Journal of Cosmetics, Dermatological Sciences and Applications

Volume 4, Issue 4 (September 2014)

ISSN Print: 2161-4105   ISSN Online: 2161-4512

Google-based Impact Factor: 0.33  Citations  

Adipose Derived Stem Cells and Growth Factors Applied on Hair Transplantation. Follow-Up of Clinical Outcome

HTML  Download Download as PDF (Size: 3792KB)  PP. 268-274  
DOI: 10.4236/jcdsa.2014.44036    6,052 Downloads   8,955 Views  Citations

ABSTRACT

Different studies show the need of immature adipose cell to induce the proliferation of bulge stem cells in order to kick off the anagen phase of hair cycle. Furthermore, the adipose derived stem cell, adipose progenitors, and growth factors secreted by mature adipocytes can help the wound healing and the vascular neogenesis. Nowadays, it is not known any protocol of tissue regeneration applied to hair transplantation, especially if aimed to the reconstruction of the main vascular network for the engraftment of transplanted hair and the healing process. The aim of the work is to investigate how the application of autologous cellular suspension obtained by Rigenera system, mechanical fragmentation procedure which allows to obtain a physiological saline solution consisting of a heterogeneous pool of cells rich in adipose derived mesenchymalstem cells and growth factors, helps the wound healing and engraftment of the transplanted hair. During hair restoration surgery, the adipose tissue recovered from the discard of follicular slicing, was processed using the Rigenera system. The obtained cell suspension was applied in the area of hair transplantation, increasing the natural background of adipocyte lineage and raising the amount of growth factors. In addition, the cellular suspension was applied to the suture on the occipital region. The cell population was characterized by FACS. The monthly evaluation of hair transplantation follow-up with photos and the patient’s impressions demonstrates that there is a faster healing of the micro-wound and a continuous growth of the transplanted hair even two months after the procedure, with a shortening of the dormant phase. In conclusion, this new approach aims to integrate regenerative medicine and hair restoration surgery in order to improve the outcome for the patient. It would be wonderful to continue this research to elaborate on the molecular cause behind this satisfying clinical.

Share and Cite:

Zanzottera, F. , Lavezzari, E. , Trovato, L. , Icardi, A. and Graziano, A. (2014) Adipose Derived Stem Cells and Growth Factors Applied on Hair Transplantation. Follow-Up of Clinical Outcome. Journal of Cosmetics, Dermatological Sciences and Applications, 4, 268-274. doi: 10.4236/jcdsa.2014.44036.

Cited by

[1] Regenerative medicine strategies for hair growth and regeneration: A narrative review of literature
Regenerative Therapy, 2022
[2] Adipose-derived stem cells applied in skin diseases, wound healing and skin defects: a review
Cytotherapy, 2022
[3] Tissue Engineering and Regeneration of the Human Hair Follicle in Androgenetic Alopecia: Literature Review
Molina, A Carrero-Castaño… - Life, 2022
[4] Stem Cell-Based Therapies for Hair Loss: What is the Evidence from a Clinical Perspective?
Hair Follicle Regeneration, 2022
[5] Short-Term Efficacy of Autologous Cellular Micrografts in Male and Female Androgenetic Alopecia: A Retrospective Cohort Study
Clinical, Cosmetic and Investigational Dermatology, 2021
[6] The role of adipose tissue in hair regeneration: A potential tool for management?
Journal of Cutaneous and …, 2021
[7] Advances in Hair Restoration
Current Otorhinolaryngology …, 2021
[8] Mesenchymal Stem Cell Conditioned Media Induces Hair Regeneration in Alopecia Areata: A Case Study
Annals of Stem Cell Research & Therapy, 2021
[9] Autologous micrografts from the palatal mucosa for bone regeneration in calvarial defects in rats: a radiological and histological analysis
2021
[10] Suitability of a Progenitor Cell-Enriching Device for In Vitro Applications
2021
[11] Comment on Celentano et al. Suitability of a Progenitor Cell-Enriching Device for In Vitro Applications. Coatings 2021, 11, 146
2021
[12] Not stromal vascular fraction (SVF) or nanofat, but total stromal-cells (TOST): A new definition. Systemic review of mechanical stromal-cell extraction techniques
2020
[13] Tissue regeneration: an overview from stem cells to micrografts
2020
[14] Advances in Stem Cell-Based Therapy for Hair Loss
2020
[15] Current advances in stem cell-based therapies for hair regeneration
2020
[16] Efficacy of hair tissue based-therapy in male androgenic alopecia
Session of Medical Health Sciences and Laws, 2019
[17] Advances in Regenerative Stem Cell Therapy in Androgenic Alopecia and Hair Loss: Wnt Pathway, Growth-Factor, and Mesenchymal Stem Cell Signaling Impact …
2019
[18] Injection/Application of Micrografts
2019
[19] Progenitor‐cell‐enriched micrografts as a novel option for the management of androgenetic alopecia
2019
[20] Stem cell therapy and hair loss: Present evidence and future perspectives
2019
[21] Microinjertos autólogos de células madres y plasma rico en fibrina como terapia de defectos intraóseos periodontales en pacientes de la maestría de periodoncia de …
2019
[22] Advances in regenerative stem cell therapy in androgenic alopecia and hair loss: Wnt pathway, growth-factor, and mesenchymal stem cell signaling impact analysis …
2019
[23] Mesenchymal stem cells and stromal vascular fraction for hair loss: current status
2018
[24] Therapeutic Potential of Stem Cells in Follicle Regeneration
Stem Cells International, 2018
[25] Mesenchymal Stem Cells and Stromal Vascular Fraction for Hair Loss: Current Status.
Facial Plastic Surgery Clinics of North America, 2018
[26] Micrografting chronic lower extremity ulcers with mechanically disaggregated skin using a micrograft preparation system
2018
[27] CLINICAL AND HISTOLOGICAL EVALUATION OF THE REGENERA® METHOD FOR THE TREATMENT OF ANDROGENETIC ALOPECIA
2018
[28] CLINICAL AND HISTOLOGICAL EVALUATION OF THE REGENERA METHOD FOR THE TREATMENT OF ANDROGENETIC ALOPECIA
Medical …, 2018
[29] Efficacy of Bone Regeneration using Micro-graft Suspension of Palatal Mucosa in Rats
Journal of Oral Tissue Engineering, 2017
[30] Microscopic and Histologic Evaluation of the Regenera® Method for the Treatment of Androgenetic Alopecia in a Small Number of Cases
International Journal of Research Studies in Medical and Health Sciences, 2017
[31] Soft Tissue Engineering with Micronized‐Gingival Connective Tissues
Journal of cellular physiology, 2017
[32] Up-to-date clinical trials of hair regeneration using conditioned media of adipose-derived stem cells in male and female pattern hair loss
Current Stem Cell Research & Therapy, 2017
[33] Tissue Characterization after a New Disaggregation Method for Skin Micro-Grafts Generation.
Journal of Visualized Experiments, 2016
[34] Treatment of Oncological Post-surgical Wound Dehiscence with Autologous Skin Micrografts
Anticancer research, 2016
[35] Tissue characterization after a new disaggregation method for skin micro-grafts generation
2016
[36] Rigenera protocol in the treatment of surgical wound dehiscence
International wound journal, 2016
[37] Regenerative Surgery in the Management of the Leg Ulcers
2016
[38] A Regenerative Approach with Dermal Micrografts in the Treatment of Chronic Ulcers
Stem Cell Reviews and Reports, 2016
[39] Cellular Cardiomyoplasty–Challenges of a New Era
Current Tissue Engineering, 2015
[40] Human Tissue Regeneration in Maxillo-facial Area: From Stem Cells to Micrografts
Current Tissue Engineering, 2015
[41] MICROINJERTOS AUTÓLOGOS DE PULPA DENTAL EN REGENERACIÓN PERIODONTAL
2015
[42] A New Medical Device Rigeneracons Allows to Obtain Viable Micro‐Grafts From Mechanical Disaggregation of Human Tissues
Journal of cellular physiology, 2015
[43] A New Medical Device, Based on Rigenera Protocol, in the Management of Complex Wounds. J Stem Cells Res
Rev & Rep, 2014

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.