staining and a corresponding non-induced control (upper panels; scale bar 100 μm). Representative osteogenic differentiation visualized by Alizarin Red staining after 14 days of induction and a corresponding non-induced control (lower panels)
Fig. 3Histological features of the AFT-ASC composite. a Hematoxylin and Eosin (H&E) staining of lipoaspirate only specimens (upper panel and inset; scale bar 100 μm; inset ×4) revealing a comparable histological appearance of normal AT. b Representative photomicrographs of specimens consisting of ASC combined with hyaluronic acid (HA) and stained by H&E (left panel and inset) and Alcian Blue (right panel and inset). Intact ASC appeared organized as single elements or clusters within HA scaffold (scale bar 100 μm; inset ×4). c Representative H&E (left panel and inset) and Alcian Blue (right panel and inset; scale bar: 100 μm; inset ×4) stained specimens from a living bioscaffold composite consisting in AT combined with ASC and HA
Fig. 4ASC preserve adipose tissue integrity early after transplantation. a Representative images of subcutaneous region in an untransplanted control (CTL, left panel), in AFT (central panel) and in AFT-ASC (right panel) transplanted specimens after 7 days from transplantation (H&E staining; scale bar 200 μm). While CTL samples were represented by connective tissue fibers, vessels, glands and nerve bundles along with adipose tissue (AT, left panel), in AFT and AFT-ASC groups, it was possible to identify an additional large area composed by a distinct inner core and outer connective capsule (CC) regions of graft material. b Connective capsule of AFT (left panel and inset) and AFT-ASC (right panel and inset) transplanted specimens showing similar histological appearance (scale bar 100 μm; inset ×4). c Representative photomicrographs of core grafts in AFT (central panel and inset) and AFT-ASC (right panel and inset) transplanted specimens. Inside AFT a dense and poorly organized extracellular structure including stromal elements, several cellular debris as well as numerous inflammatory cells was identifiable. On contrary, AFT-ASC core graft displayed more homogenously distributed adipocytes with a preserved morphology with more easily distinguishable stromal elements
Fig. 5AFT-ASC composite reduces necrosis and increase angiogenesis early after transplantation. a Un-transplanted control (CTL; left panel), AFT (central panel and inset) and AFT-ASC (right panel and inset, scale bar: 100 μm; inset ×4) specimens stained by TUNEL assay. AFT transplants had prominent TUNEL-positive areas inside the core grafts in comparison with AFT-ASC transplants. b Quantitative measurement of TUNEL-positive areas in untransplanted CTL, and AFT-ASC specimens by ImageJ analyses. The TUNEL+ areas for AFT-ASC samples were statistically reduced in comparison of AFT samples. *p = 0.013; **p = 0.2 × 10−3; ***p = 0.4 × 10−3. c Anti-CD31 immunohistochemical staining of AFT (left panel and inset) and AFT-ASC (right panel and inset, scale bar 100 μm; inset ×4) specimens. AFT-ASC core graft had a greater angiogenesis versus AFT core graft. d Quantitative measurement of CD31-positive vessels for both FAT and AFT-ASC specimens. AFT-ASC core graft displayed a statistically increase in small vessels in comparison of AFT core graft. *p = 0.025
Fig. 6AFT-ASC composite is associated with a significant lipopreservation 3 months after transplant. a Subcutaneous regions of untransplanted CTL (upper panel and inset), AFT (middle panel and inset) and AFT-ASC (lower panel and inset, scale bar 100 μm; inset ×4) specimens after 3 months post transplantation. b AFT specimen stained by H&E and characterized by the presence of discrete areas with syncytial-like granulomatous structures associated with inflammatory cells (scale bar 100 μm). c Quantitative measurement of preserved adipose tissue in both AFT and AFT-ASC specimens 3 months after transplantation and respective untransplanted CTL after Sirius Red staining and ImageJ analyses. *p = 0.021; **p = 0.41 × 10−4. d Representative images of Sirius Red staining (upper panels) and their elaboration (lower panels by ImageJ) in both AFT and AFT-ASC specimens