| Literature DB >> 32799928 |
Huilin Li1, Haiyun Pei2,3, Sihan Wang1,4, Bowen Zhang5,4, Zeng Fan1, Yiming Liu1,4, Xiaoyan Xie1,4, Zhou Yang1, Lei Xu1, Yali Jia5,4, Yun Bai1, Yi Han4, Lin Chen1,4, Lijuan He1,4, Xue Nan1,4, Wen Yue6,7, Xuetao Pei8,9.
Abstract
BACKGROUND: Although cord blood (CB) offers promise for treatment of patients with high-risk hematological malignancies and immune disorders, the limited numbers of hematopoietic stem cell (HSC)/progenitor cell in a CB unit and straitened circumstances in expanding ex vivo make it quite challenging to develop the successful cell therapies.Entities:
Keywords: Arterial endothelial cells; Expansion; Hematopoietic stem and progenitor cells; Niche; Transplantation
Mesh:
Substances:
Year: 2020 PMID: 32799928 PMCID: PMC7429738 DOI: 10.1186/s13287-020-01880-8
Source DB: PubMed Journal: Stem Cell Res Ther ISSN: 1757-6512 Impact factor: 6.832
Quantitative RT-PCR primer sequences
| Gene | Sequence (5′-3′) |
|---|---|
| F:GCCTTATCCTGCCTGGTATTGTC | |
| R:GCGAAGAAAGCCAGGATGAGGAT | |
| F:GACGAACACTACTACGGAGAGG | |
| R:AGCCAGGGTTGCACACTTT | |
| F:TGGGTCAGAACTGGTTATTGGA | |
| R:GTCATTGCGCTTCTTGCACAG | |
| F:TTCAGCCCTAACCTCTGGGG | |
| R:CCTCCAAAGACCCATTTGATGTA | |
| F:TGCAAGAGTGTGCTAGAGGC | |
| R:ACAAAGCAGTCCACGAGGTAG | |
| F:GTTCGGCTCTAGGTTCCATGT | |
| R:CGTCGGCGCTTCTCAATTATTC | |
| F:CCTAACAGAAGTTGCGCGGTA | |
| R:GAGGCGACAAGGGGTTGAC | |
| F:GTCCATGCAGAACGTGAACG | |
| R:GCGGGACTGATACTCCTTGA | |
| F:GAGGCGTGGCAGACTATGC | |
| R:CTTGTACTCCGTCAGCGTGA | |
| F:CAACCGCAATGGAGGCTATG | |
| R:GCGAAGGCACAATCATCAATGTT | |
| F:CGTGGCTACACTGGACCTC | |
| R:AGATACAGGTGAACTGGCCTAT | |
| F:TGTGAACGTGATGTCAACGAG | |
| R:ACAGTCTGGGCCTATGAAACC | |
| F:CCTGCATCAGCTACGTCAACA | |
| R:GGGATGGATTTCTCGTGCATCT | |
| F:CGCACCTACGAAGTGTGTGA | |
| R:GTCCGCATCGCTCTCATAGTA | |
| F:AACCAGCCGACGAGATTCG | |
| R:CCCGGATGAGGGTTTCGATG | |
| F:CCAACGGGACCATCGAATCTC | |
| R:CCAGCCAATCGTACTTGCAGT | |
| F:CGCCGGAATTAGATCTGCCA | |
| R:CTCGAGCAGCGTAATCTGGA | |
| F:GGCTCAGTGGACTTCAACCG | |
| R:CCGTGATGCTATGCACCTTCT | |
| F:GTGGCATCGTTGAGGAGTG | |
| R:CACGTCCCTCTCGGACTTG | |
| F:GCACGGTAAACCCCAATTA | |
| R:GGCAACTTGTGGTCTTTTTT | |
| F:GCAACCCCTACTATGCCAACC | |
| R:CAGTGGCGTCTTGGAGAAG | |
| F:ATGTGGTCCTATTTAAGCCAGCCC | |
| R:TCATCTGGCTGAAGACACCAGCTT | |
| F:TCAACACGACACCGGATAAAC | |
| R:GCCGCGAGCTATCTTTCTTCA | |
| F:GAGTCAACGGATTTGGTCGT | |
| R:TTGATTTTGGAGGGATCTCG |
Fig. 1Isolation and identification of arterial and vein endothelial cells. a Primary HuAECs and HuVECs were isolated and cultured. b Flow cytometric analysis of CD31, CD133, CD144, and CD45 expression in primary endothelial cells. c Fluorescent images confirmed that HuAECs and HuVECs expressed vWF. d HuAECs and HuVECs formed a tube cavity structure in vitro. e qRT-PCR analysis of arterial and venous markers expression in HuAECs and HuVECs. f Flow cytometric analysis showed that KDR expression in HuAECs is higher than in HuVECs. g NO production was evaluated by the intensity of DAF-FM which form fluorescent wavelengths similar to FITC. NS, no significant difference, *P < 0.05, **P < 0.01, ***P < 0.001; n = 3; scale bar, 200 μm
Fig. 2Generation of engineered human umbilical arterial endothelial cells by transduction of adenoviral E4orf1 and GFP (HuAECs-E4orf1-GFP). a Schematic illustration of the protocol for test our hypothesis on the role of HuAECs in supporting ex vivo HSPC expansion. b Fluorescence intensity of GFP in HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP before FACS (above panel); the image of GFP expression in HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP after FACS (button panel). c Detection of E4ORF1 expression in HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP by qRT-PCR. d qRT-PCR analysis of arterial and venous markers expression in HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP. e Comparison of the relative expression of ANGPTL4, IGF2, and HOXB4 in HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP. *P < 0.05, **P < 0.01 ***P < 0.001; n = 3, scale bar, 200 μm
Fig. 3CD34+ hCB cells cocultured with HuAECs-E4orf1-GFP resulted in a significant expansion of HSPCs while heightened in vitro multilineage differentiation potential. a The cumulative curve of TNCs during the expansion. b TNC expansion. c Total CD34+ hematopoietic cell expansion. d Representative scatter plots of CD34+CD38−CD90+ cell expansion. e The number of CD34+CD38− cells (left panel) and CD34+CD38−CD90+ cells (right panel) significantly increased in the HuAECs-E4orf1-GFP group at day 14. f CFU numbers of amplified CD34+ hCB cells in different groups after 14-day expansion. g CFU (CFU-E, BFU-E, CFU-GM, CFU-M, and CFU-G) morphology (above panel, scale bar: 500 μm) and Giemsa’s staining for cytospin samples of CFUs (bottom panel, scale bar: 100 μm). *P < 0.05, **P < 0.01, ***P < 0.001; n = 8. Three HuAECs-E4orf1-GFP and HuVECs-E4orf1-GFP cell lines were established and all of them have stable and consistent effects on ex vivo expansion of HSPCs
Fig. 4CD34+ hCB cells cocultured with HuAECs-E4orf1-GFP have repopulating capability in vivo. a Schematic illustration of the protocol for in vivo transplantation. NSG mice were transplanted with 1,000,000 cells from each culture after sublethally irradiation. b Representative scatter plots of human CD45+ hematopoietic cell engraftment in mouse’s spleen after 16-week transplantation (left panel). Chimerism of engrafted human CD45+ hematopoietic cells in mouse’s spleen after 16-week transplantation (right panel). c Representative scatter plots of human CD45+ hematopoietic cell engraftment in mouse’s BM after 16-week transplantation (left panel). Chimerism of engrafted human CD45+ hematopoietic cells in mouse’s BM after 16-week transplantation (right panel). Formula: chimerism (%) = [%hCD45+/(%hCD45++%mCD45+)]. *P < 0.05, **P < 0.01; n = 8
Fig. 5CD34+ hCB cells amplified on HuAECs-E4orf1-GFP exhibited Notch signaling activation. a The CD34+ hCB cell expansion at day 14 and CFU formation in CpE treatment group or with a vehicle control (DMSO) group. b Image of GFP expression in HuAECs-E4orf1-shLV6 (left panel) and HuAECs-E4orf1-shDLL4 (right panel) after FACS. c Expression of DLL4 in HuAECs-E4orf1-shLV6 and HuAECs-E4orf1-shDLL4. d The number of hematopoietic cells and CFU decreased in the HuAECs-E4orf1-shDLL4 group. e Hypothesis for the signal pathways involved in DLL4-mediated promoting proliferation activity of HuAECs-E4orf1 was indicated. NS, no significant difference, *P < 0.05, **P < 0.01, ***P < 0.001; n = 8; scale bar, 200 μm