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  1. Home
  2. Journals
  3. Stem Cells and Development
  4. 2018
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  2. Journals
  3. Stem Cells and Development
  4. 2018
Showing papers in "Stem Cells and Development in 2018"
Journal Article•10.1089/SCD.2017.0296•
Exosomes Derived from Hypoxia-Treated Human Adipose Mesenchymal Stem Cells Enhance Angiogenesis Through the PKA Signaling Pathway.

[...]

Chunling Xue1, Yamei Shen1, Xuechun Li1, Ba Li1, Sun Zhao2, Junjie Gu2, Yunfei Chen1, Baitao Ma1, Junji Wei1, Qin Han1, Robert Chunhua Zhao1 •
Peking Union Medical College Hospital1, Peking Union Medical College2
01 Apr 2018-Stem Cells and Development
TL;DR: Hypoxia-exposed exosomes derived from hAD-MSCs can improve angiogenesis by activating the PKA signaling pathway and promoting the expression of VEGF.
Abstract: Angiogenesis is a complicated and sequential process that plays an important role in different physiological processes. Mesenchymal stem cells (MSCs), which are pluripotent stem cells, are widely u...

211 citations

Journal Article•10.1089/SCD.2018.0023•
Zinc Promotes Osteoblast Differentiation in Human Mesenchymal Stem Cells Via Activation of the cAMP-PKA-CREB Signaling Pathway.

[...]

Kwang Hwan Park1, Yoorim Choi1, Dong Suk Yoon2, Kyoung-Mi Lee1, Do Hyun Kim1, Jin Woo Lee1 •
Yonsei University1, East Carolina University2
15 Aug 2018-Stem Cells and Development
TL;DR: The results suggest that zinc exerts osteogenic effects in hBMSCs by activation of RUNX2 via the cAMP-PKA-CREB signaling pathway, leading to enhanced osteogenic differentiation in h BMSCs.
Abstract: The crucial trace element zinc stimulates osteogenesis in vitro and in vivo. However, the pathways mediating these effects remain poorly understood. This study aimed to investigate the effects of zinc on osteoblast differentiation in human bone marrow-derived mesenchymal stem cells (hBMSCs) and to identify the molecular mechanisms of these effects. In hBMSCs, zinc exposure resulted in a dose-dependent increase in osteogenesis and increased mRNA and protein levels of the master transcriptional factor RUNX2. Analyzing the upstream signaling pathways of RUNX2, we found that protein kinase A (PKA) signaling inhibition blocked zinc-induced osteogenic effects. Zinc exposure increased transcriptional activity and protein levels of phospho-CREB and enhanced translocation of phospho-CREB into the nucleus. These effects were reversed by H-89, a potent inhibitor of PKA. Moreover, zinc exposure led to dose-dependent increases in levels of intracellular cyclic adenosine monophosphate (cAMP). These findings indicate that zinc activates the PKA signaling pathway by triggering an increase in intracellular cAMP, leading to enhanced osteogenic differentiation in hBMSCs. Our results suggest that zinc exerts osteogenic effects in hBMSCs by activation of RUNX2 via the cAMP-PKA-CREB signaling pathway. Zinc supplementation may offer a promise as a potential pharmaceutical therapy for osteoporosis and other bone loss conditions.

129 citations

Journal Article•10.1089/SCD.2017.0029•
Human Wharton's Jelly-Derived Stem Cells Display a Distinct Immunomodulatory and Proregenerative Transcriptional Signature Compared to Bone Marrow-Derived Stem Cells

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Raf Donders1, Jeroen F. J. Bogie1, Stylianos Ravanidis1, Pascal Gervois1, Marjan Vanheusden1, Raphaël Marée2, Marie Schrynemackers2, Hubert J.M. Smeets3, Jef Pinxteren4, Kristel Gijbels4, Sara Walbers4, Robert W. Mays, Robert J. Deans, Ludo Van Den Bosch4, Piet Stinissen1, Ivo Lambrichts1, Wilfried Gyselaers1, Niels Hellings1 •
University of Hasselt1, University of Liège2, Maastricht University Medical Centre3, Katholieke Universiteit Leuven4
15 Jan 2018-Stem Cells and Development
TL;DR: Gene ontology analysis revealed that genes associated with cell adhesion, proliferation, and immune system functioning are enriched in WJ-MSC, which makes it an attractive candidate for cell-based therapy in neurodegenerative and immune-mediated central nervous system disorders.
Abstract: Mesenchymal stromal cells (MSCs) are multipotent stem cells with immunosuppressive and trophic support functions. While MSCs from different sources frequently display a similar appearance in culture, they often show differences in their surface marker and gene expression profiles. Although bone marrow is considered the "gold standard" tissue to isolate classical MSCs (BM-MSC), MSC-like cells are currently also derived from more easily accessible extra-embryonic tissues such as the umbilical cord. In this study, we defined the best way to isolate MSCs from the Wharton's jelly of the human umbilical cord (WJ-MSC) and assessed the mesenchymal and immunological phenotype of BM-MSC and WJ-MSC. Moreover, the gene expression profile of established WJ-MSC cultures was compared to two different bone marrow-derived stem cell populations (BM-MSC and multipotent adult progenitor cells or MAPC®). We observed that explant culturing of Wharton's jelly matrix is superior to collagenase tissue digestion for obtaining mesenchymal-like cells, with explant isolated cells displaying increased expansion potential. While being phenotypically similar to adult MSCs, WJ-MSC show a different gene expression profile. Gene ontology analysis revealed that genes associated with cell adhesion, proliferation, and immune system functioning are enriched in WJ-MSC. In vivo transplantation confirms their immune modulatory effect on T cells, similar to BM-MSC and MAPC. Furthermore, WJ-MSC intrinsically overexpress genes involved in neurotrophic support and their secretome induces neuronal maturation of SH-SY5Y neuroblastoma cells to a greater extent than BM-MSC. This signature makes WJ-MSC an attractive candidate for cell-based therapy in neurodegenerative and immune-mediated central nervous system disorders such as multiple sclerosis, Parkinson's disease, or amyotrophic lateral sclerosis.

119 citations

Journal Article•10.1089/SCD.2017.0242•
Tissue Engineering Under Microgravity Conditions–Use of Stem Cells and Specialized Cells

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Daniela Grimm1, Daniela Grimm2, Marcel Egli3, Marcus Krüger1, Stefan Riwaldt2, Thomas J. Corydon2, Thomas J. Corydon4, Sascha Kopp1, Markus Wehland1, Petra Wise5, Manfred Infanger1, Vivek Mann6, Alamelu Sundaresan6 •
Otto-von-Guericke University Magdeburg1, Aarhus University2, Lucerne University of Applied Sciences and Arts3, Aarhus University Hospital4, Children's Hospital Los Angeles5, Texas Southern University6
15 Jun 2018-Stem Cells and Development
TL;DR: This review will focus on the current knowledge of the use of stem cells and specialized cells for tissue engineering under simulated microgravity conditions, and report on recent advancements in the ability to construct 3D aggregates from various cell types using devices originally created to prepare for spaceflights.
Abstract: Experimental cell research studying three-dimensional (3D) tissues in space and on Earth using new techniques to simulate microgravity is currently a hot topic in Gravitational Biology and Biomedicine. This review will focus on the current knowledge of the use of stem cells and specialized cells for tissue engineering under simulated microgravity conditions. We will report on recent advancements in the ability to construct 3D aggregates from various cell types using devices originally created to prepare for spaceflights such as the random positioning machine (RPM), the clinostat, or the NASA-developed rotating wall vessel (RWV) bioreactor, to engineer various tissues such as preliminary vessels, eye tissue, bone, cartilage, multicellular cancer spheroids, and others from different cells. In addition, stem cells had been investigated under microgravity for the purpose to engineer adipose tissue, cartilage, or bone. Recent publications have discussed different changes of stem cells when exposed to microgravity and the relevant pathways involved in these biological processes. Tissue engineering in microgravity is a new technique to produce organoids, spheroids, or tissues with and without scaffolds. These 3D aggregates can be used for drug testing studies or for coculture models. Multicellular tumor spheroids may be interesting for radiation experiments in the future and to reduce the need for in vivo experiments. Current achievements using cells from patients engineered on the RWV or on the RPM represent an important step in the advancement of techniques that may be applied in translational Regenerative Medicine.

82 citations

Journal Article•10.1089/SCD.2018.0106•
Accelerate Healing of Severe Burn Wounds by Mouse Bone Marrow Mesenchymal Stem Cell-Seeded Biodegradable Hydrogel Scaffold Synthesized from Arginine-Based Poly(ester amide) and Chitosan.

[...]

Bhagwat V Alapure1, Yan Lu1, Mingyu He2, Chih Chang Chu2, Hongying Peng3, Filipe A. Muhale1, Yue Liang Brewerton4, Bruce A. Bunnell5, Song Hong1 •
LSU Health Sciences Center New Orleans1, Cornell University2, University of Cincinnati Academic Health Center3, University of California, Davis4, Tulane University5
01 Dec 2018-Stem Cells and Development
TL;DR: The results indicate that MSC-seeded ACgels have potential use as a novel adjuvant therapy for severe burns to complement commonly used skin grafting and, thus, minimize the downsides of grafting.
Abstract: Severe burns are some of the most challenging problems in clinics and still lack ideal modalities Mesenchymal stem cells (MSCs) incorporated with biomaterial coverage of burn wounds may offer a viable solution In this report, we seeded MSCs to a biodegradable hybrid hydrogel, namely ACgel, that was synthesized from unsaturated arginine-based poly(ester amide) (UArg-PEA) and chitosan derivative MSC adhered to ACgels ACgels maintained a high viability of MSCs in culture for 6 days MSC seeded to ACgels presented well in third-degree burn wounds of mice at 8 days postburn (dpb) after the necrotic full-thickness skin of burn wounds was debrided and filled and covered by MSC-carrying ACgels MSC-seeded ACgels promoted the closure, reepithelialization, granulation tissue formation, and vascularization of the burn wounds ACgels alone can also promote vascularization but less effectively compared with MSC-seeded ACgels The actions of MSC-seeded ACgels or ACgels alone involve the induction of reparative, anti-inflammatory interleukin-10, and M2-like macrophages, as well as the reduction of inflammatory cytokine TNFα and M1-like macrophages at the late inflammatory phase of burn wound healing, which provided the mechanistic insights associated with inflammation and macrophages in burn wounds For the studied regimens of these treatments, no toxicity was identified to MSCs or mice Our results indicate that MSC-seeded ACgels have potential use as a novel adjuvant therapy for severe burns to complement commonly used skin grafting and, thus, minimize the downsides of grafting

57 citations

Journal Article•10.1089/SCD.2017.0241•
Comparison of antibacterial and immunological properties of Mesenchymal Stem/Stromal cells from equine Bone Marrow, Endometrium and Adipose tissue

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Yennifer Cortes-Araya1, Karin R. Amilon1, Burgunde Elisabeth Rink1, Georgina Black1, Zofia M. Lisowski1, Francesc X Donadeu1, Cristina L. Esteves1 •
University of Edinburgh1
31 Oct 2018-Stem Cells and Development
TL;DR: It is shown that MSC-conditioned media attenuated the growth of Escherichia coli, and that this effect was, on average, more pronounced for endometrium (EM)-derived and adipose tissue (AT) derived MSCs than for bone marrow (BM)-derived M SCs, which suggests that equine MSC's from EM, AT, and BM have both direct and indirect antimicrobial properties that may vary between MSCS from different origins.
Abstract: Equine mesenchymal stem/stromal cells (MSCs) are multipotent cells that are widely used for treatment of musculoskeletal injuries, and there is significant interest in expanding their application to nonorthopedic conditions. MSCs possess antibacterial and immunomodulatory properties that may be relevant for combating infection; however, comparative studies using MSCs from different origins have not been carried out in the horse, and this was the focus of this study. Our results showed that MSC-conditioned media attenuated the growth of Escherichia coli, and that this effect was, on average, more pronounced for endometrium (EM)-derived and adipose tissue (AT)-derived MSCs than for bone marrow (BM)-derived MSCs. In addition, the antimicrobial lipocalin-2 was expressed at mean higher levels in EM-MSCs than in AT-MSCs and BM-MSCs, and the bacterial component lipopolysaccharide (LPS) stimulated its production by all three MSC types. We also showed that MSCs express interleukin-6 (IL-6), IL-8, monocyte chemoattractant protein-1, chemokine ligand-5, and Toll-like receptor 4, and that, in general, these cytokines were induced in all cell types by LPS. Low expression levels of the macrophage marker colony-stimulating factor 1 receptor were detected in BM-MSCs and EM-MSCs but not in AT-MSCs. Altogether, these findings suggest that equine MSCs from EM, AT, and BM have both direct and indirect antimicrobial properties that may vary between MSCs from different origins and could be exploited toward improvement of regenerative therapies for horses.

57 citations

Journal Article•10.1089/SCD.2018.0033•
Immunosuppression of Human Adipose-Derived Stem Cells on T Cell Subsets via the Reduction of NF-kappaB Activation Mediated by PD-L1/PD-1 and Gal-9/TIM-3 Pathways.

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Kaijian Zhou1, Shu Guo1, Shuang Tong1, Qiang Sun1, Fei Li1, Xiaowei Zhang1, Ying Qiao1, Guoxin Liang1 •
China Medical University (PRC)1
01 Sep 2018-Stem Cells and Development
TL;DR: Human ADSCs perform immunoregulatory functions partially through the inhibition of NF-kappaB activation in T cells via the PD-L1/PD-1 and Gal-9/TIM-3 pathways, which provide new insights into the mechanism of human ADSC-mediated immunomodulation.
Abstract: Adipose-derived stem cells (ADSCs) are a type of multipotent mesenchymal stem cells with immunosuppressive capacities. However, the underlying mechanisms involved in the inhibitory effects of ADSCs on T cells are not completely elucidated. In this study, human peripheral blood mononuclear cells (PBMCs) stimulated with anti-CD3/CD28 antibody-coated beads were cultured with or without allogeneic ADSCs (ADSC-to-PBMC ratio, 1:5). Surface marker levels, violet-labeled cell proliferation, apoptosis, interferon-gamma (IFN-gamma) production, and nuclear factor-kappaB (NF-kappaB) phosphorylation of CD4+ and CD8+ T cells were detected using flow cytometry. It was observed that ADSCs significantly suppressed the proliferation and IFN-gamma production but enhanced apoptosis of both CD4+ and CD8+ T cells in T cell receptor (TCR)-stimulated PBMCs. The expressions of programmed death-ligand 1 (PD-L1) and galectin 9 (Gal-9) on ADSCs were significantly upregulated and induced during coculture with PBMCs. TCR-stimulated CD4+ and CD8+ T cells cultured with ADSCs had higher expression levels of programmed death-1 (PD-1) and T cell immunoglobulin and mucin-containing protein-3 (TIM-3) than those in cells cultured without ADSCs. Moreover, the suppressive effects of ADSCs on T cells in terms of proliferation and IFN-gamma production were significantly reversed in the presence of anti-PD-L1 and anti-Gal-9 antibodies. Importantly, the phosphorylation of NF-kappaB in CD4+ and CD8+ T cells cocultured with ADSCs was significantly inhibited, and this inhibition was significantly attenuated via the PD-L1 and Gal-9 blockades. In conclusion, human ADSCs perform immunoregulatory functions partially through the inhibition of NF-kappaB activation in T cells via the PD-L1/PD-1 and Gal-9/TIM-3 pathways, which provide new insights into the mechanism of human ADSC-mediated immunomodulation.

53 citations

Journal Article•10.1089/SCD.2017.0203•
High Glucose Inhibits Neural Stem Cell Differentiation Through Oxidative Stress and Endoplasmic Reticulum Stress

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Xi Chen1, Wei-Bin Shen1, Penghua Yang1, Daoyin Dong1, Winny Sun1, Peixin Yang1 •
University of Maryland, Baltimore1
01 Jun 2018-Stem Cells and Development
TL;DR: In this paper, it was shown that high glucose inhibited embryonic stem cell differ from normal stem cells in the development of the developing neuroepithelium of the human brain by suppressing neurogenesis in the developing brain.
Abstract: Maternal diabetes induces neural tube defects by suppressing neurogenesis in the developing neuroepithelium. Our recent study further revealed that high glucose inhibited embryonic stem cell differ...

52 citations

Journal Article•10.1089/SCD.2017.0260•
Notch Signaling Enhances Stemness by Regulating Metabolic Pathways Through Modifying p53, NF-κB, and HIF-1α

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Hiroyuki Moriyama1, Mariko Moriyama1, Toshiyuki Ozawa2, Daisuke Tsuruta2, Taro Iguchi2, Satoshi Tamada2, Tatsuya Nakatani2, Koichi Nakagawa, Takao Hayakawa1 •
Kindai University1, Osaka City University2
01 Jul 2018-Stem Cells and Development
TL;DR: Observations provide new regulatory mechanisms for the glycolysis by Notch signaling to maintain the stemness of hASCs.
Abstract: Human adipose-derived mesenchymal stromal cells (hASCs) are attractive for regenerative medicine, but their limited in vitro life span limits their therapeutic applicability. Recent data demonstrate that hypoxia may benefit the ex vivo culture of stem cells. Such cells exhibit a high level of glycolytic metabolism under hypoxic conditions. However, the physiological role of glycolytic activation and its underlying regulatory mechanism are incompletely understood. We have shown that when activated under conditions of 5% O2, Notch signaling dramatically increases the rate of glycolysis, improves proliferation efficiency, prevents senescence, and maintains the multipotency of hASCs. In the present study, we found that activated Notch1 enhanced nuclear p65 levels, resulting in an increase in glucose metabolism through the upregulation of glycolytic factors, including GLUT3. Notch signaling was also involved in glucose metabolism through p53 inactivation. We also found that NF-κB signaling was regulated by p53...

43 citations

Journal Article•10.1089/SCD.2017.0077•
Extracellular Matrix from Periodontal Ligament Cells Could Induce the Differentiation of Induced Pluripotent Stem Cells to Periodontal Ligament Stem Cell-Like Cells.

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Sayuri Hamano1, Atsushi Tomokiyo1, Daigaku Hasegawa1, Shinichiro Yoshida1, Hideki Sugii1, Hiromi Mitarai1, Shoko Fujino1, Naohisa Wada1, Hidefumi Maeda1 •
Kyushu University1
15 Jan 2018-Stem Cells and Development
TL;DR: A culture method is presented to produce high number of PDLSC-like cells from iPS cells as a first step toward a strategy for PDL regeneration.
Abstract: The periodontal ligament (PDL) plays an important role in anchoring teeth in the bone socket. Damage to the PDL, such as after severe inflammation, can be treated with a therapeutic strategy that uses stem cells derived from PDL tissue (PDLSCs), a strategy that has received intense scrutiny over the past decade. However, there is an insufficient number of PDLSCs within the PDL for treating such damage. Therefore, we sought to induce the differentiation of induced pluripotent stem (iPS) cells into PDLSCs as an initial step toward PDL therapy. To this end, we first induced iPS cells into neural crest (NC)-like cells. We then captured the p75 neurotrophic receptor-positive cells (iPS-NC cells) and cultured them on an extracellular matrix (ECM) produced by human PDL cells (iPS-NC-PDL cells). These iPS-NC-PDL cells showed reduced expression of embryonic stem cell and NC cell markers as compared with iPS and iPS-NC cells, and enrichment of mesenchymal stem cell markers. The cells also had a higher proliferative capacity, multipotency, and elevated expression of PDL-related markers than iPS-NC cells cultured on fibronectin and laminin (iPS-NC-FL cells) or ECM produced by human skin fibroblast cells (iPS-NC-SF cells). Overall, we present a culture method to produce high number of PDLSC-like cells from iPS cells as a first step toward a strategy for PDL regeneration.

37 citations

Journal Article•10.1089/SCD.2018.0055•
Metformin Preconditioning of Human Induced Pluripotent Stem Cell-Derived Neural Stem Cells Promotes Their Engraftment and Improves Post-Stroke Regeneration and Recovery

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Fares Ould-Brahim1, Sailendra Nath Sarma1, Charvi Syal1, Charvi Syal2, Kevin Jiaqi Lu1, Matthew Seegobin1, Anthony Carter2, Matthew S. Jeffers2, Carole Doré, William L. Stanford, Dale Corbett, Jing Wang •
Ottawa Hospital Research Institute1, University of Ottawa2
15 Aug 2018-Stem Cells and Development
TL;DR: Pretreatment of hiPSC-NSCs with metformin with preconditioning enhances the proliferation and differentiation of hi PSSCs in culture and shows increased engraftment 1 week post-transplantation in a rat endothelin-1 focal ischemic stroke model.
Abstract: While transplantation of human induced pluripotent stem cell-derived neural stem cells (hiPSC-NSCs) shows therapeutic potential in animal stroke models, major concerns for translating hiPSC therapy to the clinic are efficacy and safety. Therefore, there is a demand to develop an optimal strategy to enhance the engraftment and regenerative capacity of transplanted hiPSC-NSCs to produce fully differentiated neural cells to replace lost brain tissues. Metformin, an FDA-approved drug, is an optimal neuroregenerative agent that not only promotes NSC proliferation but also drives NSCs toward differentiation. In this regard, we hypothesize that preconditioning of hiPSC-NSCs with metformin before transplantation into the stroke-damaged brain will improve engraftment and regenerative capabilities of hiPSC-NSCs, ultimately enhancing functional recovery. In this study, we show that pretreatment of hiPSC-NSCs with metformin enhances the proliferation and differentiation of hiPSC-NSCs in culture. Furthermore, metformin-preconditioned hiPSC-NSCs show increased engraftment 1 week post-transplantation in a rat endothelin-1 focal ischemic stroke model. In addition, metformin-preconditioned cell grafts exhibit increased survival compared to naive cell grafts at 7 weeks post-transplantation. Analysis of the grafts demonstrates that metformin preconditioning enhances the differentiation of hiPSC-NSCs at the expense of their proliferation. As an outcome, rats receiving metformin-preconditioned cells display accelerated gross motor recovery and reduced infarct volume. These studies represent a vital step forward in the optimization of hiPSC-NSC-based transplantation to promote post-stroke recovery.
Journal Article•10.1089/SCD.2018.0043•
Human Gastric Cancer Mesenchymal Stem Cell-Derived IL15 Contributes to Tumor Cell Epithelial-Mesenchymal Transition via Upregulation Tregs Ratio and PD-1 Expression in CD4+T Cell.

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Li Sun1, Qianqian Wang1, Bin Chen1, Yuanyuan Zhao1, Bo Shen2, Xinlong Wang1, Miaolin Zhu2, Zhuqian Li1, Xiangdong Zhao3, Changgen Xu3, Zhihong Chen1, Mei Wang1, Wenrong Xu1, Wei Zhu1 •
Jiangsu University1, Nanjing Medical University2, Gulf Coast Regional Blood Center3
01 Sep 2018-Stem Cells and Development
TL;DR: The data proved that the high concentration of IL15 in tumor microenvironment, which was mainly secreted by GCMSCs, may contribute to tumor cell metastasis and offer a new opportunity to develop effective therapeutics for intercepting tumor progression.
Abstract: Several studies show that mesenchymal stem cells (MSCs) homing to tumors not only provide the microenvironment for tumor cells but also promote tumor growth and metastasis. However, the exact mechanism remains unclear. Our study aims to investigate the role of gastric cancer MSCs (GCMSCs)-derived IL15 during GC progression. The effects of IL15 secreted by GCMSCs on GC development were evaluated by detecting the stemness, epithelial-mesenchymal transition (EMT), and migration abilities of GC cell lines. The expression of IL15 in serum and tissues of GC patients was also assessed. We found that IL15 derived from GCMSCs enhanced stemness, induced EMT and promoted migration of GC cell lines. The level of IL15 was higher in GC patients both in serum and tissues compared with that in healthy donors, which was associated with lymph node metastasis. In addition, the results have shown that IL15 in GC microenvironment was mainly produced by GCMSCs. Moreover, IL15 upregulated Tregs ratio through activation of STAT5 in CD4+T cells was accompanied by elevated expression of programmed cell death protein-1 (PD-1). Our data proved that the high concentration of IL15 in tumor microenvironment, which was mainly secreted by GCMSCs, may contribute to tumor cell metastasis and offer a new opportunity to develop effective therapeutics for intercepting tumor progression.
Journal Article•10.1089/SCD.2017.0299•
Simulated Microgravity Culture Enhances the Neuroprotective Effects of Human Cranial Bone-Derived Mesenchymal Stem Cells in Traumatic Brain Injury.

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Takashi Otsuka1, Takeshi Imura1, Kei Nakagawa1, Looniva Shrestha1, Shinya Takahashi1, Yumi Kawahara, Taijiro Sueda1, Kaoru Kurisu1, Louis Yuge1 •
Hiroshima University1
15 Sep 2018-Stem Cells and Development
TL;DR: In this article, the authors investigated the therapeutic mechanisms of transplantation of mesenchymal stem cells (MSCs) cultured under simulated microgravity (MG) conditions in traumatic brain injury (TBI) model mice.
Abstract: Fundamental cures of central nervous system (CNS) diseases are rarely achieved due to the low regenerative ability of the CNS Recently, cell-based therapy using mesenchymal stem cells (MSCs) has been explored as an effective treatment for CNS diseases Among the various tissue-derived MSCs, we have isolated human cranial bone-derived MSCs (cMSCs) in our laboratory In addition, we have focused on simulated microgravity (MG) as a valuable culture environment of MSCs However, detailed mechanisms underlying functional recovery from transplantation of MSCs cultured under MG conditions remain unclear In this study, we investigated the therapeutic mechanisms of transplantation of cMSCs cultured under MG conditions in traumatic brain injury (TBI) model mice Human cMSCs were cultured under 1G and MG conditions, and cMSCs cultured under MG conditions expressed significantly higher messenger RNA (mRNA) levels of hepatocyte growth factor (HGF) and transforming growth factor beta (TGF-β) In TBI model mice, the transplantation of cMSCs cultured under MG conditions (group MG) showed greater motor functional improvement compared with only phosphate-buffered saline administration (group PBS) Moreover, the protein expression levels of tumor necrosis factor alpha (TNF-α) and the Bcl-2-associated X protein (Bax)/b cell leukemia/lymphoma 2 protein (Bcl-2) ratio were significantly lower at brain injury sites in mice of group MG than those of group PBS In addition, an in vitro study showed that the conditioned medium of cMSCs cultured under MG conditions significantly suppressed the cell death of NG108-15 cells exposed to oxidative or inflammatory stress through anti-inflammatory and antiapoptosis effects These findings demonstrate that culturing cMSCs under simulated MG increases the neuroprotective effects, suggesting that simulated MG cultures may be a useful method for cell-based therapy strategies for CNS diseases
Journal Article•10.1089/SCD.2018.0037•
Validation of Osteogenic Properties of Cytochalasin D by High-Resolution RNA-Sequencing in Mesenchymal Stem Cells Derived from Bone Marrow and Adipose Tissues

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Rebekah M. Samsonraj1, Christopher R. Paradise1, Amel Dudakovic1, Buer Sen2, Asha Nair1, Allan B. Dietz1, David R. Deyle1, Simon M. Cool3, Janet Rubin1, Andre J. van Wijnen1 •
Mayo Clinic1, University of North Carolina at Chapel Hill2, Agency for Science, Technology and Research3
15 Aug 2018-Stem Cells and Development
TL;DR: While the stimulatory effects of CytoD on osteogenesis are pleiotropic and depend on the biological state of the cell type, a small group of genes including VGLL4 may contribute to MSC commitment toward the bone lineage.
Abstract: Differentiation of mesenchymal stromal/stem cells (MSCs) involves a series of molecular signals and gene transcription events required for attaining cell lineage commitment. Modulation of the actin cytoskeleton using cytochalasin D (CytoD) drives osteogenesis at early timepoints in bone marrow-derived MSCs and also initiates a robust osteogenic differentiation program in adipose tissue-derived MSCs. To understand the molecular basis for these pronounced effects on osteogenic differentiation, we investigated global changes in gene expression in CytoD-treated murine and human MSCs by high-resolution RNA-sequencing (RNA-seq) analysis. A three-way bioinformatic comparison between human adipose tissue-derived MSCs (hAMSCs), human bone marrow-derived MSCs (hBMSCs), and mouse bone marrow-derived MSCs (mBMSCs) revealed significant upregulation of genes linked to extracellular matrix organization, cell adhesion and bone metabolism. As anticipated, the activation of these differentiation-related genes is accompanied by a downregulation of nuclear and cell cycle-related genes presumably reflecting cytostatic effects of CytoD. We also identified eight novel CytoD activated genes-VGLL4, ARHGAP24, KLHL24, RCBTB2, BDH2, SCARF2, ACAD10, HEPH-which are commonly upregulated across the two species and tissue sources of our MSC samples. We selected the Hippo pathway-related VGLL4 gene, which encodes the transcriptional co-factor Vestigial-like 4, for further study because this pathway is linked to osteogenesis. VGLL4 small interfering RNA depletion reduces mineralization of hAMSCs during CytoD-induced osteogenic differentiation. Together, our RNA-seq analyses suggest that while the stimulatory effects of CytoD on osteogenesis are pleiotropic and depend on the biological state of the cell type, a small group of genes including VGLL4 may contribute to MSC commitment toward the bone lineage.
Journal Article•10.1089/SCD.2018.0024•
Effects of Gravity, Microgravity or Microgravity Simulation on Early Mammalian Development.

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Douglas M. Ruden1, Alan D. Bolnick1, Awoniyi O. Awonuga1, Mohammed Abdulhasan1, Gloria I. Perez, Elizabeth E. Puscheck1, Daniel A. Rappolee •
Wayne State University1
15 Sep 2018-Stem Cells and Development
TL;DR: This review will analyze the positive and negative mammalian early developmental outcomes, and enzymatic and epigenetic mechanisms known to mediate developmental responses to simulated microgravity on Earth and microgravity during spaceflight experiments.
Abstract: Plant and animal life forms evolved mechanisms for sensing and responding to gravity on Earth where homeostatic needs require responses. The lack of gravity, such as in the International Space Station (ISS), causes acute, intra-generational changes in the quality of life. These include maintaining calcium levels in bone, maintaining muscle tone, and disturbances in the vestibular apparatus in the ears. These problems decrease work efficiency and quality of life of humans not only during microgravity exposures but also after return to higher gravity on Earth or destinations such as Mars or the Moon. It has been hypothesized that lack of gravity during mammalian development may cause prenatal, postnatal and transgenerational effects that conflict with the environment, especially if the developing organism and its progeny are returned, or introduced de novo, into the varied gravity environments mentioned above. Although chicken and frog pregastrulation development, and plant root development, have profound effects due to orientation of cues by gravity-sensing mechanisms and responses, mammalian development is not typically characterized as gravity-sensing. Although no effects of microgravity simulation (MGS) on mouse fertilization were observed in two reports, negative effects of MGS on early mammalian development after fertilization and before gastrulation are presented in four reports that vary with the modality of MGS. This review will analyze the positive and negative mammalian early developmental outcomes, and enzymatic and epigenetic mechanisms known to mediate developmental responses to simulated microgravity on Earth and microgravity during spaceflight experiments. We will update experimental techniques that have already been developed or need to be developed for zero gravity molecular, cellular, and developmental biology experiments.
Journal Article•10.1089/SCD.2017.0271•
Lower Senescence of Adipose-Derived Stem Cells than Donor-Matched Bone Marrow Stem Cells for Surgical Ventricular Restoration.

[...]

Hua Wu1, Jian-Zhong Li1, Bao-Dong Xie1, Hai Tian1, Shao-hong Fang1, Shu-Lin Jiang1, Kai Kang1 •
Harbin Medical University1
01 May 2018-Stem Cells and Development
TL;DR: Assessment of proliferation of, antiapoptosis potential of, and expression of senescence-associated factors in adipose-derived stem cells and bone marrow stem cells in vitro and in vivo suggests that ADSCs may be superior to BMSCs with regard to autologous cell transplantation in elderly patients.
Abstract: Surgical ventricular reconstruction (SVR) can restore cardiac function for left ventricular aneurysm to some extent. However, the patches used in this treatment have some limitations such as stiffness and calcification. Engineering heart tissues (EHTs) have emerged as a promising biomaterial to repair damaged heart. Nevertheless, selecting optimal candidate cells for EHTs has been controversial. Aging is a major consideration for seed cells derived from elderly patients. Hence, this study was aimed to assess the proliferation of, antiapoptosis potential of, and expression of senescence-associated factors (eg, SA-β-Gal, cyclin-dependent kinase inhibitor 2A (P16), cyclin-dependent kinase inhibitor 1 (P21) in adipose-derived stem cells (ADSCs), and bone marrow stem cells (BMSCs) in vitro. In addition, cardiac function, cell survival, and angiogenesis of ADSCs and BMSCs after SVR were assessed in vivo. The in vitro results showed that old ADSCs (OAs) grew faster; expressed lower levels of SA-β-Gal, P16, and P21; and possessed more pronounced antiapoptosis activity than old BMSCs (OBs). The in vivo results demonstrated that 28 days after patch implantation, animals that received OAs patches showed better restoration of cardiac function than animals that received OBs patches. Meanwhile, old ADSCs possessed more potential regarding cell survival and angiogenesis. These results suggest that ADSCs may be superior to BMSCs with regard to autologous cell transplantation in elderly patients.
Journal Article•10.1089/SCD.2018.0084•
Generation of Footprint-Free Canine Induced Pluripotent Stem Cells Using Auto-Erasable Sendai Virus Vector

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Masaya Tsukamoto1, Toshiya Nishimura2, Toshiya Nishimura3, Kyohei Yodoe1, Ryoji Kanegi1, Yasunori Tsujimoto1, Emtiaj Alam1, Mizuki Kuramochi1, Mitsuru Kuwamura1, Manami Ohtaka4, Ken Nishimura5, Mahito Nakanishi4, Toshio Inaba1, Kikuya Sugiura1, Shingo Hatoya1 •
Osaka Prefecture University1, Stanford University2, University of Tokyo3, National Institute of Advanced Industrial Science and Technology4, University of Tsukuba5
07 Nov 2018-Stem Cells and Development
TL;DR: To the authors' knowledge, for the first time, it is demonstrated the generation of footprint-free and high-quality ciPSCs that can be passaged at the single-cell stage using enzymatic methods.
Abstract: Canine induced pluripotent stem cells (ciPSCs) can be used in regenerative medicine However, there are no reports on the generation of genome integration-free and completely exogenous gene-silenced (footprint free) ciPSCs that are tolerant to enzymatic single-cell passage In this study, we reprogrammed canine embryonic fibroblasts using the auto-erasable replication-defective and persistent Sendai virus vector, SeVdp(KOSM)302L, and generated two ciPSC lines The ciPSCs were positive for pluripotent markers, including alkaline phosphatase activity as well as OCT3/4, SOX2, and NANOG transcripts, and NANOG, stage-specific embryonic antigen-1, and partial TRA-1-60 protein expression, even after SeVdp(KOSM)302L removal The ciPSCs were induced to differentiate into all the three germ layers as embryoid bodies in vitro and as teratomas in vivo Furthermore, SeVdp(KOSM)302L-free ciPSCs maintained a normal karyotype even after repeated enzymatic single-cell passaging Therefore, to our knowledge, for the first time, we demonstrated the generation of footprint-free and high-quality ciPSCs that can be passaged at the single-cell stage using enzymatic methods Our method for generation of ciPSCs is a good step toward the development of clinical application of ciPSCs
Journal Article•10.1089/SCD.2018.0114•
Identification and Characterization of a Stem Cell-Like Population in Bovine Milk: A Potential New Source for Regenerative Medicine in Veterinary

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Caterina Pipino1, Domitilla Mandatori1, Flavia Buccella2, Paola Lanuti1, Alessandra Preziuso1, Federica Castellani2, Lisa Grotta2, Pamela Di Tomo1, Sonia Marchetti2, Natalia Di Pietro1, Angelo Cichelli1, Assunta Pandolfi1, Giuseppe Martino2 •
University of Chieti-Pescara1, University of Teramo2
07 Nov 2018-Stem Cells and Development
TL;DR: The data suggest that bovine milk is an easily available source of multipotent stem cells able to differentiate into multiple cell lineages and can open new possibilities for development biology and regenerative medicine in veterinary area to improving animal health.
Abstract: Milk is a complex fluid required for development, nutrition and immunological protection to the newborn offspring. Interestingly, latest finding proved the presence of novel stem cell population in...
Journal Article•10.1089/SCD.2017.0291•
The Role of Dissolved Oxygen Levels on Human Mesenchymal Stem Cell Culture Success, Regulatory Compliance, and Therapeutic Potential.

[...]

Soukaina Bahsoun1, Karen Coopman1, Nicholas R. Forsyth2, Elizabeth Claire Akam1•
Loughborough University1, Keele University2
22 Aug 2018-Stem Cells and Development
TL;DR: An "hMSC checklist" is discussed as a guide to establishing which identity and potency assays to implement when studying hMSCs and a nascent hypothesis to explain the behavior of h MSCs in long-term hypoxia is presented.
Abstract: Most cells in the human body, including human mesenchymal stem cells (hMSCs), have evolved to survive and function in a low physiological oxygen (O2) environment. Investigators have become increasingly aware of the effects of O2 levels on hMSC biology and culture and are mimicking the natural niche of these cells in vitro to improve cell culture yields. This presents many challenges in relation to hMSC identity and function and in the maintenance of a controlled O2 environment for cell culture. The aim of this review was to discuss an "hMSC checklist" as a guide to establishing which identity and potency assays to implement when studying hMSCs. The checklist includes markers, differentiation potential, proliferation and growth, attachment and migration, genomic stability, and paracrine activity. Evidence drawn from the current literature demonstrates that low O2 environments could improve most "hMSC checklist" attributes. However, there are substantial inconsistencies around both the terminology and the equipment used in low O2 studies. Therefore, "hypoxia" as a term and as a culture condition is discussed. The biology of short-term (acute) versus long-term (chronic) hypoxia is considered, and a nascent hypothesis to explain the behavior of hMSCs in long-term hypoxia is presented. It is hoped that by establishing an ongoing discourse and driving toward a regulatory recognizable "hMSC checklist," we may be better able to provide the patient population with safe and efficacious regenerative treatments.
Journal Article•10.1089/SCD.2018.0150•
FACT Inhibition Blocks Induction But Not Maintenance of Pluripotency.

[...]

Zuolian Shen1, Tim Formosa1, Dean Tantin1•
University of Utah1
15 Dec 2018-Stem Cells and Development
TL;DR: Although FACT has been considered to be an essential transcription elongation factor, these results contribute to the emerging view that it instead promotes transitions between stable chromatin states, including during reprogramming to pluripotency.
Abstract: The histone chaperone facilitates chromatin transactions (FACT) is associated with nuclear processes, including DNA transcription, replication, and repair. We previously showed that FACT is transiently recruited to pluripotency-associated target genes by newly bound Oct4. In this study, we tested the effects of FACT depletion by knockout or chemical inhibition on the induction and maintenance of pluripotency. Clustered regularly interspaced short palindromic repeat (CRISPR)-mediated deletion of the FACT subunit Spt16 did not affect the viability or proliferation of fibroblasts but blocked their ability to form induced pluripotent stem cells. Similarly, a small molecule inhibitor of FACT blocked the induction of pluripotency at an early step in reprogramming, without affecting the viability, proliferation, undifferentiated state, or the expression of core pluripotency genes. Notably, trypsinization and passage of pluripotent cells transiently reintroduced a requirement for FACT. Although FACT has been considered to be an essential transcription elongation factor, these results contribute to the emerging view that it instead promotes transitions between stable chromatin states, including during reprogramming to pluripotency.
Journal Article•10.1089/SCD.2017.0268•
Simplified Footprint-Free Cas9/CRISPR Editing of Cardiac-Associated Genes in Human Pluripotent Stem Cells.

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Alexander Kondrashov1, Minh Duc Hoang1, James G W Smith1, Jamie R. Bhagwan1, Gary Duncan1, Diogo Mosqueira1, Maria D. Barbadillo Muñoz1, Nguyen T.N. Vo1, Chris Denning1 •
University of Nottingham1
15 Mar 2018-Stem Cells and Development
TL;DR: A simplified PiggyBac strategy shortened hPSC editing by 2 weeks and required one round of clonal expansion and genotyping rather than two, with similar efficiencies to the longer conventional process.
Abstract: Modeling disease with human pluripotent stem cells (hPSCs) is hindered because the impact on cell phenotype from genetic variability between individuals can be greater than from the pathogenic mutation. While "footprint-free" Cas9/CRISPR editing solves this issue, existing approaches are inefficient or lengthy. In this study, a simplified PiggyBac strategy shortened hPSC editing by 2 weeks and required one round of clonal expansion and genotyping rather than two, with similar efficiencies to the longer conventional process. Success was shown across four cardiac-associated loci (ADRB2, GRK5, RYR2, and ACTC1) by genomic cleavage and editing efficiencies of 8%-93% and 8%-67%, respectively, including mono- and/or biallelic events. Pluripotency was retained, as was differentiation into high-purity cardiomyocytes (CMs; 88%-99%). Using the GRK5 isogenic lines as an exemplar, chronic stimulation with the β-adrenoceptor agonist, isoprenaline, reduced beat rate in hPSC-CMs expressing GRK5-Q41 but not GRK5-L41; this was reversed by the β-blocker, propranolol. This shortened, footprint-free approach will be useful for mechanistic studies.
Journal Article•10.1089/SCD.2017.0145•
Impaired Angiogenic Supportive Capacity and Altered Gene Expression Profile of Resident CD146+ Mesenchymal Stromal Cells Isolated from Hyperoxia-Injured Neonatal Rat Lungs.

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Jennifer J P Collins1, Jennifer J P Collins2, Marissa A Lithopoulos1, Marissa A Lithopoulos2, Claudia C. dos Santos3, Claudia C. dos Santos4, Nahla Issa2, Nahla Issa1, Marius A Möbius5, Marius A Möbius2, Caryn Ito1, Caryn Ito2, Shumei Zhong2, Arul Vadivel2, Bernard Thébaud6, Bernard Thébaud1, Bernard Thébaud2 •
University of Ottawa1, Ottawa Hospital Research Institute2, University of Toronto3, St. Michael's Hospital4, Dresden University of Technology5, Children's Hospital of Eastern Ontario6
15 Aug 2018-Stem Cells and Development
TL;DR: In vivo hyperoxia exposure alters the proangiogenic effects and FGF expression of L-MSCs, and decreased CD73 and JAK/STAT expression suggests decreased immune function, which may lead to improvements in manufacturing exogenous MSCs with superior repair capabilities.
Abstract: Bronchopulmonary dysplasia (BPD), the most common complication of extreme preterm birth, can be caused by oxygen-related lung injury and is characterized by impaired alveolar and vascular development. Mesenchymal stromal cells (MSCs) have lung protective effects. Conversely, BPD is associated with increased MSCs in tracheal aspirates. We hypothesized that endogenous lung (L-)MSCs are perturbed in a well-established oxygen-induced rat model mimicking BPD features. Rat pups were exposed to 21% or 95% oxygen from birth to postnatal day 10. On day 12, CD146+ L-MSCs were isolated and characterized according to the International Society for Cellular Therapy criteria. Epithelial and vascular repair potential were tested by scratch assay and endothelial network formation, respectively, immune function by mixed lymphocyte reaction assay. Microarray analysis was performed using the Affymetrix GeneChip and gene set enrichment analysis software. CD146+ L-MSCs isolated from rat pups exposed to hyperoxia had decreased CD73 expression and inhibited lung endothelial network formation. CD146+ L-MSCs indiscriminately promoted epithelial wound healing and limited T cell proliferation. Expression of potent antiangiogenic genes of the axonal guidance cue and CDC42 pathways was increased after in vivo hyperoxia, whereas genes of the anti-inflammatory Janus kinase (JAK)/signal transducer and activator of transcription (STAT) and lung/vascular growth-promoting fibroblast growth factor (FGF) pathways were decreased. In conclusion, in vivo hyperoxia exposure alters the proangiogenic effects and FGF expression of L-MSCs. In addition, decreased CD73 and JAK/STAT expression suggests decreased immune function. L-MSC function may be perturbed and contribute to BPD pathogenesis. These findings may lead to improvements in manufacturing exogenous MSCs with superior repair capabilities.
Journal Article•10.1089/SCD.2018.0056•
The Fate of Autologous Endometrial Mesenchymal Stromal Cells After Application in the Healthy Equine Uterus.

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B. Elisabeth Rink1, B. Elisabeth Rink2, B. Elisabeth Rink3, Teresa Beyer2, Hilari M. French1, E. Watson1, Christine Aurich2, F. Xavier Donadeu3 •
Ross University School of Veterinary Medicine1, University of Veterinary Medicine Vienna2, University of Edinburgh3
01 Aug 2018-Stem Cells and Development
TL;DR: It is concluded that endometrial MSCs obtained from routine uterine biopsies could provide a safe and effective cell source for treatment of inflammatory conditions of the uterus and potentially other tissues.
Abstract: Because of their distinct differentiation, immunomodulatory, and migratory capacities, endometrial mesenchymal stromal cells (MSCs) may provide an optimum source of therapeutic cells not only in re...
Journal Article•10.1089/SCD.2017.0248•
Human Umbilical Cord Perivascular Cells and Human Bone Marrow Mesenchymal Stromal Cells Transplanted Intramuscularly Respond to a Distant Source of Inflammation

[...]

Shiva Hamidian Jahromi1, Catalina Estrada, Yunqing Li, Elaine Cheng, John E. Davies1 •
University of Toronto1
15 Mar 2018-Stem Cells and Development
TL;DR: Inflammation decreased over 48 h, but neonatal cells showed an earlier response than BMMSCs, and neonatal MSCs may represent a stronger candidate than those derived from adult BM to treat inflammatory diseases.
Abstract: Intravenously administered mesenchymal stromal cells (MSCs) are rapidly entrapped in the lungs, where they display an anti-inflammatory phenotype Intramuscular (IM) delivery provides an increased
Journal Article•10.1089/SCD.2017.0270•
In Vitro Pluripotent Stem Cell Differentiation to Hepatocyte Ceases Further Maturation at an Equivalent Stage of E15 in Mouse Embryonic Liver Development

[...]

Ravali Raju1, David Y.S. Chau1, Tineke Notelaers2, Chad L. Myers1, Catherine M. Verfaillie2, Wei Shou Hu1 •
University of Minnesota1, Katholieke Universiteit Leuven2
01 Jul 2018-Stem Cells and Development
TL;DR: A meta-analysis of cross-species transcriptome data of in vitro differentiation of human PSCs to H LCs and in vivo mouse embryonic liver development to identify the developmental stage at which HLC maturation was blocked at found HLCs to cease further maturation at an equivalent stage of mouse embryonic day (E)13-15.
Abstract: Hepatocyte-like cells (HLCs) can be derived from pluripotent stem cells (PSCs) by sequential treatment of chemical cues to mimic the microenvironment of embryonic liver development. However, these HLCs do not reach the full maturity level of primary hepatocytes. In this study, we carried out a meta-analysis of cross-species transcriptome data of in vitro differentiation of human PSCs to HLCs and in vivo mouse embryonic liver development to identify the developmental stage at which HLC maturation was blocked at. Systematic variations were found associated with the data source and removed by batch correction. Using principal component analysis, HLCs from different stages of differentiation were aligned with mouse embryonic liver development chronologically. A "unified developmental time" (DT) scale was developed after aligning in vitro HLC differentiation and in vivo embryonic liver development. HLCs were found to cease further maturation at an equivalent stage of mouse embryonic day (E)13-15. Genes with discordant time dynamics were identified by aligning in vivo and in vitro data set onto a common DT scale. These genes may be targets of genetic intervention for enhancing the maturity of PSC-derived HLCs.
Journal Article•10.1089/SCD.2018.0124•
TGFBI Expressed by Bone Marrow Niche Cells and Hematopoietic Stem and Progenitor Cells Regulates Hematopoiesis

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Sofieke Klamer1, Yvonne L. Dorland1, Marion Kleijer1, Dirk Geerts1, William Lento2, C. Ellen van der Schoot1, Marieke von Lindern1, Carlijn Voermans1 •
University of Amsterdam1, Duke University2
25 Oct 2018-Stem Cells and Development
TL;DR: Results indicate that reduced TGFBI levels in HSPCs enhanced HSC maintenance, but only in the presence of MSCs, and tight regulation of TGF BI expression in the BM niche is essential for balanced HSPC proliferation and differentiation.
Abstract: The interactions of hematopoietic stem and progenitor cells (HSPCs) with extracellular matrix (ECM) components and cells from the bone marrow (BM) microenvironment control their homeostasis. Regenerative BM conditions can induce expression of the ECM protein transforming growth factor beta-induced gene H3 (TGFBI or BIGH3) in murine HSPCs. In this study, we examined how increased or reduced TGFBI expression in human HSPCs and BM mesenchymal stromal cells (MSCs) affects HSPC maintenance, differentiation, and migration. HSPCs that overexpressed TGFBI showed accelerated megakaryopoiesis, whereas granulocyte differentiation and proliferation of granulocyte, erythrocyte, and monocyte cultures were reduced. In addition, both upregulation and downregulation of TGFBI expression impaired HSPC colony-forming capacity of HSPCs. Interestingly, the colony-forming capacity of HSPCs with reduced TGFBI levels was increased after long-term co-culture with MSCs, as measured by long-term culture-colony forming cell (LTC-CFC) formation. Moreover, TGFBI downregulation in HSPCs resulted in increased cobblestone area-forming cell (CAFC) frequency, a measure for hematopoietic stem cell (HSC) capacity. Concordantly, TGFBI upregulation in HSPCs resulted in a decrease of CAFC and LTC-CFC frequency. These results indicate that reduced TGFBI levels in HSPCs enhanced HSC maintenance, but only in the presence of MSCs. In addition, reduced levels of TGFBI in MSCs affected MSC/HSPC interaction, as observed by an increased migration of HSPCs under the stromal layer. In conclusion, tight regulation of TGFBI expression in the BM niche is essential for balanced HSPC proliferation and differentiation.
Journal Article•10.1089/SCD.2018.0059•
Role of Epigenetic Regulation by the REST/CoREST/HDAC Corepressor Complex of Moderate NANOG Expression in Chicken Primordial Germ Cells.

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Hyun Gyo Jung1, Young Hwang1, Young Hyun Park1, Ho Yeon Cho1, Deivendran Rengaraj1, Jae Yong Han1 •
Seoul National University1
01 Sep 2018-Stem Cells and Development
TL;DR: It is demonstrated that moderate regulation of NANOG by the REST/CoREST/HDAC complex might be crucial for maintaining the integrity of PGCs.
Abstract: Primordial germ cells (PGCs), the precursors of gametes, have regulatory mechanisms involving transcription factors and epigenetic modifications. The transcription factor NANOG is a key regulator of germ cell and embryonic stem cell characteristics. However, the epigenetic regulation of NANOG with a histone deacetylase (HDAC) complex in PGCs has not been studied. In this study, we investigated the epigenetic regulation, and in particular the histone acetylation, of NANOG in chicken PGCs. Intriguingly, although NANOG was highly activated in chicken PGCs, the upstream region of its promoter was moderately suppressed by histone deacetylation. HDAC inhibition induced histone H3 lysine 9 acetylation (H3K9ac) and derepressed NANOG expression. Furthermore, knockdown studies revealed that HDAC complex members, such as RE1-silencing transcription factor (REST) and REST corepressor 3 (RCOR3), are important epigenetic modulators of NANOG expression in chicken PGCs. We demonstrate that moderate regulation of NANOG by the REST/CoREST/HDAC complex might be crucial for maintaining the integrity of PGCs.
Journal Article•10.1089/SCD.2018.0146•
Label-Retaining, Putative Mesenchymal Stem Cells Contribute to Murine Myometrial Repair During Uterine Involution

[...]

Amanda L. Patterson1, Jitu W George1, Anindita Chatterjee1, Tyler J. Carpenter1, Emily Wolfrum2, James K. Pru3, José A. Teixeira1 •
Michigan State University1, Van Andel Institute2, Washington State University3
13 Nov 2018-Stem Cells and Development
TL;DR: This study identified myometrial label-retaining cells (LRCs) that persisted for at least 3 months, expressed CD146 and CD140b (MSC markers), and proliferated at a higher rate during uterine INV compared with nonlabeled cells.
Abstract: Uterine remodeling during pregnancy is a fundamental, dynamic process required for successful propagation of eutherian species. The uterus can increase in size up to 40-fold during pregnancy, which is largely attributed to expansion of the myometrium by hyperplasia and hypertrophy. After pregnancy, the uterus repairs the remodeled or "damaged" tissue during uterine involution (INV). Little is known about this repair process, particularly the role of mesenchymal stem/progenitor cells. The objective of this study was to identify and characterize putative mesenchymal stem/progenitor cells in the murine myometrium using a combination of label retention and mesenchymal stem cell (MSC) marker expression and a pregnancy and uterine INV model. Tet-off transgenic mice with the Cre-lox system were used to specifically label mesenchymal cells (ie, myometrial and endometrial stromal cells) within the uterus while avoiding other cell types (eg, epithelial, immune, and endothelial cells) to identify slowly dividing cells and assess their stem cell qualities. We identified myometrial label-retaining cells (LRCs) that persisted for at least 3 months, expressed CD146 and CD140b (MSC markers), and proliferated at a higher rate during uterine INV compared with nonlabeled cells. The LRCs did not appear to express either estrogen receptor alpha or progesterone receptor, nor did the number of LRCs change at different estrous stages or in response to exogenous estradiol or progesterone administration, suggesting that LRCs were not involved in normal estrous cycling. The results from this study provide important insight into putative stem/progenitor cells in the myometrium and their possible role in uterine physiology.
Journal Article•10.1089/SCD.2017.0161•
Effect of bone morphogenetic protein 6 on immunomodulatory functions of salivary gland-derived mesenchymal stem cells in Sjögren’s Syndrome

[...]

Junji Xu1, Yingying Su1, Lei Hu1, Alexander Cain2, Yi Gu1, Bowen Liu1, Ruiqing Wu1, Songlin Wang1, Hao Wang1 •
Capital Medical University1, National Institutes of Health2
15 Nov 2018-Stem Cells and Development
TL;DR: It is found that BMP6 could impair immunomodulatory properties of normal SGMSCs by downregulating the Prostaglandin E2 synthase through DNA-binding protein inhibitor-1 and Neutralizing the B MP6 could significantly restore the SGMSC's immunoregulatory function in vitro and delay the SS disease activity in vivo.
Abstract: Sjogren's syndrome (SS) is characterized by autoimmune activation and loss of function in the salivary glands. Recent studies reported that bone morphogenetic protein 6 (BMP6), which is a member of transforming growth factor beta (TGF-β) superfamily, was highly expressed in SS patients. To investigate the role of BMP6 in SS, we treated the salivary gland-derived mesenchymal stem cells (SGMSCs) with BMP6 and found that BMP6 could impair immunomodulatory properties of normal SGMSCs by downregulating the Prostaglandin E2 synthase through DNA-binding protein inhibitor-1. Neutralizing the BMP6 could significantly restore the SGMSC's immunoregulatory function in vitro and delay the SS disease activity in vivo. In conclusion, BMP6 could not only affect the secreting function of epithelial cells in the salivary gland but also influence the immunomodulatory properties of SGMSCs, which may trigger or enhance the autoimmune reflection in SS.
Journal Article•10.1089/SCD.2018.0162•
Human-Monkey Chimeras for Modeling Human Disease: Opportunities and Challenges.

[...]

Alejandro De Los Angeles1, Insoo Hyun2, Stephen R. Latham1, John D. Elsworth1, D. Eugene Redmond •
Yale University1, Case Western Reserve University2
29 Nov 2018-Stem Cells and Development
TL;DR: The creation of human-primate chimeras - specifically, the transfer of human stem cells into (non-ape) primate hosts - could surpass the limitations of current monkey models of neurological and psychiatric disease, but would also raise important ethical considerations concerning the use of monkeys in invasive research.
Abstract: The search for a better animal model to simulate human disease has been a "holy grail" of biomedical research for decades. Recent identification of different types of pluripotent stem (PS) cells and advances in chimera research might soon permit the generation of interspecies chimeras from closely related species, such as those between humans and other primates. In this study, we suggest that the creation of human-primate chimeras-specifically, the transfer of human stem cells into (non-ape) primate hosts-could not only surpass the limitations of current monkey models of neurological and psychiatric disease but would also raise important ethical considerations concerning the use of monkeys in invasive research. Questions regarding the scientific value and ethical concerns raised by the prospect of human-monkey chimeras are more urgent in light of recent advances in PS cell research and attempts to generate interspecies chimeras between humans and animals. While some jurisdictions prohibit the introduction of human PS cells into monkey preimplantation embryos, other jurisdictions may permit and even encourage such experiments. Therefore, it is useful to consider blastocyst complementation experiments more closely in light of advances that could make these chimeras possible and to consider the ethical and political issues that are raised.

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