Bhinge A et al. (JUN 2014)
EMBO Journal 33 11 1271--1283
MiR-135b is a direct PAX6 target and specifies human neuroectoderm by inhibiting TGF-$\$/BMP signaling.
Several transcription factors (TFs) have been implicated in neuroectoderm (NE) development,and recently,the TF PAX6 was shown to be critical for human NE specification. However,microRNA networks regulating human NE development have been poorly documented. We hypothesized that microRNAs activated by PAX6 should promote NE development. Using a genomics approach,we identified PAX6 binding sites and active enhancers genome-wide in an in vitro model of human NE development that was based on neural differentiation of human embryonic stem cells (hESC). PAX6 binding to active enhancers was found in the proximity of several microRNAs,including hsa-miR-135b. MiR-135b was activated during NE development,and ectopic expression of miR-135b in hESC promoted differentiation toward NE. MiR-135b promotes neural conversion by targeting components of the TGF-β and BMP signaling pathways,thereby inhibiting differentiation into alternate developmental lineages. Our results demonstrate a novel TF-miRNA module that is activated during human neuroectoderm development and promotes the irreversible fate specification of human pluripotent cells toward the neural lineage.
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Leong MF et al. (SEP 2016)
Tissue engineering. Part C,Methods 22 9 884--894
Alginate Microfiber System for Expansion and Direct Differentiation of Human Embryonic Stem Cells.
Pluripotent human embryonic stem cells (hESCs) are a potential renewable cell source for regenerative medicine and drug testing. To obtain adequate cell numbers for these applications,there is a need to develop scalable cell culture platforms to propagate hESCs. In this study,we encapsulated hESCs in calcium alginate microfibers as single cells,for expansion and differentiation under chemically defined conditions. hESCs were suspended in 1% (w/v) alginate solution at high cell density (textgreater10(7) cells/mL) and extruded at 5 m/min into a low calcium concentration bath (10 mM) for gelation. Mild citrate buffer (2.5 mM),which did not affect hESCs viability,was used to release the cells from the calcium alginate hydrogel. Encapsulation as single cells was critical,as this allowed the hESCs to grow in the form of relatively small and uniform aggregates. This alginate microfiber system allowed for expansion of an hESC line,HUES7,for up to five passages while maintaining pluripotency. Immunohistochemistry,polymerase chain reaction,and other analyses showed that passage 5 (P5) HUES7 cells expressed proteins and genes characteristic of pluripotent stem cells,possessed normal karyotype,and were able to form representative tissues of the three embryonic germ layers in vitro and in vivo. Encapsulated HUES7 cells at P5 could also be induced to directly differentiate into liver-like cells. Collectively,our experiments show that the alginate microfiber system can be used as a three-dimensional cell culture platform for long-term expansion and differentiation of hESCs under defined conditions.
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产品类型:
产品号#:
05850
05857
05870
05875
85850
85857
85870
85875
产品名:
mTeSR™1
mTeSR™1
I. Elcheva et al. (jul 2014)
Nature communications 5 164 4372
Direct induction of haematoendothelial programs in human pluripotent stem cells by transcriptional regulators.
Advancing pluripotent stem cell technologies for modelling haematopoietic stem cell development and blood therapies requires identifying key regulators of haematopoietic commitment from human pluripotent stem cells (hPSCs). Here,by screening the effect of 27 candidate factors,we reveal two groups of transcriptional regulators capable of inducing distinct haematopoietic programs from hPSCs: pan-myeloid (ETV2 and GATA2) and erythro-megakaryocytic (GATA2 and TAL1). In both cases,these transcription factors directly convert hPSCs to endothelium,which subsequently transform into blood cells with pan-myeloid or erythro-megakaryocytic potential. These data demonstrate that two distinct genetic programs regulate the haematopoietic development from hPSCs and that both of these programs specify hPSCs directly to haemogenic endothelial cells. In addition,this study provides a novel method for the efficient induction of blood and endothelial cells from hPSCs via the overexpression of modified mRNA for the selected transcription factors.
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Production of de novo cardiomyocytes: human pluripotent stem cell differentiation and direct reprogramming.
Cardiovascular disease is a leading cause of death worldwide. The limited capability of heart tissue to regenerate has prompted methodological developments for creating de novo cardiomyocytes,both in vitro and in vivo. Beyond uses in cell replacement therapy,patient-specific cardiomyocytes may find applications in drug testing,drug discovery,and disease modeling. Recently,approaches for generating cardiomyocytes have expanded to encompass three major sources of starting cells: human pluripotent stem cells (hPSCs),adult heart-derived cardiac progenitor cells (CPCs),and reprogrammed fibroblasts. We discuss state-of-the-art methods for generating de novo cardiomyocytes from hPSCs and reprogrammed fibroblasts,highlighting potential applications and future challenges.
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产品类型:
产品号#:
05850
05857
05870
05875
85850
85857
85870
85875
产品名:
mTeSR™1
mTeSR™1
(Oct 2024)
NPJ Parkinson's Disease 10
Direct and indirect regulation of ?-glucocerebrosidase by the transcription factors USF2 and ONECUT2
Mutations in GBA1 encoding the lysosomal enzyme ?-glucocerebrosidase (GCase) are among the most prevalent genetic susceptibility factors for Parkinson’s disease (PD),with 10–30% of carriers developing the disease. To identify genetic modifiers contributing to the incomplete penetrance,we examined the effect of 1634 human transcription factors (TFs) on GCase activity in lysates of an engineered human glioblastoma line homozygous for the pathogenic GBA1 L444P variant. Using an arrayed CRISPR activation library,we uncovered 11 TFs as regulators of GCase activity. Among these,activation of MITF and TFEC increased lysosomal GCase activity in live cells,while activation of ONECUT2 and USF2 decreased it. While MITF,TFEC,and USF2 affected GBA1 transcription,ONECUT2 might control GCase trafficking. The effects of MITF,TFEC,and USF2 on lysosomal GCase activity were reproducible in iPSC-derived neurons from PD patients. Our study provides a systematic approach to identifying modulators of GCase activity and deepens our understanding of the mechanisms regulating GCase.
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产品类型:
产品号#:
05230
05711
05796
05835
05838
05839
100-1281
100-0276
100-1130
产品名:
STEMdiff™ 三胚层分化试剂盒
NeuroCult™ SM1 神经添加物
BrainPhys™成像专用培养基
STEMdiff™ 神经诱导培养基
STEMdiff™神经祖细胞冻存液
STEMdiff™ 神经诱导培养基
NeuroCult™ SM1 神经添加物
mTeSR™ Plus
mTeSR™ Plus
F. M. Jeffrey et al. (mar 1995)
Journal of cardiovascular pharmacology 25 3 469--72
Direct evidence that perhexiline modifies myocardial substrate utilization from fatty acids to lactate.
Perhexiline maleate,originally classified as a calcium antagonist,is in use as an antianginal agent. The mechanism of its protective effect is unknown,but there is speculation that it involves a modification of myocardial substrate utilization,in which glycolytic sources are used rather than fatty acids. This hypothesis was tested by employing [13C]NMR isotopomer analysis to measure substrate selection in the working rat heart. Substrate utilization was measured from a mixture of substrates present at their physiological concentration,as follows: acetoacetate,glucose,lactate and long-chain fatty acids. Control perfusions were compared with those perfused with perhexiline. It was found that perhexiline increased lactate utilization,which reduced the extent of fatty acid and endogenous substrate oxidation. There was also a significant increase in cardiac output for a small and insignificant increase in oxygen consumption,which suggested an improvement in myocardial efficiency. Thus,it was confirmed by direct measurement that this drug does modify substrate oxidation,which suggests that further investigations of the role that this agent can play in the management of ischemic heart disease would be beneficial.
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Staerk J et al. ( 2011)
Angewandte Chemie (International ed. in English) 50 25 5734--5736
Pan-Src family kinase inhibitors replace Sox2 during the direct reprogramming of somatic cells.
Borowiak M et al. (APR 2009)
Cell stem cell 4 4 348--58
Small molecules efficiently direct endodermal differentiation of mouse and human embryonic stem cells.
An essential step for therapeutic and research applications of stem cells is the ability to differentiate them into specific cell types. Endodermal cell derivatives,including lung,liver,and pancreas,are of interest for regenerative medicine,but efforts to produce these cells have been met with only modest success. In a screen of 4000 compounds,two cell-permeable small molecules were indentified that direct differentiation of ESCs into the endodermal lineage. These compounds induce nearly 80% of ESCs to form definitive endoderm,a higher efficiency than that achieved by Activin A or Nodal,commonly used protein inducers of endoderm. The chemically induced endoderm expresses multiple endodermal markers,can participate in normal development when injected into developing embryos,and can form pancreatic progenitors. The application of small molecules to differentiate mouse and human ESCs into endoderm represents a step toward achieving a reproducible and efficient production of desired ESC derivatives.
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产品类型:
产品号#:
72312
72314
72512
72514
产品名:
(-) -Indolactam V(吲哚内酰胺 V)
IDE1
IDE1
Hu W et al. (AUG 2015)
Cell stem cell 17 2 204--12
Direct Conversion of Normal and Alzheimer's Disease Human Fibroblasts into Neuronal Cells by Small Molecules.
Neuronal conversion from human fibroblasts can be induced by lineage-specific transcription factors; however,the introduction of ectopic genes limits the therapeutic applications of such induced neurons (iNs). Here,we report that human fibroblasts can be directly converted into neuronal cells by a chemical cocktail of seven small molecules,bypassing a neural progenitor stage. These human chemical-induced neuronal cells (hciNs) resembled hiPSC-derived neurons and human iNs (hiNs) with respect to morphology,gene expression profiles,and electrophysiological properties. This approach was further applied to generate hciNs from familial Alzheimer's disease patients. Taken together,our transgene-free and chemical-only approach for direct reprogramming of human fibroblasts into neurons provides an alternative strategy for modeling neurological diseases and for regenerative medicine.
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