Academic literature on the topic 'Adipose Progenitor Cells'

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Journal articles on the topic "Adipose Progenitor Cells"

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Merrick, David, Alexander Sakers, Zhazira Irgebay, et al. "Identification of a mesenchymal progenitor cell hierarchy in adipose tissue." Science 364, no. 6438 (2019): eaav2501. http://dx.doi.org/10.1126/science.aav2501.

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Metabolic health depends on the capacity of adipose tissue progenitor cells to undergo de novo adipogenesis. The cellular hierarchy and mechanisms governing adipocyte progenitor differentiation are incompletely understood. Through single-cell RNA sequence analyses, we show that the lineage hierarchy of adipocyte progenitors consists of distinct mesenchymal cell types that are present in both mouse and human adipose tissues. Cells marked by dipeptidyl peptidase–4 (DPP4)/CD26 expression are highly proliferative, multipotent progenitors. During the development of subcutaneous adipose tissue in mi
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Kapur, Sahil K., Severiano Dos-Anjos Vilaboa, Ramon Llull, and Adam J. Katz. "Adipose Tissue and Stem/Progenitor Cells." Clinics in Plastic Surgery 42, no. 2 (2015): 155–67. http://dx.doi.org/10.1016/j.cps.2014.12.010.

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Ikeda, Yuri, Akino Wada, Toshio Hasegawa, Mutsumi Yokota, Masato Koike, and Shigaku Ikeda. "Melanocyte progenitor cells reside in human subcutaneous adipose tissue." PLOS ONE 16, no. 8 (2021): e0256622. http://dx.doi.org/10.1371/journal.pone.0256622.

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Based on the assumption that some progenitor cells in an organ might reside in neighboring adipose tissue, we investigated whether melanocyte progenitor cells reside in human subcutaneous adipose tissue. First, we examined the expression of human melanoma black 45 (HMB45) and microphthalmia-associated transcription factor (MITF) in undifferentiated adipose-derived stem cells (ADSCs) by immunostaining, RT-PCR, and western blotting. These two markers were detected in undifferentiated ADSCs, and their expression levels were increased in differentiated ADSCs in melanocyte-specific culture medium.
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Meliga, Emanuele, Brian M. Strem, H. J. Duckers, and Patrick W. Serruys. "Adipose-Derived Cells." Cell Transplantation 16, no. 9 (2007): 963–70. http://dx.doi.org/10.3727/096368907783338190.

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Heart failure is by far the most common cause of hospitalization in Western countries, with onerous economic consequences. Cell therapy holds great promise for use in tissue regeneration and is increasingly used in an effort to improve outcomes in cardiac disease. Recently it has been shown that adipose tissue, in addition to committed adipogenic, endothelial progenitor cells and pluripotent vascular progenitor cells, also contains multipotent cell types (adipose-derived stem cells, ADSCs) that, in cell culture conditions, have shown to have an impressive developmental plasticity including the
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Zhang, Yan. "Adipose tissue-derived progenitor cells and cancer." World Journal of Stem Cells 2, no. 5 (2010): 103. http://dx.doi.org/10.4252/wjsc.v2.i5.103.

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Hillel, Alexander, and Jennifer Elisseeff. "Embryonic Progenitor Cells in Adipose Tissue Engineering." Facial Plastic Surgery 26, no. 05 (2010): 405–12. http://dx.doi.org/10.1055/s-0030-1265021.

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Pham, Phuc Van, Ngoc Bich Vu, Hoa Trong Nguyen, and Ngoc Kim Phan. "Isolation of endothelial progenitor cells from human adipose tissue." Biomedical Research and Therapy 3, no. 05 (2016): 645–52. http://dx.doi.org/10.15419/bmrat.v3i05.98.

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Adipose tissue is a rich source of stem cells, especially mesenchymal stem cells (MSCs). This study aimed to identify and isolate endothelial progenitor cells (EPCs) from human adipose tissue. Belly adipose tissues were collected from donors with consent. Stromal vascular fractions (SVFs) were extracted from adipose tissues by enzyme collagenase using commercial kits. SVFs were cultured in MSCCult medium for 24 h to obtain MSCs, then supernatant was collected and cell pellet cultured in EGM-2 medium to obtain adipose tissue EPCs (ADEPCs). ADEPCs were checked for surface marker expression of CD
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Iida, Hideo, Toshio Hasegawa, Atsushi Sakamoto, Akino Wada, Tatsuo Fukai, and Shigaku Ikeda. "Keratinocyte progenitor cells in human subcutaneous adipose tissue." Journal of Dermatological Science 84, no. 1 (2016): e54. http://dx.doi.org/10.1016/j.jdermsci.2016.08.168.

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Lin, Guiting, Maurice Garcia, Hongxiu Ning, et al. "Defining Stem and Progenitor Cells within Adipose Tissue." Stem Cells and Development 17, no. 6 (2008): 1053–63. http://dx.doi.org/10.1089/scd.2008.0117.

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Zimmerlin, Ludovic, Vera S. Donnenberg, J. Peter Rubin, and Albert D. Donnenberg. "Mesenchymal markers on human adipose stem/progenitor cells." Cytometry Part A 83A, no. 1 (2012): 134–40. http://dx.doi.org/10.1002/cyto.a.22227.

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Dissertations / Theses on the topic "Adipose Progenitor Cells"

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Biernacka-Larocque, Amanda. "Influence of Anatomic Depot on the Apoptotic Susceptibility of Adipose Progenitor Cells." Thesis, Université d'Ottawa / University of Ottawa, 2015. http://hdl.handle.net/10393/32070.

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Adipose tissue (AT) expands through hypertrophy and hyperplasia. Hyperplasic AT expansion requires an adequate number of adipose progenitor cells. This study investigates the influence of depot origin on the susceptibility of adipose progenitors to cell death, and measures the effect of macrophage-secreted factors on adipose progenitor survival. Using serum deprivation alone or in the presence of TNFα, omental (OM) versus subcutaneous (SC) adipose progenitors, obtained from human AT, displayed a 3- and 1.7-fold-increase in apoptosis, respectively, as assessed by Hoechst staining, (p<0.05). Sim
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Shea, Amanda Ann. "The Impact of Adipose-Associated Stromal Cells on the Metastatic Potential of Ovarian Cancer." Diss., Virginia Tech, 2001. http://hdl.handle.net/10919/54562.

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Obesity is a major global health concern due to its steadily increasing rates and significant contribution to numerous diseases, including cancer. Ovarian cancer specifically, is associated with a 30% increased risk with obesity, although the mechanisms for this are unknown. Waist-to-hip ratio has been especially associated with ovarian cancer, suggesting that visceral fat may be the greatest contributor. Here, we investigated individual visceral fat depots as independent contributors to cancer progression, specifically focusing on adipose tissue-derived stem and progenitor cells, which have p
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Shea, Amanda A. "The Impact of Adipose-Associated Stromal Cells on the Metastatic Potential of Ovarian Cancer." Diss., Virginia Tech, 2014. http://hdl.handle.net/10919/54562.

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Obesity is a major global health concern due to its steadily increasing rates and significant contribution to numerous diseases, including cancer. Ovarian cancer specifically, is associated with a 30% increased risk with obesity, although the mechanisms for this are unknown. Waist-to-hip ratio has been especially associated with ovarian cancer, suggesting that visceral fat may be the greatest contributor. Here, we investigated individual visceral fat depots as independent contributors to cancer progression, specifically focusing on adipose tissue-derived stem and progenitor cells, which have p
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Chang, Junlei, and 畅君雷. "Regulation of vascular integrity by eNOS and adiponectin: a novel role of endothelial progenitor cells." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 2011. http://hub.hku.hk/bib/B47244276.

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Background and objectives: Circulating endothelial progenitor cells (EPCs) play an essential role in maintaining vascular integrity and preventing endothelial dysfunction. Decreased circulating EPC levels are frequently observed in various cardiovascular risks, including aging and diabetes. Endothelial nitric oxide synthase (eNOS) and adiponectin exert their vasculo-protective effects by directly targeting the key components of the vascular system, such as endothelial cells and smooth muscle cells. Both eNOS and adiponectin have been implicated in the mobilization and in vitro functions of
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Forte, Andresa. "Expansão ex vivo das células-tronco hematopoiéticas do sangue do cordão umbilical: análise comparativa da proliferação celular em cocultura de células-troco mesenquimais provenientes do endotélio vascular do cordão umbilical e do tecido adiposo." Universidade de São Paulo, 2014. http://www.teses.usp.br/teses/disponiveis/5/5167/tde-25022015-085731/.

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INTRODUÇÃO: As células-tronco hematopoiéticas (CTH) do sangue do cordão umbilical (SCU) têm sido utilizadas com sucesso para o tratamento de doenças malignas e não malignas. No entanto, algumas unidades de SCU podem apresentar baixa quantidade de células nucleadas totais (CNT). Algumas abordagens têm sido sugeridas para evitar problemas em relação à baixa concentração de CTH no transplante, como a administração de duas unidades de SCU para o paciente e a expansão ex vivo de CTH. OBJETIVO: Avaliar as taxas de proliferação celular na expansão ex vivo do SCU em sistema de cocultura com células-tr
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Ell, Jascha [Verfasser], Thomas [Akademischer Betreuer] Stark, Thomas [Gutachter] Stark, and Florian [Gutachter] Bassermann. "Inter-individual differences in human adipose derived stem cells with regards to adipogenic potential and endothelial progenitor cell differentiation potential in in-vitro experiments / Jascha Ell ; Gutachter: Thomas Stark, Florian Bassermann ; Betreuer: Thomas Stark." München : Universitätsbibliothek der TU München, 2019. http://d-nb.info/1202921892/34.

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Ravaud, Christophe. "Pourquoi la thérapie HAART remanie-t-elle les différents sites du tissu adipeux de manière hétérogène ? : importance de l’origine des dépôts, modélisation et mécanismes moléculaires." Thesis, Université Côte d'Azur (ComUE), 2017. http://www.theses.fr/2017AZUR4016/document.

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Le tissu adipeux (TA) est réparti dans tout le corps en différents dépôts. Il existe deux types distincts aux fonctions biens spécifiques : le tissu adipeux blanc sert de réservoir énergétique et stocke les lipides et le tissu adipeux brun permet la thermogénèse. Par ses fonctionnalités et son pouvoir endocrine, le TA assure le maintien de l’homéostasie énergétique. De graves désordres métaboliques résultent d’une surabondance retrouvée au cours de l’obésité ou lors d’un remodelage dans les lipodystrophies. Certaines ont une origine génétique, d’autres sont induites par des médicaments comme l
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Qadan, Maha Ahmad. "Sourcing and Modulation of the Fate of Connective Tissue Progenitors." Kent State University / OhioLINK, 2016. http://rave.ohiolink.edu/etdc/view?acc_num=kent1479416651140376.

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Boulet, Nathalie. "Rôles des Bone Morphogenetic Proteins dans la conversion adipocytaire et le développement du tissu adipeux humain." Thesis, Toulouse 3, 2015. http://www.theses.fr/2015TOU30187/document.

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Les adipocytes (cellules spécialisées dans le stockage des graisses) sont formés à partir de cellules immatures appelées cellules progénitrices lors du processus d'adipogenèse. Chez l'homme, les différentes étapes de ce processus sont mal connues ainsi que les signaux qui le régulent. La première partie de mon travail de thèse a eu pour but de caractériser la cellule intermédiaire entre la cellule progénitrice et l'adipocyte : le préadipocyte. La deuxième partie a consisté à évaluer le rôle des protéines morphogénétiques de l'os (ou BMP), des inducteurs de l'adipogenèse décrits chez la souris,
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Magalhães, Andressa Inaba de. "Caracterização imunofenotípica de células-tronco/progenitoras hematopoiéticas da fração estromal vascular de tecido adiposo de cães." Universidade de São Paulo, 2014. http://www.teses.usp.br/teses/disponiveis/10/10133/tde-17032015-121157/.

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A caracterização fenotípica e o isolamento de células-tronco hematopoiéticas (CTH) podem fornecer informações relevantes quanto ao desenvolvimento biológico do sistema hematopoiético. A habilidade em detectar e purificar essas células implica no desenvolvimento de condições para manutenção e expansão dessas células em culturas in vitro. Na medicina veterinária, a purificação de células-tronco hematopoiéticas caninas (CTHc) vem de encontro com interesses em estabelecer métodos para o desenvolvimento de terapias celulares, principalmente em doenças que levam à aplasia medular ou anemia aplástica
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Books on the topic "Adipose Progenitor Cells"

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Dettman, Robert, Juan Antonio Guadix, Elena Cano, Rita Carmona, and Ramón Muñoz-Chápuli. The multiple functions of the proepicardial/epicardial cell lineage in heart development. Edited by José Maria Pérez-Pomares, Robert G. Kelly, Maurice van den Hoff, et al. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780198757269.003.0020.

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The epicardium is the outer cell layer of the vertebrate heart. In recent years, both the embryonic and adult epicardium have revealed unsuspected peculiarities and functions, which are essential for cardiac development. In this chapter we review the current literature on the epicardium, and describe its evolutionary origin, the mechanisms leading to the induction of its extracardiac progenitor tissue, the proepicardium, and the way in which the proepicardium is transferred to the heart to form the epicardium. We also describe the epicardial epithelial–mesenchymal transition from which mesench
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Book chapters on the topic "Adipose Progenitor Cells"

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Tseng, Chieh, and Mikhail G. Kolonin. "Adipose Tissue-Derived Progenitor Cells and Cancer." In Angiogenesis in Adipose Tissue. Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-8069-3_15.

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Sciarretta, Fabio Valerio, and Claudio Ascani. "Adipose Tissue and Progenitor Cells for Cartilage Formation." In Sports Injuries. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-642-36569-0_159.

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Sciarretta, Fabio Valerio, and Claudio Ascani. "Adipose Tissue and Progenitor Cells for Cartilage Formation." In Sports Injuries. Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-36801-1_159-1.

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Shree, Nitya, and Ramesh Bhonde. "Isolation and Characterization of Progenitor Cells from Human Adipose Tissue." In Methods in Molecular Biology. Springer New York, 2019. http://dx.doi.org/10.1007/978-1-4939-9631-5_10.

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Babaei, Rohollah, Irem Bayindir-Buchhalter, Irina Meln, and Alexandros Vegiopoulos. "Immuno-Magnetic Isolation and Thermogenic Differentiation of White Adipose Tissue Progenitor Cells." In Thermogenic Fat. Springer New York, 2017. http://dx.doi.org/10.1007/978-1-4939-6820-6_5.

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Weiss, Jeffrey N. "Allogenic Adipose Tissue-Derived Mesenchymal Progenitor Cells for the Treatment of Knee Osteoarthritis." In Orthopedic Stem Cell Surgery. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-73299-8_27.

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Hafner, A. L., and C. Dani. "Adipocyte Progenitors from Human Pluripotent Stem Cells." In Adipose Tissue Biology. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-52031-5_2.

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Hafner, Anne-Laure, Tala Mohsen-Kanson, and Christian Dani. "Differentiation of Brown Adipocyte Progenitors Derived from Human Induced Pluripotent Stem Cells." In Adipose-Derived Stem Cells. Springer New York, 2018. http://dx.doi.org/10.1007/978-1-4939-7799-4_4.

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Zimmerlin, Ludovic, Vera S. Donnenberg, and Albert D. Donnenberg. "Rare Event Detection and Analysis in Flow Cytometry: Bone Marrow Mesenchymal Stem Cells, Breast Cancer Stem/Progenitor Cells in Malignant Effusions, and Pericytes in Disaggregated Adipose Tissue." In Flow Cytometry Protocols. Humana Press, 2010. http://dx.doi.org/10.1007/978-1-61737-950-5_12.

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Yao, Xi, Barbara Salingova, and Christian Dani. "Brown-Like Adipocyte Progenitors Derived from Human iPS Cells: A New Tool for Anti-obesity Drug Discovery and Cell-Based Therapy?" In Brown Adipose Tissue. Springer International Publishing, 2018. http://dx.doi.org/10.1007/164_2018_115.

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Conference papers on the topic "Adipose Progenitor Cells"

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Miyamoto, Yoshitaka, Hitomi Ueno, Rei Hokari, et al. "Ultrasound -Assisted Gene Transfer to Adipose Tissue-Derived Stem∕Progenitor Cells (ASCs)." In 10TH INTERNATIONAL SYMPOSIUM ON THERAPEUTIC ULTRASOUND (ISTU 2010). AIP, 2011. http://dx.doi.org/10.1063/1.3607937.

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Castells-Sala, C., B. Sanchez, L. Recha-Sancho, V. Puig, R. Bragos, and C. E. Semino. "Influence of electrical stimulation on 3D-cultures of Adipose Tissue derived progenitor cells (ATDPCs) behavior." In 2012 34th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC). IEEE, 2012. http://dx.doi.org/10.1109/embc.2012.6347278.

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Reggiani, Francesca, Valentina Labanca, Giovanna Talarico, Stefania Orecchioni, Patrizia Mancuso, and Francesco Bertolini. "Abstract 3374: GM-CSF and MMP9 are key regulators of the effect of adipose progenitor cells over breast cancer onset and metastatic progression in obesity." In Proceedings: AACR 107th Annual Meeting 2016; April 16-20, 2016; New Orleans, LA. American Association for Cancer Research, 2016. http://dx.doi.org/10.1158/1538-7445.am2016-3374.

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