干细胞之家 - 中国干细胞行业门户第一站

 

 

搜索
朗日生物

免疫细胞治疗专区

欢迎关注干细胞微信公众号

  
查看: 405212|回复: 234
go

Prospective Isolation of Murine Hematopoietic Stem Cells by Expression of an Abc [复制链接]

Rank: 7Rank: 7Rank: 7

积分
威望
0  
包包
483  
楼主
发表于 2009-3-5 00:05 |只看该作者 |倒序浏览 |打印
作者:Mehrdad Tadjalia, Sheng Zhoua, Jerold Rehgb, Brian P. Sorrentinoa作者单位:a Division of Experimental Hematology, Department of Hematology/Oncology, andb Department of Pathology, St. Jude Childrens Research Hospital, Memphis, Tennessee, USA
+ d* _! N+ Z: i4 U% d                  % S* V6 N( T) T% f5 S9 l% {
                  
/ B0 V' e, _8 k4 u6 g         
6 g. Q# O, U5 n0 C, `2 R                         , ]: m+ X0 P8 V, f, Q6 C
            : j  @, l) g: ~  `# N
            1 V+ h' X% c2 S- I/ `* z
            
$ _% f5 b$ ^& `/ O7 Z9 ]9 ?/ y- X9 K            7 f  _9 ^$ C0 ^3 x/ v
                     
/ h: ~( w4 P, ?  F  `$ l" X) N8 S        
/ y9 k) [' T) J6 M6 S8 C        
/ Z/ |8 [& o* R! t  V% \4 Q7 U+ J4 r        1 q( e% h- Q3 x+ V
          【摘要】
& W* m* J9 o* l7 C4 [- a      Stem cells from a variety of tissues can be identified by a side population (SP) phenotype based on Hoechst 33342 dye efflux. The Abcg2 transporter is expressed in hematopoietic stem cells (HSCs) and confers this dye efflux activity. To further explore the relationship among Abcg2 expression, the SP phenotype, and HSC activity, we have generated mice in which a green fluorescent protein (GFP) reporter gene was inserted into the Abcg2 locus. In these mice, the majority of bone marrow (BM) cells that expressed the Abcg2/ GFP allele were Ter119  erythroid cells. The Abcg2/GFP allele was also expressed in approximately 10% of lineage-negative (Lin¨C) and in 91% of SP cells using stringent conditions for the SP assay. Flow cytometric sorting was used to isolate various Abcg2/GFP  BM cell populations that were then tested for HSC activity in transplant assays. There was significant enrichment for HSCs in sorted Lin¨C/ GFP  cells, with a calculated HSC frequency of approximately one in 75. There was no HSC activity detected in Lin¨C/GFP  cells. Altogether, these results show that Abcg2 is expressed on essentially all murine BM HSCs and can be used as a prospective marker for HSC enrichment.
8 Y; @/ N3 Y) A9 y          【关键词】 Hematopoietic stem cells ATP-binding cassette transporters Abcg Transplantation
$ t4 Q$ b" f( `# Q                  INTRODUCTION. v/ B  Q8 H/ w) u" `! e! g* E5 W

, t1 A5 P3 ], @Bone marrow (BM) cells with the side population (SP) phenotype are enriched for hematopoietic stem cell (HSC) activity and can be identified based on their capacity to efflux the fluorescent dye Hoechst 33342 ." m" e. P! H  |6 i0 S+ X3 o$ d& C
7 u- p% Y( h2 Z; |- O0 O( R2 ^0 j# p
The goal of this study was to test whether direct isolation of cells expressing Abcg2 would be useful for the isolation and enrichment of HSCs. Furthermore, we wanted to better define the relationship between Abcg2 expression and the SP phenotype in hematopoietic cells. All currently available monoclonal antibodies against murine Abcg2 bind exclusively to intracellular epitopes and therefore cannot be used to sort living cells. To overcome this limitation, we have generated a knockin mouse model in which an internal ribosomal entry site (IRES)-green fluorescent protein (GFP) expression cassette was inserted immediately downstream of the stop codon of the Abcg2 gene. This allelic modification results in expression of the GFP reporter gene under control of the Abcg2 transcriptional regulatory elements, with coexpression of a functional wild-type (WT) Abcg2 protein. This model has allowed us to characterize Abcg2 expression within various hematopoietic cell subsets, to more precisely define the relationship between Abcg2 expression and the SP phenotype, and to isolate cells that express the bicistronic Abcg2/GFP mRNA for testing in murine transplant assays.0 }1 N3 S: W$ J

0 \; p1 Z0 b# C( m4 j6 d5 B2 hMATERIALS AND METHODS
$ }( a; a! _5 _: S+ L- q4 ~, N8 U  r) z- t. ?
Targeting Vector
# \- ?% V4 W- `% t4 n2 f( `& P9 S; a
The 5' arm of the targeting construct was generated by polymerase chain reaction (PCR) amplification of a 2.0-kb fragment of the murine Abcg2 gene up to and including the stop codon. This fragment was subcloned into the pKONTKV1901 vector (Stratagene, La Jolla, CA, http://www.stratagene.com). Next, a loxP-flanked NeoR gene linked to an IRES-enhanced GFP (EGFP) cassette that contained a polyadenylation signal from bovine growth hormone . Resistant ESCs were selected in the presence of 350 µg/ml G418 and 2 µM ganciclovir (Invitrogen, San Diego, http://www.invitrogen.com). Genomic DNAs from selected clones were digested with SspI (Promega, Madison, WI, http://www.promega.com) and analyzed by Southern blot using a 750-bp probe 5' to the targeting vector. Two correctly targeted ESC clones were identified and injected into C57BL/6 blastocysts to generate chimeric mice. Male chimeras were bred to female C57BL/6J mice (The Jackson Laboratory, Bar Harbor, ME, http://www.jax.org), and germline transmission of the targeted allele in the offspring was confirmed by Southern blot. All experiments with mice were done according to a protocol approved by the Institutional Animal Care and Use Committee.
0 y! e' m; Q+ U$ ~' |2 n5 w- K
, `$ ?8 q4 E9 ?% G( ~9 Q: U7 T0 U% aImmunohistochemistry
% ]5 v5 ?3 K0 k( p" [- g2 h4 j8 f% Q+ ?) ^  X" X
Slides of 5- to 6-µM sections, cut from formalin-fixed, paraffin-embedded tissues, were baked at 60¡ãC for 30 minutes to ensure tissue adherence to the slide and were then deparaffinized. Heat-induced epitope retrieval was performed using a Black & Decker Steamer (Hunt Valley, MD, http://www.blackanddecker.com) in citrate buffer (pH 6.0, Zymed; Invitrogen) at more than 96¡ãC for 30 minutes. Slides were allowed to cool for 30 minutes in the covered steamer and were then placed in Tris-buffered saline/Tween 20 (TBST) buffer (Dako, Carpinteria, CA, http://www.dako.com) for 10 minutes prior to assay.9 M, d6 c: Q% q. ^8 O

2 a  p' J* `* o! `- P! |/ w9 CImmunohistochemistry assays were performed on a Dako autostainer at room temperature. TBST buffer was used to rinse the slides between incubation steps. Endogenous peroxidase activity was blocked by incubation with 3% H2O2 (Humco, Texarkana, TX, http://www.humco.com) for 5 minutes. Non-specific protein binding was blocked by incubation with Superblock (Pierce, Rockford, IL, http://www.piercenet.com) for 30 minutes, avidin block (Dako) for 10 minutes, biotin block (Dako) for 10 minutes, and 10% goat serum for 30 minutes. Slides were incubated with rabbit anti-GFP (Molecular Probes, Eugene, OR, http://probes.invitrogen.com) (1:200 dilution for 30 minutes or 1:400 for 60 minutes) or with concentration-matched rabbit immunoglobulins (Dako). Slides then were incubated for 10 minutes with biotinylated goat anti-rabbit antibody (Vector Laboratories, Burlingame, CA, http://www.vectorlabs.com), for 10 minutes with streptavidin conjugated to horseradish peroxidase (Dako), and for 5 minutes with DAB (3,3' diaminobenzidine tetra hydrochloride; Dako). The slides were analyzed by conventional light microscopy using a Nikon E800 digital microscope (Melville, NY, http://www.nikonusa.com). The images were captured with a Nikon DXM 1200 digital camera and analyzed using ACT-1 software (Nikon).
/ b5 K% I0 M9 R8 q+ f" L# ~  j9 i& O% ^
Hoechst 33342 Staining of BM Cells5 n' ~* a/ ~8 b0 M& j0 `) c

5 p# t7 I) c; O& H* r, E  fHoechst staining of BM cells for SP cell analysis was performed as previously described . In brief, cells were counted and resuspended at 106 cells per ml in prewarmed Dulbecco¡¯s modified Eagle¡¯s medium-positive (Gibco, Grand Island, NY, http://www.invitrogen.com) containing 2% fetal bovine serum (FBS; HyClone, Logan, UT, http://www.hyclone.com) and 1 mM HEPES (HyClone) and incubated with 2.5¨C4.5 µg/ml Hoechst 33342 (Sigma-Aldrich, St. Louis, http://www.sigmaaldrich.com) for 90 minutes at 37¡ãC. Subsequently, Hoechst-stained cells were pelleted and then resuspended in 100 µl of ice-cold Hanks¡¯ balanced saline solution (HBSS)  (Gibco), 2% FBS, and 1 mM HEPES. The cells were then incubated for 20 minutes on ice with biotinylated mouse lineage panel antibodies comprised of anti-Gr-1, anti-CD11b/Mac-1, anti-CD3e, anti-CD4, anti-B220, anti-Ter-119, and anti-NK1.1, together with streptavidin/allophycocyanin (APC)-conjugated c-Kit antibody (2B8) and phycoerythrin (PE)-conjugated Sca1 antibody (E13-161.7), all from BD Pharmingen (San Jose, CA, http://www.bdbiosciences.com/pharmingen). The cells were then washed and resuspended in 100 µl of ice-cold HBSS  with 20 µl of streptavidin-APC (BD Pharmingen) for 20 minutes on ice. After the final round of staining and washing, the cells were resuspended in 0.5 ml of HBSS  containing propidium iodide (PI) and maintained on ice until analyzed in a FACS Vantage/SE/ DiVa cell sorter (BD Biosciences, San Diego, http://www.bdbiosciences.com). The SP gate was defined based on gates that were established in WT BM cells and analyzed concurrently, so that 0.05%¨C0.1% of cells were within SP gate. WT cells were also stained with an immunoglobulin isotype control to define the gates for antibody staining.! P$ N8 u. ^) ?) V% P
, W+ Y0 b% G3 x: D
Flow Cytometric Analysis and Cell Sorting
9 W0 _, o( j% I1 h2 j- J7 e
! r  ]. f% k6 O3 ^BM cells were harvested from the tibias and femurs of Abcg2GFP/GFP mice and enriched for Lin¨C cells by incubation with a lineage cocktail of PE-conjugated antibodies. Subsequently, cells were washed and incubated with 80 µl of anti-PE magnetic beads per 107 cells for 20 minutes at 4¡ãC, followed by negative selection using the MACS (magnetic activated cell sorting) cell separation system according to the manufacturer¡¯s instructions (Miltenyi Biotec, Auburn, CA, http://www.miltenyibiotec.com). Lin¨C cells were then either directly sorted based on GFP expression or stained with Hoechst and sorted afterward. Cells were stained with PI prior to sorting. Cell sorting was performed on BD Biosciences FACS-Aria flow cytometer. Cell-sorting gates for GFP and PE antibodies were defined using BM cells from WT mice and appropriate isotype control antibodies.
! w3 z3 d. g( m4 B# x) l9 J( E/ d6 `( W. L4 r
Competitive Repopulation Assay! j. R7 g7 V6 {1 e8 V' N

0 n+ T0 ?4 i' V. i0 r, }0 lDifferent numbers of sorted BM cells expressing the CD45.2 from Abcg2GFP/GFP knockin mice were mixed with 105 unfractionated BM cells from female C57/B6.SJL (CD45.1) recipient mice (The Jackson Laboratory). Cells were then injected into lethally irradiated (1,100 cGy) recipients in 0.5 ml of phosphate-buffered saline through tail-vein injection. For analysis of peripheral blood cells, red blood cells were lysed using FACS Lyse/Wash Assistant (BD Biosciences) and the remaining cells were stained with perCp-Cy-5.5-conjugated CD45.2 antibody (BD Pharmingen) in combination with the PE-conjugated anti-CD3 and anti-B220 antibodies and APC-conjugated anti-GR-1 and Mac-1 lineage antibodies. Cells were analyzed using the BD Biosciences LSR II flow cytometer.
" T9 `9 R; F5 o1 ~6 x' K. P( l6 ]' j% o9 E- N- a
RESULTS
5 h$ d. l7 ~, w/ W, c- u4 `2 ~/ t. D. I' K, {
Construction of the Abcg2-IRES-GFP Allele# t( _8 x' b9 ?2 a& U7 g

/ U3 @* B& V; `- ~- w4 t- J! IWe generated the Abcg2/GFP allele by inserting an IRES-GFP cassette immediately downstream of the Abcg2 stop codon and upstream of the endogenous polyadenylation signal sequence (Fig. 1A). Homologous recombination was achieved in PrmCre ESCs that express Cre recombinase under control of the protamine promoter, thus allowing Cre-mediated deletion of the NeoR gene from the male germline . Targeted ESC clones were screened for correct integration by Southern blot, using an outside intronic probe located between exons 14 and 15. Two correctly targeted clones were injected into C57BL/6J blastocysts and implanted into foster mothers. Three chimeric male mice exhibited germline transmission and served as founders for the colony. All of the offspring from these founders that inherited the targeted allele showed NeoR deletion by Southern blot. Homozygous mice (Abcg2GFP/GFP) were identified and were born in the expected mendelian ratio. Analysis of peripheral blood cells showed normal numbers and proportions of mature cells.5 B2 v  z8 o9 t" \2 }3 V( O

$ a* W/ h7 x' }, ?7 FFigure 1. Generation of the Abcg2/GFP allele. (A): The design of the targeting construct and the mutant allele is shown. The SspI restriction sites used for Southern blot analysis are indicated, as well as the location of the Abcg2 stop codon (TAA) and the endogenous polyadenylation sequence (pA). Exons are shown as solid boxes, and loxP sites are shown as triangles. The location of the probe used for Southern analysis is indicated. (B¨CE): Immunohistochemical analysis of Abcg2/GFP allele expression in kidney and small intestine. Sections were obtained from Abcg2GFP/GFP mice (B, D) and WT mice (C, E). All sections were analyzed with an anti-GFP antibody. Abbreviations: EGFP, enhanced green fluorescent protein; GFP, green fluorescent protein; IRES, internal ribosomal entry site; WT, wild-type.+ N4 b1 k' q% m: Y
2 J7 f& P8 g: h2 V! g; l
Tissue-Specific Expression of the Abcg2/GFP Allele1 u# s1 Q- w7 \. f# ]
4 U* O- {$ k# l! o: S& @8 s
Prior studies examining the expression pattern of Abcg2 in various tissues have shown high levels of expression in the renal proximal tubules, intestinal epithelial cells, vascular endothelium, as well as the liver and placenta . To verify that tissue-specific expression was maintained with the recombinant Abcg2 allele, organs from Abcg2GFP/GFP mice were stained with an anti-GFP antibody and analyzed by immunohistochemistry. GFP protein expression was detected in the proximal tubules of the kidney and in the epithelial cells of the small intestine (Fig. 1B). Venous endothelium was also stained with the anti-GFP antibody (data not shown). All together, these results demonstrate that expression of the Abcg2GFP/GFP allele correlated with the known tissue-specific expression pattern.) u! P4 c/ a; t$ W2 u# q
6 `7 P5 b6 n2 K/ Y6 s+ G
Expression of the Abcg2/GFP Allele in BM SP Cells
# Y0 e# ~& m; v7 P0 Q1 P7 L0 Q: [0 B: @& L* O" J! f9 s
Flow cytometric analysis of total nucleated BM cells revealed that approximately 10% of all cells expressed the Abcg2/GFP allele (Fig. 2A). Further analysis revealed that approximately 80% of all GFP  cells were Ter119  erythroid cells (Fig. 2B). This finding is consistent with prior reports showing that erythroblasts express Abcg2 mRNA . Relatively low proportions of GFP  cells expressed markers for T or B lymphocytes, macrophages, granulocytes, or natural killer cells (Fig. 2B). These results demonstrate that the majority of cells in the BM that express the Abcg2/GFP allele are maturing erythroid cells.! ]; A0 O7 H0 c, k, o/ z- ^

8 [! p! A. z" Z  N8 NFigure 2. Analysis of Abcg2/GFP expression in differentiated BM cells. (A): Expression of the Abcg2/GFP allele was analyzed in whole BM cells from both WT and Abcg2GFP/GFP mice. The gate used to define GFP  cells is shown. (B): Lineage analysis of gated GFP  cells. The lineage-specific antibodies used are shown below each panel. The solid black line shows the results for Abcg2GFP/GFP mice, whereas the dotted gray line shows the WT control. The number indicated the percentage of the gated GFP  cells that express the indicated lineage marker. Abbreviations: BM, bone marrow; GFP, green fluorescent protein; WT, wild-type.
/ r$ t3 P# a3 j4 s/ s+ T' X& h
) P  [+ k' d8 J* m2 LWe next examined the relationship between the Abcg2/GFP allele expression and the SP phenotype. Because our prior studies have shown that the SP assay becomes more specific for identifying cells that express Abcg2 as the concentration of Hoechst dye is increased , we performed the SP assay using three different dye concentrations. The overall percentage of SP cells decreased from 1.3% at 2.5 µg/ml Hoechst to 0.06% at 4.5 µg/ml (Fig. 3A). This result likely reflects the exclusion of cells with lesser degrees of transporter activity when the assay is performed at higher dye concentrations. As expected, increased dye concentration was also associated with higher level of GFP expression in the SP cells (Fig. 3B). These results demonstrate that almost all BM SP cells expressed the Abcg2/GFP allele when the SP assay was performed using stringent conditions (i.e., high concentrations of Hoechst dye).
6 v2 I+ q; `2 Z. ]. \/ h+ ~% y) J, y" j% s. w
Figure 3. Analysis of BM SP cells for expression of the Abcg2/GFP allele. (A): SP cell analyses of BM cells from Abcg2GFP/GFP mice at Hoechst concentrations of 2.5, 3.5, and 4.5 µg/ml. The percentage of SP cells within the BM is shown at each concentration. (B): GFP analysis of gated SP cells. The solid line shows the GFP flow cytometry profile for gated SP cells from either Abcg2GFP/GFP mice (solid line) or WT controls (dotted line). Abbreviations: BM, bone marrow; GFP, green fluorescent protein; SP, side population; WT, wild-type.) q* a& w0 ~) N3 S+ q7 \, g

8 Y" s( P, I- U( T  ]0 `5 g' ~* oIt has previously been shown that there is a higher concentration of HSCs in the "distal tip" of the SP region compared with the more proximal regions in the SP "tail" ./ |  |7 H3 J+ k( F* v( S! ]

8 m+ {& E: Z' Z& {; f% r" GExpression of the Abcg2/GFP Allele in Lin¨C BM Cells: `# p7 \& l  l0 _6 v4 f- X

( g3 d* S& z  ITo further analyze expression of Abcg2 in immature hematopoietic cells, GFP expression was analyzed in Lin¨C BM cells. BM cells were stained with antibodies directed against T and B lymphocytes, erythroid cells, natural killer cells, granulocytes, and macrophages. Approximately 4% of the BM cells lacked expression of any these markers. Within this Lin¨C population, approximately 14% of the cells expressed the GFP reporter gene (Fig. 4). Within the total Lin¨C /GFP  population, approximately 11% displayed the SP phenotype. When the stringency of the GFP gating was increased to include only the most GFP-bright cells, the number of SP cells within the GFP  population also increased to as high as 58% (data not shown). In contrast, only 0.3% of Lin¨C /GFP¨C cells displayed the SP phenotype, and these cells occurred predominantly in the proximal shoulder region (Fig. 4). Therefore, although Lin¨C /GFP  cells are significantly enriched for SP cells, a significant number of Lin¨C /GFP  cells lack the SP phenotype. These results demonstrate that cellular factors other than expression of Abcg2 are required for expression of the SP phenotype.
0 q3 D7 N; e# ^6 Y9 Y: T& x
1 o) D9 D, O! W+ OFigure 4. SP analysis of gated Lin¨C/GFP  BM cells. Lin¨C cells were identified by flow cytometry (top left panel) and analyzed for GFP expression (top right). Gating for GFP was based on a wild-type control and showed that approximately 14% of the Lin¨C cells were GFP . Using a Hoechst dye concentration of 4.5 µg/ml, SP analysis was performed on gated Lin¨C /GFP  cells (lower left) or Lin  /GFP¨C cells (lower right). The percentage of SP cells within each gated fraction is shown. Abbreviations: BM, bone marrow; GFP, green fluorescent protein; SP, side population.
& \5 w# J% X5 i; v1 N( J! y9 g
! b" w8 v0 a: T& t5 OLin¨C /GFP  BM Cells Are Highly Enriched for HSC Activity
/ O% f: Y2 f- `( o' D9 T* Q9 `
) f6 D$ e& v' KTo functionally characterize cells expressing the Abcg2/GFP allele, cell sorting was used to isolate Lin¨C, GFP , and GFP¨C populations (Fig. 5A). BM cells were first enriched for Lin¨C cells using an immunomagnetic column. Further purification was achieved using flow cytometry to gate on Lin¨C cells that either lacked GFP expression (R2) or expressed the highest levels of GFP (R1). Morphologic analysis of the Lin¨C/GFP  cells showed a relatively uniform population of undifferentiated cells with a high nuclear to cytoplasmic ratio, an open chromatin configuration, and numerous prominent nucleoli (Fig. 5B). In contrast, the Lin¨C GFP¨C cells showed heterogeneous morphology with varying degrees of myeloid and lymphoid differentiation. Approximately 55% of the Lin¨C /GFP  cells expressed the HSC-associated KSL phenotype, whereas only 4% of cells in the Lin¨C /GFP  populations expressed the KSL phenotype (Fig. 5C). These results suggest that the Lin¨C/GFP  cells were significantly enriched for repopulating HSCs.# n4 I1 S2 B, E0 l* A1 M
; a+ K) c! T2 N& P
Figure 5. Isolation and characterization of Lin¨C/GFP  BM cells. (A): GFP analysis of BM cells from WT cells (black line) and cells from the Abcg2GFP/GFP mice (colored lines). Gates R1 and R2 were used to sort GFP  (green) and GFP¨C (red) cell populations. (B): Cytospin analysis of sorted cells. The morphology of the Lin¨C/GFP  cells (R1) and Lin¨C/GFP¨C cells (R2) is shown in the photomicrographs taken at x 1,000 magnification. (C): KSL flow analysis of sorted cells. For the gated R1 and R2 populations, flow cytometry analysis was performed to determine the proportion of cells expressing c-kit and Sca1. The overall percentage of cells with the KSL phenotype is shown for each gated subfraction. Abbreviations: BM, bone marrow; GFP, green fluorescent protein; KSL, Lin¨C, c-Kit , Sca1 ; WT, wild-type.
( e* o/ A6 r* J, q6 M  U2 e1 m' T  V4 ^
To determine the HSC frequencies in these populations, limiting dilution transplant assays were performed. Varying numbers of sorted cells (CD45.2 background) were mixed with 1 x 105 BM cells from congenic CD45.1 mice, and this mixture was injected into lethally irradiated CD45.1 recipient mice. The sorted GFP  population comprised 15% of the total Lin¨C population, and the GFP¨C population 38% (Fig. 5A). Transplanted mice were analyzed 16 weeks after transplant for reconstitution with sorted cells. Reconstitution was defined as at least 5% CD45.2  peripheral blood cells in both myeloid (Gr-1  and/or Mac-1 ) and lymphoid (B220  or CD3 ) lineages. Sorted cells were also analyzed for day-12 colony-forming units-spleen (CFU-S). Lin¨C/GFP  cells gave multiple large colonies when mice were injected with 500 cells, whereas no CFU-S activity was noted from Lin¨C/GFP¨C cells at the same cell dose (data not shown).5 y* A7 t4 y& [$ W* [  H5 j& j- j

; U; u% S5 I9 Q  b9 DIn the group of recipients receiving only 10 Lin¨C/GFP  cells, significant reconstitution was noted in one of seven mice (Table 1). In mice transplanted with 60 Lin¨C/GFP  cells, 50% of the recipients had high-level reconstitution. Nearly all mice were repopulated with doses of Lin¨C/GFP  cells ranging from 125 to 1,000 cells per recipient (Table 1). In all cases, reconstitution from the sorted cells was robust, with CD45.2 cells comprising 20%¨C50% of all peripheral blood cells. The calculated repopulating cell frequency in the Lin¨C/GFP  population, based on the Poisson probability distribution, is one HSC per 75 cells. In contrast, no animals were reconstituted with Lin¨C/ GFP¨C cells at doses ranging from 1,000 to 60,000 cells per recipient. Altogether, these results show that the Lin¨C/GFP  cell fraction was significantly enriched for repopulating cell activity and that there was little to no repopulating activity in the Lin¨C cells that lacked GFP expression. Thus, the majority, if not all, of BM HSCs expressed the Abcg2/GFP allele.
, \, ]" _* V0 H" f- ?& |# X4 S, O' j: k
Table 1. Reconstitution with sorted bone marrow cells from Abcg2GFP/GFP knockin mice! J$ E% m# H! i7 w2 w6 h# Z' H
9 w8 D  @4 Z) @" I  ~0 {  L# ?
Several of the mice transplanted with 500 Lin¨C/GFP  cells were killed at 20 weeks after transplantation, and BM, thymus, and spleen cells were analyzed for reconstitution with CD45.2 cells. Approximately 26%¨C41% of BM erythrocytes, granulocytes, and B cells, as well as thymocytes were donor-derived CD45.2  cells (supplemental online Fig. 2). Similar levels of reconstitution were also noted in T and B lymphocytes and myeloid cells in the spleen, as well as in natural killer cells (data not shown). Secondary transplant experiments confirmed that the original sorted Lin¨C/GFP  cells were able to reconstitute secondary recipients (supplemental online Fig. 4).
1 N! @$ W% m% M1 ~6 I3 e$ U: `) z, {9 y% Y0 n
Functional Analysis of SP Versus Non-SP BM Cells That Express the Abcg2/GFP Allele
$ G: I. I& H3 O' k. T  u4 T6 [) n: L6 j# k. l4 ~. W, l0 x
Our phenotypic analysis indicated that cells expressing the Abcg2/GFP allele were present in both the SP and non-SP populations, raising the question as to whether the GFP , non-SP cells would contain repopulating cells. To address this question, we isolated both the SP and non-SP cell subpopulations within the Lin¨C/GFP  population and performed quantitative repopulation assays. In the group transplanted with Lin¨C/ SP/GFP  cells, 100% of recipient mice were reconstituted when 100 cells were transplanted. In contrast, significantly lower (five- to 10-fold) repopulating activity was detected in the Lin¨C/SP/GFP¨C subpopulation (Table 2). When we re-examined the GFP sorting gates used in this experiment, we noted that GFP-dim cells were present in the "GFP¨C" gate. We repeated a second experiment with revised gating for GFP¨C cells and found that the Lin¨C/SP/GFP¨C population was relatively depleted of c-Kit Sca1  cells (Table 2; supplemental online Fig. 4). Taken together, these results indicate that the number of HSCs in the GFP¨C SP cells is very low. When Lin¨C/non-SP/ GFP  cells were used, repopulating cells were present but at a lower frequency than seen in the Lin¨C/SP/GFP  population. No repopulating activity was detected using Lin¨C/non-SP/ GFP¨C cells./ j! j# q! |. n3 A3 N: }

; k0 `3 ?8 s3 p3 D6 |# ^+ I  aTable 2. Long-term competitive reconstitution by SP and non-SP subsets sorted based on GFP expression, x8 a7 N3 x  G7 G, R% Q
; Z& p1 K! ]) ]6 i
Flow cytometry analysis of these populations showed expression of the c-Kit Sca1  phenotype in approximately 78% of the Lin¨C/SP/GFP  cells, 9.5% of the Lin¨C/SP/GFP¨C, 5% of the Lin¨C/non-SP/GFP  cells, and less than 1% of the Lin¨C/ NON-SP/GFP¨C cells (Table 2; supplemental online Fig. 4). This phenotypic analysis correlated well with the repopulating cell frequency seen in the transplant assays. Altogether, these results demonstrate that whereas nearly all repopulating cells express that Abcg2/GFP allele, a minority of these GFP  HSCs do not display the SP phenotype.& k" L1 [8 D2 s) x% `) n/ T& P

3 t+ t# x5 ^9 |* O) f$ u0 D3 KDISCUSSION% ?( E9 Z( B" z* i7 t) X1 |
+ a# P# N1 p/ i. {2 W% ?1 V9 T
Following the initial description of the SP phenotype as a new marker for HSCs .
8 C! \$ n- z6 G
$ G" }8 H2 w' G% `We now report several new findings regarding the relationship among Abcg2 expression, SP cells, and HSC activity. First, the majority of Abcg2/GFP  cells in the BM were Ter119  erythroblasts rather than HSCs. Abcg2 expression is highly induced during erythroid development, resulting in significant levels of Abcg2 expression in mature enucleated red blood cells . We show here that Abcg2 is not expressed in other mature hematopoietic lineages in the BM.
3 k' B) j: [: ~' I( E1 i- i2 N9 M* g( L  K: w1 Y4 x
Within the immature Lin¨C population of BM cells, expression of Abcg2 can be used to isolate an enriched HSC population. Using a simple two-color flow cytometry assay to isolate Lin¨C, Abcg2/GFP  cells, we show that this population was highly enriched for cells with the KSL phenotype. More importantly, the functional HSC frequency in this population was one in 75 cells, a significant enrichment compared with the Lin¨C cells, in which the HSC frequency is approximately one in 2,500. Furthermore, no repopulating cells were present in as many as 60,000 Lin¨C, GFP¨C BM cells. This result indicates that most, if not all, of the HSCs in the BM express Abcg2. Therefore, we find that Abcg2 expression is not associated with a specific subset of HSCs in adult BM but is a common feature of all HSCs.2 C) H0 e8 b0 A* M
' `: Y8 h: ^9 a' c$ l
We have previously shown that Abcg2 mRNA is expressed within both the SP and non-SP populations of murine ESCs . Therefore, Abcg2 expression in Lin¨C cells is more specific for HSC activity than the SP phenotype alone.
: w+ n. o: r9 W  v. Y* v' s& w1 z. S3 n
An important remaining question is whether this approach can be used to isolate human HSCs and, if so, whether this population will be useful for clinical transplantation approaches. We have previously shown that CD34  and AC133  human hematopoietic cells express ABCG2 mRNA , although the sensitivity for detection of ABCG2 expression in primary human hematopoietic cells is relatively low (B.P.S., unpublished data). Further work will be needed to determine the utility of this approach for human HSC isolation.7 ], S1 o$ O& P3 w: X* A

9 @# A) C$ C7 `& k& ODISCLOSURES1 L) }& ]/ p9 d6 y0 U) p

, Q- q4 o9 Q2 hThe authors indicate no potential conflicts of interest.  ]% v# g2 A5 X# Q" w' `9 ~
) m) Z3 u- r& B' H1 y$ r
ACKNOWLEDGMENTS& @  O: F( `- {! ~. w' h8 ]

4 y6 e( \6 I) }- t7 R; l( P/ yWe thank Dr. R. Ashmun and the Flow Cytometry Core for invaluable assistance in cell-sorting experiments, Dr. G. Grosveld and the transgenic animal core for invaluable assistance in generating the knockin mice, Drs. S. O¡¯Gorman and R. Locksley for the generous gift of the PrmCre ESCs and reporter fragment, respectively, and Dorothy Bush for assistance with the immunohistochemistry assay. This work was supported by grants from the National Institutes of Health (R01 HL67366 to B.P.S.), Cancer Center Support Grant P30 CA 21765, The Assisi Foundation of Memphis, and the American Lebanese Syrian Associated Charities.+ g3 P0 }+ P# d: e
          【参考文献】
  [" r5 }" e& y) e
% O; J6 F, i6 a6 p6 R/ [
+ A2 A7 @( X/ u+ U5 m! OGoodell MA, Brose K, Paradis G et al. Isolation and functional properties of murine hematopoietic stem cells that are replicating in vivo. J Exp Med 1996;183:1797¨C1806.
" s7 `7 u; R8 ^$ `
& v; ]: X  f1 A: r  gZhou S, Morris JJ, Barnes Y et al. Bcrp1 gene expression is required for normal numbers of side population stem cells in mice, and confers relative protection to mitoxantrone in hematopoietic cells in vivo. Proc Natl Acad Sci U S A 2002;99:12339¨C12344.
' ^- h& t7 e* F. q+ i
/ M# z& Q9 U' o. pZhou S, Schuetz JD, Bunting KD et al. The ABC transporter Bcrp1/ ABCG2 is expressed in a wide variety of stem cells and is a molecular determinant of the side-population phenotype. Nat Med 2001;7:1028¨C1034.
" N2 w& |# b3 @! [. e
0 o% Q9 c7 B  lScharenberg CW, Harkey MA, Torok-Storb B. The ABCG2 transporter is an efficient Hoechst 33342 efflux pump and is preferentially expressed by immature human hematopoietic progenitors. Blood 2002;99:507¨C512.
) q* x! `$ T- i6 Q8 E1 W; d% P8 K5 D) \9 X. J
Doyle LA, Yang W, Abruzzo LV et al. A multidrug resistance transporter from human MCF-7 breast cancer cells. Proc Natl Acad Sci U S A 1998;95:15665¨C15670. Erratum in: Proc Natl Acad Sci U S A 1999;96: 2569.
+ c1 T9 X, W# P0 I8 A$ N% O" x. }
4 @( N/ t+ T5 X6 D5 fMiyake K, Mickley L, Litman T et al. Molecular cloning of cDNAs which are highly overexpressed in mitoxantrone-resistant cells: Demonstration of homology to ABC transport genes. Cancer Res 1999;59:8¨C13.
; `0 Z' L! _4 @  e1 a
1 {5 O6 W" C1 iMaliepaard M, Scheffer GL, Faneyte IF et al. Subcellular localization and distribution of the breast cancer resistance protein transporter in normal human tissues. Cancer Res 2001;61:3458¨C3464.
1 `  ^( t# g( G+ |6 K4 Q$ P; j. y, F
Jonker JW, Buitelaar M, Wagenaar E et al. The breast cancer resistance protein protects against a major chlorophyll-derived dietary phototoxin and protoporphyria. Proc Natl Acad Sci U S A 2002;99:15649¨C15654.2 ^& r7 g& b- e* }
& q$ M0 h5 o* f4 e0 B! R6 g( O/ ]% t
van Herwaarden AE, Jonker JW, Wagenaar E et al. The breast cancer resistance protein (Bcrp1/Abcg2) restricts exposure to the dietary carcinogen 2-amino-1-methyl-6-phenylimidazo
3 n' G5 o9 Q1 h+ b, L0 e
. z* e% _9 Q8 a; B  C5 YUchida N, Fujisaki T, Eaves AC et al. Transplantable hematopoietic stem cells in human fetal liver have a CD34( ) side population (SP) phenotype. J Clin Invest 2001;108:1071¨C1077., a9 L& G' O2 G! U7 J' Y
  z0 `: c8 M% O# _: K
Mohrs M, Shinkai K, Mohrs K et al. Analysis of type 2 immunity in vivo with a bicistronic IL-4 reporter. Immunity 2001;15:303¨C311.9 P- O! K. P- ?
# `3 ^6 K3 G; e
O¡¯Gorman S, Dagenais NA, Qian M et al. Protamine-Cre recombinase transgenes efficiently recombine target sequences in the male germ line of mice, but not in embryonic stem cells. Proc Natl Acad Sci U S A 1997;94:14602¨C14607.
* i& v- p3 @% v4 V1 t
0 p8 b! i8 u0 U" m' w& ]Zhou S, Zong Y, Ney PA et al. Increased expression of the Abcg2 transporter during erythroid maturation plays a role in decreasing cellular protoporphyrin IX levels. Blood 2005;105:2571¨C2576.3 Q9 Q1 Y: G- N

3 L% C" C1 i* O9 z; JMatsuzaki Y, Kinjo K, Mulligan RC et al. Unexpectedly efficient homing capacity of purified murine hematopoietic stem cells. Immunity 2004;20:87¨C93.
- O7 @2 {; F4 M& x, p6 L% P/ x% {4 j- S( [3 e
Goodell MA, Rosenzweig M, Kim H et al. Dye efflux studies suggest that hematopoietic stem cells expressing low or undetectable levels of CD34 antigen exist in multiple species. Nat Med 1997;3:1337¨C1345.& k% {- q. W7 \9 W% G, A

7 w2 `& u: T- zGussoni E, Soneoka Y, Strickland CD et al. Dystrophin expression in the mdx mouse restored by stem cell transplantation. Nature 1999;401: 390¨C394.
( D9 D/ Z9 P/ Q* V! a7 g7 \! G9 t+ p4 P: a/ |, Z/ Z+ @
Martin CM, Meeson AP, Robertson SM et al. Persistent expression of the ATP-binding cassette transporter, Abcg2, identifies cardiac SP cells in the developing and adult heart. Dev Biol 2004;265:262¨C275.5 X5 _* S) y. I9 e! K
2 h+ `2 H* |& z: h4 ~8 k* L
Kim M, Morshead CM. Distinct populations of forebrain neural stem and progenitor cells can be isolated using side-population analysis. J Neurosci 2003;23:10703¨C10709.
% N4 T$ `4 N7 P
+ p" T, c  X' R$ W- PBhattacharya S, Jackson JD, Das AV et al. Direct identification and enrichment of retinal stem cells/progenitors by Hoechst dye efflux assay. Invest Ophthalmol Vis Sci 2003;44:2764¨C2773.8 q3 e5 }2 ~1 M/ Z
* o! u/ o4 U6 s3 `
Budak MT, Alpdogan OS, Zhou M et al. Ocular surface epithelia contain ABCG2-dependent side population cells exhibiting features associated with stem cells. J Cell Sci 2005;118:1715¨C1724.
8 ^  r1 F) z$ w, V  d, c. [0 r* R9 Y8 t: U2 I0 u
Abbott BL, Colapietro AM, Barnes Y et al. Low levels of ABCG2 expression in adult AML blast samples. Blood 2002;100:4594¨C4601.7 I$ G, o& ^- C: y. P
. t6 q% U# @4 u' l' H# u% J+ k2 [
Hirschmann-Jax C, Foster AE, Wulf GG et al. A distinct "side population" of cells with high drug efflux capacity in human tumor cells. Proc Natl Acad Sci U S A 2004;101:14228¨C14233.
% Y; q% [/ x- \# O) n: n+ C+ ~$ U$ ?( e
Wulf GG, Wang RY, Kuehnle I et al. A leukemic stem cell with intrinsic drug efflux capacity in acute myeloid leukemia. Blood 2001;98: 1166¨C1173.
  G3 f: j% s4 \( O+ z* R0 v2 P3 p0 ^: M3 D; ^6 H
Montanaro F, Liadaki K, Schienda J et al. Demystifying SP cell purification: Viability, yield, and phenotype are defined by isolation parameters. Exp Cell Res 2004;298:144¨C154.; w5 }5 _8 X0 [  f8 B/ v
2 q1 T9 q, r! @& Y$ D
Bachrach E, Li S, Perez AL et al. Systemic delivery of human microdystrophin to regenerating mouse dystrophic muscle by muscle progenitor cells. Proc Natl Acad Sci U S A 2004;101:3581¨C3586.
& z$ M- w; a! c( J( [2 ?5 B" R  q6 u  ?3 b
Chen CZ, Li L, Li M et al. The endoglin(positive) sca-1(positive) rhodamine(low) phenotype defines a near-homogeneous population of long-term repopulating hematopoietic stem cells. Immunity 2003;19: 525¨C533.
) |! ^. G6 [  ~/ e0 s0 O# Q
6 [5 S2 E$ E4 TRobey RW, Steadman K, Polgar O et al. Pheophorbide a is a specific probe for ABCG2 function and inhibition. Cancer Res 2004;64: 1242¨C1246.% F( t3 }4 Q% _
- S% c0 ?8 \/ W4 t  p* e; l7 l* m
Ozvegy-Laczka C, Varady G, Koblos G et al. Function-dependent conformational changes of the ABCG2 multidrug transporter modify its interaction with a monoclonal antibody on the cell surface. J Biol Chem 2005;280:4219¨C4227.
9 {0 ^) `6 o' }, \/ Y. x: G7 m# C
: Z. i. X" P: W7 ^8 [Naylor CS, Jaworska E, Branson K et al. Side population/ABCG2-positive cells represent a heterogeneous group of haemopoietic cells: Implications for the use of adult stem cells in transplantation and plasticity protocols. Bone Marrow Transplant 2005;35:353¨C360.

Rank: 2

积分
77 
威望
77  
包包
1730  
沙发
发表于 2015-5-30 17:40 |只看该作者
似曾相识的感觉  

Rank: 2

积分
64 
威望
64  
包包
1734  
藤椅
发表于 2015-6-3 09:27 |只看该作者
今天临床的资料更新很多呀

Rank: 2

积分
73 
威望
73  
包包
1833  
板凳
发表于 2015-6-28 21:08 |只看该作者
干细胞之家微信公众号
昨天没来看了 ~~  

Rank: 2

积分
163 
威望
163  
包包
1852  
报纸
发表于 2015-6-29 11:54 |只看该作者
慢慢来,呵呵  

Rank: 2

积分
64 
威望
64  
包包
1734  
地板
发表于 2015-8-9 15:14 |只看该作者
抢座位来了  

Rank: 2

积分
72 
威望
72  
包包
1942  
7
发表于 2015-8-13 20:54 |只看该作者
来上茶~~~~  

Rank: 2

积分
70 
威望
70  
包包
1809  
8
发表于 2015-8-18 08:54 |只看该作者
干细胞之家是国内最好的干细胞网站了

Rank: 2

积分
161 
威望
161  
包包
1862  
9
发表于 2015-8-24 22:50 |只看该作者
我回不回呢 考虑再三 还是不回了吧 ^_^  

Rank: 2

积分
84 
威望
84  
包包
1877  
10
发表于 2015-8-31 19:48 |只看该作者
转基因动物
‹ 上一主题|下一主题
你需要登录后才可以回帖 登录 | 注册
验证问答 换一个

Archiver|干细胞之家 ( 吉ICP备2021004615号-3 )

GMT+8, 2024-5-5 12:23

Powered by Discuz! X1.5

© 2001-2010 Comsenz Inc.