J. A. Kushner et al. (nov 2014)
Cell stem cell 15 5 535--6
Stem cells to insulin secreting cells: two steps forward and now a time to pause?
Two groups recently reported the in vitro differentiation of human embryonic stem cells into insulin-secreting cells,achieving an elusive goal for regenerative medicine. Herein we provide a perspective regarding these developments,compare phenotypes of the insulin-containing cells to human $\beta$ cells,and discuss implications for type 1 diabetes research and clinical care.
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产品类型:
产品号#:
100-0566
产品名:
R428
S. Ruiz Garc\'ia et al. (sep 2019)
Development (Cambridge,England) 146 20 dev.177428
Novel dynamics of human mucociliary differentiation revealed by single-cell RNA sequencing of nasal epithelial cultures.
The upper airway epithelium,which is mainly composed of multiciliated,goblet,club and basal cells,ensures proper mucociliary function and can regenerate in response to assaults. In chronic airway diseases,defective repair leads to tissue remodeling. Delineating key drivers of differentiation dynamics can help understand how normal or pathological regeneration occurs. Using single-cell transcriptomics and lineage inference,we have unraveled trajectories from basal to luminal cells,providing novel markers for specific populations. We report that: (1) a precursor subgroup of multiciliated cells,which we have entitled deuterosomal cells,is defined by specific markers,such as DEUP1,FOXN4,YPEL1,HES6 and CDC20B; (2) goblet cells can be precursors of multiciliated cells,thus explaining the presence of hybrid cells that co-express markers of goblet and multiciliated cells; and (3) a repertoire of molecules involved in the regeneration process,such as keratins or components of the Notch,Wnt or BMP/TGF$\beta$ pathways,can be identified. Confirmation of our results on fresh human and pig airway samples,and on mouse tracheal cells,extend and confirm our conclusions regarding the molecular and cellular choreography at work during mucociliary epithelial differentiation.
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产品类型:
产品号#:
05001
05022
05021
产品名:
PneumaCult™-ALI 培养基
PneumaCult™-ALI 培养基含6.5 mm Transwell®插件
PneumaCult™-ALI 培养基含12 mm Transwell®插件
P. Scudieri et al. (sep 2020)
Cells 9 9 2090
Ionocytes and CFTR Chloride Channel Expression in Normal and Cystic Fibrosis Nasal and Bronchial Epithelial Cells.
The airway epithelium contains ionocytes,a rare cell type with high expression of Forkhead Box I1 (FOXI1) transcription factor and Cystic Fibrosis Transmembrane conductance Regulator (CFTR),a chloride channel that is defective in cystic fibrosis (CF). Our aim was to verify if ionocyte development is altered in CF and to investigate the relationship between ionocytes and CFTR-dependent chloride secretion. We collected nasal cells by brushing to determine ionocyte abundance. Nasal and bronchial cells were also expanded in vitro and reprogrammed to differentiated epithelia for morphological and functional studies. We found a relatively high ({\~{}}3{\%}) ionocyte abundance in ex vivo nasal samples,with no difference between CF and control individuals. In bronchi,ionocytes instead appeared very rarely as previously reported,thus suggesting a possible proximal-distal gradient in human airways. The difference between nasal and bronchial epithelial cells was maintained in culture,which suggests an epigenetic control of ionocyte development. In the differentiation phase of the culture procedure,we used two media that resulted in a different pattern of CFTR expression: confined to ionocytes or more broadly expressed. CFTR function was similar in both conditions,thus indicating that chloride secretion equally occurs irrespective of CFTR expression pattern.
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产品类型:
产品号#:
05001
05022
05021
产品名:
PneumaCult™-ALI 培养基
PneumaCult™-ALI 培养基含6.5 mm Transwell®插件
PneumaCult™-ALI 培养基含12 mm Transwell®插件
S. Wang et al. ( 2020)
Scientific reports 10 1 12226
Label-free detection of rare circulating tumor cells by image analysis and machine learning.
Detection and characterization of rare circulating tumor cells (CTCs) in patients' blood is important for the diagnosis and monitoring of cancer. The traditional way of counting CTCs via fluorescent images requires a series of tedious experimental procedures and often impacts the viability of cells. Here we present a method for label-free detection of CTCs from patient blood samples,by taking advantage of data analysis of bright field microscopy images. The approach uses the convolutional neural network,a powerful image classification and machine learning algorithm to perform label-free classification of cells detected in microscopic images of patient blood samples containing white blood cells and CTCs. It requires minimal data pre-processing and has an easy experimental setup. Through our experiments,we show that our method can achieve high accuracy on the identification of rare CTCs without the need for advanced devices or expert users,thus providing a faster and simpler way for counting and identifying CTCs. With more data becoming available in the future,the machine learning model can be further improved and can serve as an accurate and easy-to-use tool for CTC analysis.
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A. M. Chenoweth et al. (Oct 2025)
Cancer Research 85 22
An Fc-Engineered Glycomodified Antibody Supports Proinflammatory Activation of Immune Effector Cells and Restricts Progression of Breast Cancer
Assessment of Fc receptors and immune cells in breast cancer enables development of tailored engineering strategies for tumor-targeting monoclonal antibodies with enhanced immune-stimulating and anticancer attributes by combining glycoengineering and Fc mutations. AbstractFc engineering to enhance antibody effector functions harbors the potential to improve therapeutic effects. Understanding FcγR expression and distribution in the tumor microenvironment prior to and following treatment may help guide immune-engaging antibody design and patient stratification. In this study,we investigated FcR-expressing immune effector cells in HER2+ and triple-negative breast cancers (TNBC),including neoadjuvant chemotherapy–resistant disease. FcγRIIIa expression,FcγRIIIa+ NK cells,and classically activated (M1-like) macrophages correlated with improved anti-HER2 antibody efficacy. FcγRIIIa protein and FcγRIIIa+ NK cells and macrophages were present in primary TNBC and retained in treatment-resistant tumors. FcγRIIIa was spatially associated with folate receptor alpha–positive (FRα+) tumor areas at baseline and in residual tumors following neoadjuvant chemotherapy. Wild-type and Fc-engineered antibodies recognizing two breast cancer–associated antigens,HER2 and the emerging TNBC target FRα,were designed and generated to have increased FcγRIIIa-expressing effector cell engagement. The combination of glycoengineering,including fucose removal from the N-linked Fc glycan,and Fc point mutations greatly increased antibody affinity for and retention on FcγRIIIa. The Fc-engineered antibodies enhanced immune effector activity against HER2+ breast cancer and TNBC,altering proinflammatory cytokine production by NK cells and tumor-conditioned macrophages and skewing macrophages toward proinflammatory states. Furthermore,the Fc-engineered antibodies restricted orthotopic HER2+ and FRα+ breast cancer xenograft growth at doses suboptimal for equivalent wild-type antibodies and recruited FcγRIIIa-expressing cells into tumors. Antibody design through combined glycoengineering and Fc point mutations to enhance FcγRIIIa engagement of tumor-infiltrating effector cells may be a promising strategy for developing therapies for patients with aggressive and treatment-resistant breast cancers.Significance:Assessment of Fc receptors and immune cells in breast cancer enables development of tailored engineering strategies for tumor-targeting monoclonal antibodies with enhanced immune-stimulating and anticancer attributes by combining glycoengineering and Fc mutations.
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产品类型:
产品号#:
15025
15065
产品名:
RosetteSep™人NK细胞富集抗体混合物
RosetteSep™人NK细胞富集抗体混合物
Z. Chen et al. (Oct 2025)
Cell Death Discovery 11
Induced pluripotent stem cells carrying novel APTX mutations presented defective neural differentiation with the accumulation of DNA single-strand breaks
Ataxia with oculomotor apraxia type 1 (AOA1) is a rare,autosomal recessive,early-onset,progressive cerebellar ataxia caused by mutations in the APTX gene,which encodes aprataxin,a DNA-adenylate hydrolase involved in DNA damage repair. The pathogenesis of AOA1 remains unclear. The purpose of this study was to investigate the pathogenesis of a novel mutation,p.H201P/H201R,carried by our AOA1 patient and the mechanism of AOA1 in an induced pluripotent stem cells (iPSCs) model. We edited iPSCs derived from a healthy individual to carry the APTX homozygous mutation p.H201P (H201P-iPSCs) or p.H201R (H201R-iPSCs) via CRISPR/Cas9. We found that aprataxin expression was absent in both H201P- and H201R-iPSCs. The capacity of these APTX-mutant iPSCs to differentiate into neural progenitor cells (NPCs) and mature neurons was diminished. We observed an increase in DNA single-strand breaks (SSB) via a comet assay and poly(ADP-ribose) staining,and an increase in the ratio of cleaved PARP-1/total PARP-1 in APTX-mutant NPCs and early immature neurons (EiNs),in addition of a heightened sensitivity to tert-butyl hydroperoxide in APTX-mutant EiNs. Moreover,a decrease of APE1 expression was observed in APTX-mutant NPCs and H201R-EiNs during neural differentiation. Our study established a practical iPSCs model to investigate AOA1 disease. We found that mutant aprataxin leads to defective neural differentiation,accompanied by the accumulation of DNA SSBs with increased cleaved PARP-1 and reduced APE1 expression of the base excision repair pathway.
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产品类型:
产品号#:
100-0276
100-1130
产品名:
mTeSR™ Plus
mTeSR™ Plus
K. Kamal et al. (Oct 2025)
European Journal of Immunology 55 10
Induction of Tolerogenic Dendritic Cells by a Noncoding Oligonucleotide
Tolerogenic dendritic cells (tolDCs) that dampen T cell responses can be induced from blood monocytes in vitro using factors such as Vitamin D3 (VitD),dexamethasone,IL‐10,or rapamycin. However,challenges remain in obtaining robust and efficient generation of cell therapy‐based tolDCs without compromising their viability. We recently reported that CCR2‐dependent recruitment of monocytic cells,with the capacity to dampen T‐helper responses,occurs in mice treated with a single‐stranded oligonucleotide (ssON). Here,we investigated the effects of this immunomodulatory noncoding ssON on differentiating human monocytes towards DC in the presence of IL‐4 and GM‐CSF (moDC). The moDC differentiated in the presence of ssON upregulated CD1a but also increased their expression of PD‐L1. The differentiation of monocytes to moDC in the presence of ssON introduced transcriptomic changes,many of which overlapped with VitD‐moDC and resulted in moDCs with altered lipopolysaccharide (LPS)‐responsiveness. Moreover,ssON‐moDC exhibited a low capacity to stimulate alloreactive T cells in vitro and instead promoted the induction of CD4+FoxP3+CD25+ T cells. Experiments using chemical reagents support a role for PPAR‐γ in the generation of ssON‐moDC. Collectively,our data show that monocytes differentiated with IL‐4,GM‐CSF,and ssON generate cells with phenotypic and functional characteristics of tolDCs. In this article,the authors elucidated the immunoregulatory role of an oligonucleotide (ssON) that favors the induction of human tolerogenic dendritic cells (DC). The tolerogenic profile was evidenced by reduced responsiveness to lipopolysaccharides (LPS) (A). Importantly,the tolerogenic DCs had upregulated PD‐L1 molecules and functionally inhibited the proliferation of alloreactive T cells and induced FoxP3+ Tregs (B). This study envisions the development of ssON as therapeutic for rebalancing overactive T‐helper cell responses.
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产品类型:
产品号#:
100-0695
17951
17951RF
产品名:
EasySep™人T细胞分选试剂盒
EasySep™人T细胞分选试剂盒
RoboSep™ 人T细胞分选试剂盒
N. Kawasaki et al. (Oct 2025)
EJHaem 6 5
Polatuzumab Vedotin Induced CD20 Upregulation Contributes to the Efficacy of Mosunetuzumab in Combination With Polatuzumab Vedotin in Diffuse Large B‐Cell Lymphoma Preclinical Models
Aggressive non‐Hodgkin lymphoma (aNHL) often relapses after first‐line treatment. Clinical data supports the safety and efficacy of the combination of mosunetuzumab,a CD20×CD3 bispecific antibody,and polatuzumab vedotin,an anti‐CD79b antibody drug conjugate (Mosun‐Pola) in relapsed/refractory aNHL. This study investigated the molecular mechanism behind the combination effect of Mosun‐Pola in human diffuse large B‐cell lymphoma (DLBCL) cell lines. Methods: The in vitro Mosun‐Pola efficacy in DLBCL cells (SU‐DHL‐8 and HT) was evaluated by T cell‐dependent cellular cytotoxicity (TDCC) assay. CD20‐stable‐knockdown SU‐DHL‐8 cells were established using lentiviral short hairpin RNA. Surface and T‐cell activation marker proteins expression were determined by flow cytometry. Human T‐cell‐injected mice or humanized NOD/Shi‐scid,IL‐2Rγnull (huNOG) mice were used for an in vivo study. Results: An in vitro TDCC assay showed a synergistic effect in SU‐DHL‐8 and HT cells. Based on our experimental results of suppressing CD20 expression,it was suggested that this combination effect could be caused by an increase in CD20 expression by polatuzumab vedotin. In addition,examining the effects of CD20 upregulation in tumor cells on T‐cell activation demonstrated that the combination of Mosun‐Pola enhanced T‐cell activation markers in both CD4+ and CD8+ T cells during the TDCC reaction. In vivo studies,using human immune system‐reconstituted mouse models confirmed that polatuzumab vedotin enhanced CD20 expression in tumors,and the combination of Mosun‐Pola showed significantly improved anti‐tumor effects compared with single‐drug treatments. Conclusions: These findings suggest that polatuzumab vedotin‐induced CD20 upregulation provides a molecular rationale to explain the synergistic effect of this combination therapy.Trial RegistrationThe authors have confirmed clinical trial registration is not needed for this submission.
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产品类型:
产品号#:
100-0695
17951
17951RF
产品名:
EasySep™人T细胞分选试剂盒
EasySep™人T细胞分选试剂盒
RoboSep™ 人T细胞分选试剂盒
A. Nemoto et al. (Oct 2025)
Nature Communications 16
Rescue of imprinted genes by epigenome editing in human cellular models of Prader-Willi syndrome
Prader-Willi syndrome (PWS) is a genomic imprinting disorder caused by the loss of function of the paternal chromosome 15q11-13,resulting in a spectrum of symptoms associated with hypothalamic dysfunction. PWS patients lack the expression of paternally expressed genes (PEGs) in the 15q11-13 locus but possess an epigenetically silenced set of these genes in the maternal allele. Thus,activation of these silenced genes can serve as a therapeutic target for PWS. Here,we leverage CRISPR-based epigenome editing system to modulate the DNA methylation status of the PWS imprinting control region (PWS-ICR) in induced pluripotent stem cells (iPSCs) derived from PWS patients. Successful demethylation in the PWS-ICR restores the PEG expression from the maternal allele and reorganizes the methylation patterns in other PWS-associated imprinted regions beyond the PWS-ICR. Remarkably,these corrected epigenomic patterns and PEG expression are maintained following the differentiation of these cells into hypothalamic organoids. Finally,the single-cell transcriptomic analysis of epigenome-edited organoids demonstrates a partial restoration of the transcriptomic dysregulation observed in PWS. This study highlights the utility of epigenome editing technology as a therapeutic approach in addressing PWS and potentially other imprinting disorders. The authors develop CRISPR-based epigenome editing strategy to reactivate silenced maternally inherited genes for Prader-Willi syndrome in human iPSC and hypothalamic organoid models,highlighting its potential for treating imprinting disorders.
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产品类型:
产品号#:
05790
产品名:
BrainPhys™神经元培养基
F. Olayinka-Adefemi et al. (Nov 2025)
PLOS Pathogens 21 11
PI3Kdelta-driven expansion of regulatory B cells impairs protective immune responses to Trypanosoma congolense parasite infection
Phosphatidylinositol 3-kinase delta (PI3KCD) is a critical signaling enzyme for B cell development,activation,function and immune regulation. Gain-of-function mutations in PI3KCD result in the congenital immunodeficiency known as Activated PI3KCD Syndrome (APDS). APDS patients are prone to repeated infections and other serious clinical manifestations. Here,we determine how B cell-intrinsic expression of the APDS-associated PI3KCDE1021K mutation impacts immune responses to the protozoan parasite Trypanosoma congolense. PI3KCDE1021K/B mice exhibit a significant expansion of IL10-expressing B cells within the spleen and peritoneal cavity,which was associated with impaired control of T. congolense infection. Despite the generation of robust germinal center,plasma cell and antibody responses,PI3KCDE1021K/B mice show elevation in the first wave of parasitemia and increased mortality. We further characterize the phenotype of the expanded IL10-producing B cell population in PI3KCDE1021K/B mice,which show hallmarks of innate-like regulatory B cells (Breg) and expression of multiple inhibitory molecules. This Breg expansion is associated with reduced IFNγ/IL10 ratio,reduced TNFα production and impaired activation of myeloid cells,likely compromising the innate response to infection. These findings highlight the profound impact of dysregulated PI3KCD activity on regulatory B cells that can functionally impair innate immune responses controlling a systemic parasite protozoan disease. Author summaryB cells and antibodies play a critical role in the immune response to Trypanosome parasites. Molecular signaling networks within B cells can control the type of response generated during infection. Here,we studied how a genetic variant in the signaling enzyme PI3KCD,previously linked to human immune deficiencies,impacts B cell responses to Trypanosome infection. We find that mice expressing the PI3KCDE1021K mutation in their B cells show impaired control of Trypanosome infection,and alterations in several aspects of the immune response. Specifically,we noted these mice poorly control parasite growth within the first week of infection,a timeframe where specific antibody responses have not yet been generated. We noted an altered balance between pro-inflammatory and anti-inflammatory cytokine mediators produced within the first week of infection. This was associated with high numbers of regulatory B cells expressing multiple molecules capable of inhibiting other cells of the immune system. We further found that these mice show functional alterations in other critical immune cell types,such as macrophages and T cells. These findings highlight the impact of dysregulated PI3KCD activity on regulatory B cells that can impair immune responses controlling a systemic parasite protozoan disease.
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产品类型:
产品号#:
19854
19854RF
产品名:
EasySep™小鼠B细胞分选试剂盒
RoboSep™ 小鼠B细胞分选试剂盒
Q. Yin et al. (Nov 2025)
Nature Communications 16
Transcription factor ZNF263 primes human embryonic stem cells for pluripotency dissolution and lineage commitment
Conventional human embryonic stem cells (hESCs) are capable of self-renewal and simultaneously poised for differentiation. But the mechanisms underlying this primed pluripotent state,which endows them with elevated responsiveness to differentiation cues,remain largely underexplored. Especially,little is known about the pivotal transcription factors (TFs) that orchestrate hESCs towards primed pluripotency. Here,we report a function of TF ZNF263 in pluripotency priming. Genetic and functional assays reveal that ZNF263 directly initiates the incipient expression of early differentiation genes and concurrently dampens the core pluripotency circuitry in hESCs,greatly tilting the balance from pluripotency maintenance to lineage priming. Importantly,ZNF263 deficiency markedly impairs pluripotency dissolution and multi-lineage differentiation in hESCs,particularly toward ectoderm. Moreover,single-cell transcriptomic profiling reveals that ZNF263 promotes the priming of cell fate commitment in hESCs,suggesting its indispensable requirement for pluripotency priming and lineage commitment continuum. Together,we demonstrate the role of ZNF263 in establishing the primed pluripotent state in hESCs and facilitating their differentiation into primary germ layer lineages. Human embryonic stem cells are simultaneously capable of self-renewal and poised for differentiation. Here,the authors show a role for the ZNF263 transcription factor promotes primed pluripotency and facilitates differentiation into primary germ layer lineages.
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