| Literature DB >> 26246892 |
Ke Huang1, Juan Du1, Ning Ma1, Jiajun Liu2, Pengfei Wu1, Xiaoya Dong2, Minghui Meng1, Wenqian Wang2, Xin Chen1, Xi Shi1, Qianyu Chen1, Zhongzhou Yang1, Shubin Chen1, Jian Zhang1, Yuhang Li3, Wei Li1, Yi Zheng1, Jinglei Cai1, Peng Li1, Xiaofang Sun4, Jinyong Wang1, Duanqing Pei1, Guangjin Pan1.
Abstract
BACKGROUND: Hematopoiesis is a progressive process collectively controlled by an elaborate network of transcription factors (TFs). Among these TFs, GATA2 has been implicated to be critical for regulating multiple steps of hematopoiesis in mouse models. However, whether similar function of GATA2 is conserved in human hematopoiesis, especially during early embryonic development stage, is largely unknown.Entities:
Keywords: EHT; GATA2; Granulocyte; HPC; Notch signaling; hESCs
Year: 2015 PMID: 26246892 PMCID: PMC4526303 DOI: 10.1186/s13619-015-0018-7
Source DB: PubMed Journal: Cell Regen (Lond) ISSN: 2045-9769
Fig. 1Generation of GATA2 human ESCs. a Schematic overview of gene targeting strategy. For GATA2 knockout, a PGK promoter-neomycin cassette replaces exon 3 of the GATA2 locus. BglII sites, TALEN sites, primers (P1, P2), and probes (probe 1, probe 2) used for genomic PCR and Southern blot are indicated. b Genomic PCR for GATA2 targeting. PCR product by indicated primers is 0.76 kb from WT H1 cells and 2.44 kb from H1-GATA2 . c, d Southern blot analysis of GATA2 targeted H1 cells. The genomic DNAs were digested by BglII and detected by indicated probes. One single band detected by probe 1 indicates that there was no random integration of drug cassette. e FACS analysis of the expression of OCT4, SSEA-4, TRA-1-60, and TRA-1-81 in H1 or H1-GATA2 cells. In these and other flow cytometry diagrams, the black line stands for the control and the red line for the experimental plot unless otherwise indicated. f Teratoma formation of H1 or H1-GATA2 cells. g Paired Pearson correlation analysis of global gene expression between WT and GATA2 H1 cells. R Pearson correlation coefficient, TPM transcripts per million. h Karyotype analysis of the H1-GATA2 cell line
Fig. 2Hematopoietic differentiation of the H1-GATA2 ES cell line. a CFUs of H1 or H1-GATA2 derived CD34+ cells. H1 or H1-GATA2 cells were co-cultured with OP9 cells for 9 days. The CD34+ HPCs were isolated by FACS for CFU generation. Error bars represent mean + SEM of the mean of samples from nine independent experiments. b-d Time course analysis of blood differentiation of H1 and H1-GATA2 cells upon co-culturing with OP9. The expression of surface markers CD34, CD43, and CD31 on H1 or H1-GATA2 cells co-cultured with OP9 for the indicated time was analyzed by FACS (left and middle panels). The right panels are box plots from ten independent experiments on the percentage of indicated populations on day 8 of OP9 co-culturing. Asterisks indicate statistical significance determined by t test: ***p < 0.001. e Time course analysis of the expression of indicated genes of H1 and H1-GATA2 cells upon co-culturing with OP9. The gene expression was analyzed by qRT-PCR by using GAPDH as an internal reference. f HPCs with CD34+CD31+CD43+ were developed from CD34+CD31+CD43− HEs. CD34+CD31+CD43− populations were sorted out at day 8 of differentiation and replated on OP9 for one additional day and analyzed by FACS. g FACS analysis of CD114 and KDR on HEs from H1 or H1-GATA2 . h H1 or H1-GATA2 derived HEs produced endothelial cells. Left: Morphology of endothelial cells; middle: immunostaining of CD31 on endothelial cells; right: capillary structure formation by endothelial cells
Fig. 3Characterization of subtype blood lineages from H1 or H1-GATA2 derived HPCs. a CFU potential cells from H1 or H1-GATA2 were restricted within CD34+CD43+ subpopulations. EC endothelial cells, MC mesenchymal cells. b Characterization of erythrocytes from H1 or H1-GATA2 . From left to right: phase-contrast photographs of BFU and CFU-E, FACS analysis of CD235a and CD71a expression on H1 and H1-GATA2 derived erythrocytes, and cytospin of H1 and H1-GATA2 derived erythrocytes. c Globin analysis of erythrocytes by RT-qPCR. The results showed the mean + SEM of one single experiment with three replicates, representative of three independent experiments. d Analysis of expression of GATA1, GATA2, and GATA3 in H1 or H1-GATA2 derived erythrocytes. The results showed the mean + SEM of one single experiment with three replicates, representative of three independent experiments. e Characterization of myeloid cells from H1 or H1-GATA2 . Left: morphologies of indicated CFU colonies; middle: FACS analysis of indicated markers; right: cytospin photographs of indicated colonies. f FACS analysis of CD86 and CD14 expression in H1 and H1-GATA2 derived myeloid CFU. E erythrocyte, G granulocyte, M macrophage, GM G and M, Mix G, E, and M
Fig. 4Global gene expression analyses of H1 or H1-GATA2 derived HPC and HE. a Hierarchical clustering analysis of RNA-Seq data for indicated samples. Genes with TPMs above 1 and at least threefold change compared with each of any other sample were selected for the analysis. Gene expression values were normalized by Z score and clustered using Clustergram software. The enriched biological functions of the indicated gene group were analyzed by Gene Ontology (GO). HPC: CD34+CD43+ cells sorted at day 9 of co-culture; HE: CD34+CD31+CD43− cells sorted at day 8 of co-culture. b Paired Pearson correlation analysis of H1 and H1-GATA2 derived HEs (left) or HPCs (right). R Pearson correlation coefficient, TPM transcripts per million. Selected genes (red) are highlighted. c Heat map of selected genes based on TPM value of indicated samples. d Time course analysis of SPI1 expression during the OP9 co-culture by qRT-PCR. Error bars represent SEM of the mean of one single experiment with three replicates, representative of three independent experiments
Fig. 5Forced expression of SPI1 in H1-GATA2 restores the generation of granulocytes upon OP9 co-culture. a, b Diagram of the strategy of SPI1 rescue experiments. SPI1 linked with a puromycin resistance gene by T2A sequence was controlled by a Dox-inducible promoter in lentiviral-based vectors for Dox-inducible expression of SPI1. The expression of SPI1 was not induced during later CFU assay. c Effects of enforced expression of SPI1 on generation of in CD34+ (left) and CD34+CD43+ (right) HPCs in H1-GATA2 . Results are presented as mean + SEM of five independent experiments and normalized to H1 group. The data on CD34+ cells generation (left) were set as 1 for comparison. The data from five independent experiments were shown as box plot. Asterisks indicate statistical significance determined by t test: *p < 0.05, **p < 0.01 and ***p < 0.001. d Enforced expression of SPI1 in H1-GATA2 regenerate G-CFUs. The error bars indicate mean + SEM of three independent experiments. e Morphology of CFU-G regenerated by SPI1 expression; bottom: cytospin of CFU-G. f, g FACS analysis of indicated markers in SPI1 regenerated CFU-M and CFU-G from H1-GATA2−/−
Fig. 6H1-GATA2 cells restored the potential of granulocyte on OP9-DL1. a Diagram of the strategy of the experiments. H1 or H1-GATA2 ES cells were co-cultured with OP9 for 9 days, then the CD34+ HPCs were harvested and seeded onto OP9 or OP9-DL1 cells for myeloid differentiation. b CD11b and CD14 expression at day 12 of OP9/OP9-DL1-mediated myeloid differentiation were analyzed by FACS. Percentage of total CD11b+ myeloid cells or CD11b+CD14− granulocytes were shown at the left. The right bar charts represent the statistic results of relative generation of CD11b+ cells of indicated test (up) and the generation of CD11b+CD14− cells (down). The data of H1 and H1-GATA2 from the OP9 co-culture for CD11b+ cell generation were set as 1 for comparison. Results indicate mean + SEM of three independent experiments. Asterisks represent statistical significance determined by t test: *p < 0.05 and **p < 0.01. c FACS analysis of CD86 and CD14 expression in day 12 of OP9/OP9-DL1-mediated myeloid differentiation