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Molecular and Cellular Biology, July 2005, p. 5607-5615, Vol. 25, No. 13
0270-7306/05/$08.00+0 doi:10.1128/MCB.25.13.5607-5615.2005
Copyright © 2005, American Society for Microbiology. All Rights Reserved.
Department of Biochemistry and Molecular Biology, University of Kansas Medical Center, Kansas City, Kansas 66160-7421
Received 24 January 2005/ Returned for modification 10 March 2005/ Accepted 30 March 2005
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Mammalian zinc homeostasis is achieved by regulating the absorption, excretion, and storage of zinc in response to demand and availability. Under normal, zinc-replete conditions, zinc is absorbed from the diet by enterocytes in the small intestine, and excess zinc is released through the pancreas and small intestine as well as the kidney (21, 31, 42). However, under zinc-deficient conditions, zinc absorption by the small intestine increases, and release from the pancreas and small intestine decreases (21).
At the cellular level, maintaining a constant level of zinc is accomplished through the interplay of proteins involved in zinc export, storage and uptake. Export is achieved by the zinc transporter (ZnT; SLC30A) family of cation diffusion facilitator proteins. These proteins generally contain six predicted transmembrane domains and presumably function as multimers (27). They transport zinc out of the cytoplasm either to the cell exterior or into intracellular compartments. To date, ten members of this family have been described in mammals, and two of these, ZnT1 and ZnT2, are regulated by zinc at the mRNA level (36, 39), while four, ZnT1, ZnT2, ZnT4, and ZnT6, are regulated at the level of subcellular localization (23, 28).
Zinc is bound intracellularly by small cysteine-rich proteins called metallothioneins (MTs) (10). In the mouse, there are four MT family members, and two of these, MT-I and -II, are zinc regulated. In the presence of high zinc, MT-I and -II accumulate due to increased transcription rates. In contrast, under low-zinc conditions, MT levels decrease due to a lower transcription rate and protein destabilization (1). Although MT genes are nonessential, they appear to function as a "zinc buffer": they sequester zinc when it is present at high levels, protecting against metal toxicity, and under zinc-limiting conditions provide a labile pool of zinc that can be released for use by other proteins.
Cellular zinc uptake is mediated by the ZRT/IRT-like protein (ZIP) family, also designated solute carrier family 39A (SLC39A), of metal ion transporters (16, 20). Members of this family are found in all phylogenetic classifications, from bacteria to mammals, and they transport metal into the cytoplasm from either the cell exterior or intracellular compartments. ZIP proteins contain eight predicted transmembrane domains, with extracellular amino and carboxyl termini and a histidine-rich intracellular loop located between transmembrane domains 3 and 4 that may bind metal.
The human and mouse genomes each encode 14 ZIP proteins, of which only nine have been characterized in any detail. From these and other experiments, it has become apparent that ZIPs differ in tissue-specific expression, relative expression levels, subcellular localization, metal specificity, and mechanism of regulation. As with ZnTs and MTs, several ZIPs are zinc regulated (40). In the mouse, ZIP4 mRNA abundance correlates inversely with zinc levels (15), and the subcellular localization of ZIP1, ZIP3, ZIP4, and ZIP5 is responsive to zinc levels (13, 28, 30, 47, 48).
Based on sequence similarity, the ZIP family can be divided into four subfamilies, I and II, GufA, and LIV-1 (44). Subfamily II contains three members in human and mouse (ZIP1, -2, and -3) that share a conserved 12-amino-acid signature sequence (14). ZIP1 is expressed at relatively high levels in every tissue examined except pancreas, whereas ZIP2 and ZIP3 appear to be more tissue-restricted and expressed at lower levels (14). All three of these family members function to specifically increase the accumulation of zinc when expressed in cultured cells. Zinc uptake by ZIP1 and ZIP2 was only modestly inhibited by other metals, whereas uptake by ZIP3 was inhibited by all metals tested except iron, suggesting that it may function to transport other metals, although zinc appears to be its preferred substrate (14).
Despite the wealth of information that has been gained recently about the ZIP family of proteins from in vitro experiments, very little is known about their in vivo expression, regulation, and function. Herein we report the generation and characterization of mice lacking the ZIP3 (SLC39A3) zinc transporter. In these mice, the ZIP3 open reading frame was replaced with that of the enhanced green fluorescent protein (EGFP), allowing us to examine temporal and tissue-specific ZIP3 expression at various stages of development in addition to probing the physiological role of ZIP3 in the intact organism.
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The 4.15-kb upstream arm of the targeting vector spanned from an XbaI site located approximately 650 bp upstream of exon 1 and extended downstream to the ZIP3 start codon. An XhoI site that had been introduced immediately downstream of the ZIP3 start codon by PCR was fused in-frame to the coding region of EGFP cDNA from the vector pEGFPKT1loxneo (19) (gift from Mario Cappechi, University of Utah, Salt Lake City). Downstream of the EGFP cDNA in this plasmid was a loxP-flanked MC1-neo cassette (45). The 3.36-kb downstream arm was subcloned downstream of this MC1-neo cassette and extended from an XbaI site located approximately 600 bp 3' of exon 4 and extended to a downstream BglII site. This targeting construct was inserted into the XbaI and BglII sites of 4317G9 (gift from Richard Palmiter, University of Washington, Seattle) which are flanked by herpes simplex virus thymidine kinase and diphtheria toxin negative selectable markers.
Homologous recombination of the targeting vector into the endogenous locus results in the insertion of two novel EcoRI sites, allowing the targeted and wild-type alleles to be distinguished by Southern blotting using both 5'- and 3'-flanking probes. The 5'-flanking probe is a 463-bp BglII-BglII genomic fragment that recognizes a
19.7-kb EcoRI fragment corresponding to the wild-type allele which decreases in size to
7.8 kb following homologous recombination. The 3'-flanking probe is an 886-bp XhoI-XbaI genomic fragment that recognizes a 19.7-kb fragment corresponding to the wild-type allele that decreases in size to 7.3 kb following homologous recombination.
Targeted disruption of the ZIP3 gene in embryonic stem cells. The targeting vector was linearized within the vector backbone with AscI and electroporated into R1 embryonic stem (ES) cells using an ECM 600 electroporator (BTX, San Diego, CA). Colonies were selected with 300 µg/ml G418 (Mediatech, Herndon, VA) and 2 µM ganciclovir (Roche Pharmaceuticals, Nutley, NJ). Selection against diphtheria toxin requires no drug treatment.
Homologous recombinants were screened for by Southern blotting using the 463-bp 5'-flanking probe. Positive clones were subsequently screened with (i) the 886-bp 3'-flanking probe, (ii) a Y-chromosome-specific probe derived from pY2 (35), and (iii) a neo cDNA to detect the presence of a single homologously targeted MC1-neo cassette.
Generation of ZIP3 knockout mice. Chimeric mice were generated by microinjection of three independent ZIP3+/ ES cell clones into 3.5-day-old C57BL/6 blastocysts, followed by transfer to pseudopregnant CD-1 foster mothers. Resulting male chimeric mice were mated with C57BL/6 females (Harlan, Indianapolis, IN). Germ line transmission was confirmed by PCR from tail DNA of agouti offspring. As expected, approximately 50% of the agouti pups were heterozygous for the ZIP3 knockout allele. The PCR screen utilized a set of three primers: mZIP3WT(S) (5'-CATCAGATCCTCTGGAACTGGAGTTACA-3'), mZIP3WT(AS)2 (5'-AACACACAGAGTATGGATTCTCAGAACCC-3'), and neoKO(AS) (5'-GAATGGGCTGACCGCTTCCTC-3'). The mZIP3WT(S) primerwas specific for the deleted region of ZIP3 and detected only the wild-type allele. The NeoKO(S) primer was specific for the neo cDNA and detected only the mutant allele. The mZIP3WT(AS) primer detected both the wild-type and mutant alleles. The PCR product for the mutant allele was 326 bp, whereas the product for the wild-type allele was 461 bp. Results from the PCR screen were initially confirmed by Southern blot analysis. Agouti offspring heterozygous for the ZIP3 knockout allele were bred with C57BL/6 mice. The heterozygous offspring of that mating were inbred to yield wild-type and homozygous ZIP3 knockout mice.
Animal care and use. Experiments involving mice were performed in accordance with the guidelines from the National Institutes of Health for the care and use of animals and were approved by the Institutional Animal Care and Use Committee. Mouse diets were purchased from Harlan Teklad (Madison, WI) and were identical except for zinc levels, which were as follows: zinc-deficient diet, 1 ppm zinc; zinc-adequate diet, 50 ppm zinc.
To examine ZIP3, ZIP4, and metallothionein (MT-I) expression and to determine tissue levels of essential metals (Zn, Cu, and Fe), adult mice (six per group) were maintained on a zinc-adequate diet and sacrificed, and the indicated tissues were harvested and frozen in liquid nitrogen for subsequent extraction of RNA or for inductively coupled plasma-atomic emission spectrometry (ICP-AES), respectively. Prior to RNA extraction, the indicated tissues from each mouse were pooled. To monitor EGFP fluorescence, indicated tissues or embryos at various stages of development were collected and examined immediately by fluorescence microscopy.
The effect of zinc deficiency during pregnancy on morphogenesis and growth of the embryo was assessed by subjecting pregnant mice to dietary zinc deficiency under the experimental conditions described previously (15). Female mice were mated, and the day a vaginal plug was found was considered day 1 of pregnancy. On day 1, mice were placed in cages and provided free access to zinc-adequate feed and deionized distilled water. On day 8 of pregnancy, mice were placed in pairs in cages with stainless steel false bottoms to reduce the recycling of zinc (9). In addition, water was provided in bottles that had been washed in 4 M HCl and rinsed with deionized water to remove zinc. At this time, the diet was changed to the zinc-deficient feed. On day 14 of pregnancy, the embryos were collected, examined for gross morphological defects, and weighed.
The effect of initiating zinc deficiency at birth was determined by culling litters to eight pups per dam at birth and placing the dams on either a zinc-adequate or zinc-deficient diet. Each dam (six per treatment group) was individually weighed daily up to 5 days, and pups were weighed as litters daily up to 5 days, and an average weight per pup was calculated.
The effect of zinc deficiency at weaning was determined by placing 21-day-old male and female weanlings (approximately equal numbers) on either a zinc-deficient or zinc-adequate diet for 3 weeks. Mice were weighed on days 0, 7, 14, and 21 to determine an average weight per treatment group. On day 21, mice were either put on a zinc-adequate diet to examine recovery or sacrificed to determine average testicular weight, thymus weight, and the distribution of thymocyte subtypes using flow cytometry.
Southern blot analysis. Genomic DNA (1 to 10 µg) extracted from either duplicate ES cell colonies or tail DNA preparations was digested overnight with EcoRI, resolved on 0.7% Tris-acetate-EDTA-agarose gels, transferred to Zeta-Probe GT membranes (Bio-Rad, Hercules, CA), and hybridized overnight using UltraHyb ultrasensitive hybridization buffer (Ambion, Austin, TX) and washed according to the manufacturer's directions. DNA fragments used as probes to detect the ZIP3 gene, neo cDNA, and Y chromosome repetitive elements were excised from parental plasmids and labeled with [32P]dCTP to a minimum specific activity of 109 cpm/µg using the random primers DNA labeling system (Invitrogen, Carlsbad, CA). The neo probe was hybridized and washed at 38°C due to the high A:T content of the cDNA.
Northern blot analysis. Total RNA was isolated using Trizol reagent (Invitrogen) according to the manufacturer's instructions. RNA (3 µg) was resolved on agarose-formaldehyde gels, transferred to nylon membranes, immobilized via UV cross-linking, and hybridized and washed under stringent conditions as previously described (11, 12, 14, 36). Hybrids were detected by autoradiography with intensifying screens at 80°C. DNA fragments used as probes to detect the ZIP3 and ZIP4 cDNAs were excised from parental plasmids and labeled with [32P]dCTP using the random primers DNA labeling system (Invitrogen) as described previously (14, 15). The MT-I probe was generated by in vitro transcription as previously described (11). Mouse brain Northern blots were purchased from Panomics (Redwood City, CA).
Fluorescence imaging. EGFP fluorescence was monitored in freshly collected tissue using a Leica DM4000 B microscope (North Central Instruments, Inc., Plymouth, MN).
Trace metal determination. Accumulation of zinc, copper, and iron in the testes (six pairs per group) was determined by inductively coupled plasma-atomic emission spectrometry (ICP-AES) (performed by Jeffrey F. Harper, Scripps Research Institute, La Jolla, CA). Each sample was normalized to magnesium prior to determining average metal levels.
Flow cytometry. Flow cytometric analysis of thymocyte subtypes was performed as previously described (25). Each thymus was passed through a 70-µm cell strainer (BD Biosciences, San Diego, CA) with phosphate-buffered saline containing 2% fetal bovine serum, and the single-cell suspension was reconstituted at a density of 2 x 1010 cells/liter. An aliquot of 106 cells was incubated in the presence of 10 µg rat immunoglobulin to block nonspecific binding, followed by incubation with anti-CD4-phycoerythrin (PE) and anti-CD8-fluorescein isothiocyanate (FITC) antibodies (BD Biosciences) for 30 min on ice. The labeled samples were then washed with phosphate-buffered saline containing 2% fetal bovine serum and 1 mg/ml sodium azide and suspended in 1 ml of 2% formaldehyde in phosphate-buffered saline to fix the cells. Samples were analyzed using a Beckman Coulter EPICS XL-MCL fluorescence activated cell sorter (Miami, FL) by exciting the fluorochromes at 488 nm and detecting PE and FITC emissions at 575 and 530 nm, respectively. Data from at least 10,000 events were acquired from each sample.
Statistics. The experimental data for trace metals were evaluated by Student's t test. The remaining data were analyzed by one-way analysis of variance with post hoc Turkey's comparisons using the SAS System version 8 (SAS Institute, Cary, NC). Data are presented as means ± standard deviation or standard error of the mean. Differences between groups were considered significant at P < 0.05.
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FIG. 1. Targeted disruption of the ZIP3 gene. (A) Targeting strategy. The gene structure for the ZIP3 wild-type allele (top) is shown with the four exons (dark gray boxes), the initiator methionine (ATG) and stop (STP) codons, and pertinent restriction sites. The dark horizontal bars represent the locations of the 463-bp 5'-flanking probe and the 886-bp 3'-flanking probe. Targeting vector (middle): herpes simplex virus thymidine kinase (TK); diphtheria toxin (DT); enhanced green fluorescent protein (EGFP) reporter (light gray box); neomycin (Neo). Structure of the targeted mutant allele (bottom). (B) Southern blot genotype analysis of mouse tail DNA. Genomic DNA from wild-type (+/+), heterozygous knockout (+/), and homozygous knockout (/) mice was digested with EcoRI and analyzed by Southern blot analysis using the 5'-flanking probe (463) or 3'-flanking probe (886). (C) PCR genotyping of mouse DNA. Genomic DNA was PCR amplified with a set of three primers to distinguish wild-type from mutant alleles. Amplification of the wild-type allele produces a 461-bp fragment, whereas amplification of the mutant allele produces a 326-bp fragment.
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FIG. 2. Confirmation of targeted disruption of ZIP3. (A) Northern blot analysis of ZIP3 expression in testes. Total RNA was isolated from the testes of wild-type (+/+), heterozygous knockout (+/), and homozygous knockout (/) mice and analyzed by Northern blot analysis using a ZIP3-specific cDNA probe. (B) EGFP expression in the testes. Testes were collected from wild-type (+/+), heterozygous knockout (+/), and homozygous knockout (/) adult mice and examined immediately by microscopy for EGFP fluorescence.
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FIG. 3. Detection of ZIP3 expression patterns by EGFP fluorescence in mouse embryos. (A) Blastocysts from wild-type and homozygous knockout matings were collected on day 4 from the uteri of pregnant mice and compared side by side using fluorescence microscopy to detect EGFP. Arrowheads demarcate either homozygous knockout (/) or wild-type (+/+) blastocysts. Wild-type (+/+) and heterozygous knockout (+/) embryos were analyzed by fluorescence microscopy for EGFP on day 11 (B) and day 14 (C and D) of gestation.
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To further examine ZIP3 expression in the adult brain, Northern blot analysis of polyadenylated RNA isolated from various regions of the brain was performed. ZIP3 mRNA was detected in all brain regions examined, and its abundance in all regions was relatively equal (data not shown). Overall, these results establish that the mouse ZIP3 gene is activated before implantation and is expressed in many embryonic cell types but displays elevated expression in the gonads and central nervous system.
Effects of ZIP3 knockout on essential metal levels and zinc-responsive gene expression. To determine whether targeted deletion of the ZIP3 gene alters zinc homeostasis, two functional assays were carried out. First, zinc content in the testes was determined by inductively coupled plasma-atomic emission spectrometry. Zinc levels in the testes from homozygous knockout mice were identical to those in wild-type mice (Fig. 4A). In addition, neither copper nor iron levels were different between knockout and wild-type mice. Second, the effect of ZIP3 knockout on zinc-responsive gene expression was assessed by Northern blotting. The small intestine and testes were collected from mice of different genotypes and analyzed for the expression of two known zinc-responsive genes, MT-I and ZIP4. MT-I mRNA is depleted, whereas ZIP4 mRNA is enriched in intestinal RNA from zinc-deficient mice (15). In both tissues, MT-I gene expression did not differ significantly between wild-type, heterozygous knockout, and homozygous knockout mice (Fig. 4B). Likewise, ZIP4 expression in the intestine did not differ between genotypes (Fig. 4B) and, consistent with previous findings (15), was not detectable in the testes. Furthermore, the subcellular localization of ZIP4 was examined in the intestine and visceral yolk sac, which was previously demonstrated to be on the apical surface of enterocytes and endoderm cells under conditions of zinc deficiency (15). No ZIP4 was detected on the apical surfaces of these cells in the ZIP3 knockout mice fed a zinc-adequate diet (data not shown).
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FIG. 4. Effect of targeted deletion of the ZIP3 gene on levels of essential metals and expression of zinc-responsive genes. (A) Effect of ZIP3 deletion on trace metal levels in the testes. Wild-type (+/+) or homozygous knockout (/) adult mice were maintained on a zinc-adequate diet, and testes were collected and analyzed by inductively coupled plasma-atomic emission spectrometry (ICP-AES) for zinc (Zn), copper (Cu), and iron (Fe) levels. Individual samples were normalized to magnesium, and bars represent the mean of normalized samples (n = 6) ± 1 standard deviation. (B) Effect of ZIP3 deletion on mRNA levels of zinc-responsive genes. Total RNA was isolated from the intestine and testes of wild-type (+/+), heterozygous knockout (+/), and homozygous knockout (/) adult mice and analyzed by Northern blot hybridization using the MT-I (top) or ZIP4 (bottom) probe.
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Phenotypic analysis of ZIP3 knockout mice. ZIP3 homozygous knockout mice were generated from heterozygous matings at the expected Mendelian ratio. They were fertile and appeared normal, with no discernible differences between homozygous knockout mice and their wild-type littermates over several generations in terms of body mass and reproductive success, as measured by rate of pregnancy and litter size (data not shown). Given the absence of an obvious phenotype in ZIP3 knockout mice under normal animal husbandry conditions, mice were subjected to dietary zinc deficiency using several different protocols.
Since ZIP3 is expressed at highest levels in the testes, it seemed likely that a phenotype would be most evident in this tissue. Adult male mice were placed on a zinc-deficient diet for 8 weeks, and their testes were collected and analyzed. There was no difference in testicular weight between wild-type and knockout mice, and testes from knockout mice appeared histologically normal (data not shown).
Zinc deficiency during pregnancy provides a model system with which to examine the effects of zinc on embryonic development. The demand for zinc by developing embryos increases during midgestation, coincident with a phase of rapid growth. Superimposing zinc deficiency during this period accentuates the demand for zinc and causes retarded growth, delayed development, and embryonic lethality (2, 11, 38). To determine whether deletion of ZIP3 causes more severe defects during pregnancy under zinc-deficient conditions, mice were fed either a zinc-adequate or zinc-deficient diet beginning on day 8 of pregnancy. On day 14, the mice were sacrificed, and embryos were collected, weighed, and observed for morphological abnormalities (Table 1). Consistent with previous findings, dietary zinc deficiency caused approximately 25% of the embryos from wild-type matings to develop abnormally. Abnormal embryos were significantly smaller than their morphologically normal littermates. Although paternal ZIP3 knockout had no effect on the size or number of the abnormal embryos, there was a small increase in the percentage of abnormal embryos in mothers that lacked ZIP3, and this effect was exacerbated if the embryos also lacked functional ZIP3. Thus, under these experimental conditions, a minor increase in susceptibility to zinc deficiency during pregnancy correlated with loss of function of ZIP3.
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TABLE 1. Effect of zinc deficiency during pregnancya
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FIG. 5. Effect of initiating maternal zinc deficiency at birth on neonatal growth of ZIP3 knockout mice. On the day of birth, pups from either wild-type (WT, dotted line) or homozygous knockout (KO, solid line) matings were culled to eight per litter, and dams were placed on either a zinc-adequate (ZnA, ) or zinc-deficient (ZnD, ) diet. Pups (A) and dams (B) were weighed daily for 5 days to determine an average weight per animal for each treatment group. Data points represent means (n = 4 to 6) ± standard error of the mean (error bars). * denotes a significant difference between the zinc-adequate and zinc-deficient diets on day 5 (P 0.05) for each genotype.
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FIG. 6. Effect of initiating zinc deficiency at weaning on body, testicular, and thymic weight in ZIP3 knockout mice. On day 21 after birth, wild-type (+/+) and homozygous knockout (/) pups were weaned and then fed either a zinc-adequate (ZnA, ) or zinc-deficient (ZnD, ) diet. (A) On days 7, 14, and 21 of the diet, pups were weighed, and an average wet weight was determined. On day 21 of the diet, zinc was replenished by feeding the zinc-adequate diet, and pups were weighed daily during recovery. (Only every other day is shown graphically.) In parallel experiments, day 21 zinc-deficient mice were sacrificed, and the testes (B) and thymuses (C) were harvested and weighed. Data are represented as the mean ± standard deviation (error bars) (n = 12 to 26 for A and C and n = 7 to 17 for B). * denotes a significant difference between the zinc-adequate and zinc-deficient diets (P 0.05).
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Previous studies have shown that thymic atrophy is a hallmark of zinc deficiency and is associated with substantially reduced numbers of pre-T lymphocytes due to enhanced apoptosis of this T-cell subpopulation (17, 32). Pro-T cells and helper and cytolytic T cells survive zinc deficiency better and therefore become a higher proportion of the remaining thymocyte population. To determine whether ZIP3 knockout alters the thymocyte profile during zinc deficiency, thymocytes were isolated and sorted by flow cytometry using antibodies against CD4 and CD8 markers. As expected, zinc deficiency resulted in a significant decrease in the percentage of pre-T lymphocytes (CD4+ CD8+) and a concomitant increase in the pro-T cells (CD4 CD8) and the cytolytic and helper T cells (CD4CD8+ and CD4+ CD8, respectively) in wild-type mice (Table 2). This loss of pre-T lymphocytes was significantly accentuated in knockout mice. Under zinc-adequate conditions, thymocyte subpopulation profiles were similar between wild-type and knockout mice, the only difference being a slight decrease in helper T cells (CD4+ CD8) with a concomitant increase in pre-T cells (CD4+ CD8+) in knockout mice relative to wild-type mice.
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TABLE 2. Effect of zinc deficiency on distribution of T-cell subpopulationsa
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Our previous studies of the expression of mouse ZIP3 demonstrated that this mRNA is detectable at very low levels in many adult tissues but is particularly abundant in the testes and less so in the brain and ovaries (14). Information from public databases suggests that ZIP3 is expressed in a wide array of tissues and cell types. The abundance of this mRNA does not appear to be regulated by dietary zinc in mice. Analysis of EGFP fluorescence in the ZIP3 knockout mice was consistent with these findings. Fluorescence was intense in the adult and neonatal gonads but was also strong in the developing neurotube and brain and ubiquitous at low levels throughout the embryo at various stages of development. Remarkably, ZIP3 expression occurs very early during development and was clearly detectable in the inner cell mass at the blastocyst stage before implantation. Despite this, ZIP3 does not appear to exert an essential function during early development. In contrast, two ZIP genes have recently been shown to play an essential role during development in lower eukaryotes. The fear of intimacy gene in Drosophila melanogaster is required for formation of the embryonic gonad and respiratory system (41), and the zebrafish LIV-1 gene is essential for proper gastrulation (49). Both of these genes belong to the LIV-1 subfamily.
Mice lacking the ZIP3 transporter exhibited no obvious phenotypic abnormality under normal growth conditions and were only slightly more susceptible to the effects of dietary zinc deficiency. Although it is possible that the function of ZIP3 was not revealed by the experiments that were performed, a number of different hallmarks of zinc deficiency were measured in both embryos and adults. It is unclear why we did not see a more dramatic effect on neonatal growth in light of the recent findings by Kelleher et al. (29), which suggest that ZIP3 plays a major role in zinc uptake into mammary epithelial cells. This may reflect the limitations associated with the in vitro system used in those studies or a compensatory mechanism in the knockout mice.
The lack of a significant phenotype in these knockout mice may reflect functional redundancy between members of subfamily II of the mouse ZIPs. ZIPs 1, 2, and 3 are strikingly similar in structure (14). Their genes each contain four exons, and the encoded peptides share 41 to 48% amino acid similarity. These similarities suggest that these genes may have arisen from a single gene, and based on this, it could be postulated that they now serve redundant functions. Consistent with this concept, each of these ZIP proteins exhibit similar kinetic parameters of zinc transport. However, ZIP1 mRNA is far more abundant than ZIP2 or ZIP3 mRNAs, and the ZIP1 gene is expressed in essentially every organ and cultured cell that has been examined. Functional redundancy within this family would not be unexpected, given the critical importance of zinc in so many biological processes.
Alternatively, the lack of a strong phenotype seen in ZIP3 knockout mice may reflect functional redundancy between ZIP proteins from different subfamilies. Although ZIP proteins from different subfamilies are divergent, it remains possible that they do perform overlapping functions. It is known that there are at least two zinc uptake transporters that can function to absorb dietary zinc in enterocytes of the small intestine. Mammalian ZIP4, a member of the LIV-1 subfamily, is involved in zinc uptake in enterocytes and embryonic visceral endoderm cells where it responds to changes in zinc levels at both the level of mRNA abundance and subcellular localization (15). Mutations in ZIP4 cause acrodermatitis enteropathica, a rare genetic disorder of zinc uptake in humans. However, dietary zinc supplementation can suppress the symptoms of this disease (5, 7, 33, 37, 43), suggesting the presence of additional zinc transport mechanisms in the intestine. Our studies demonstrated that ZIP1 and ZIP3 are also expressed in the intestine and embryonic visceral endoderm, and results reported herein suggest that ZIP3 plays an ancillary role in dietary zinc absorption.
Loss of ZIP3 function may also be compensated for by other proteins that are involved in zinc homeostasis. It is known that the metallothioneins (MTs), which chelate zinc, as well as zinc exporters (ZnT; SLC30 family), which remove zinc from the cytoplasm, are responsive to zinc status (1). MT-I and -II mRNA and protein abundance correlates directly with zinc levels, and several ZnTs respond to zinc at the level of mRNA abundance and protein subcellular localization. Thus, the ability of these proteins to respond to changes in zinc levels may allow cells to accommodate the loss of zinc uptake that occurs in the absence of ZIP3. Interestingly, deletions in many of these genes cause more severe phenotypes than that seen with ZIP3. Deletion of the MT-I and -II genes renders mice more susceptible to the effects of zinc deficiency (2), whereas overexpression of MT-I dramatically protects mice from these effects (11). Targeted deletion of ZnT1 results in early embryonic lethality in homozygous knockout mice (3). Mice that lack ZnT3 are prone to seizures elicited by kainic acid treatment (8), and homozygous deletion of ZnT5 results in poor growth, osteopenia, low body fat, muscle weakness, and male-specific cardiac death (26). In addition, the naturally occurring lethal milk mouse carries a nonsense mutation in the ZnT4 gene (24). These mice produce zinc-deficient milk and thus cause zinc deficiency in nursing pups. Clearly, each of the above-mentioned genes plays an important physiological role in mammalian zinc homeostasis.
The question remains why deletion of ZIP3 causes only a subtle phenotype while mutation of other genes involved in zinc homeostasis causes more profound effects. Whether functional redundancy between ZIP family members, compensation between different classes of proteins involved in zinc homeostasis, or a combination of these contribute to the lack of overt phenotype seen in ZIP3-deficient mice remains to be determined. Knockout experiments to test for functional redundancy are under way.
We thank Mario Cappechi for the pEGFPKT1loxneo vector and Richard Palmiter for the 4317G9 vector, Alan Godwin and Ken Peterson for technical advice, Bill Justice for help with the flow cytometric analyses, and Gary Lin and Michael Leins for technical assistance. We also thank members of the Transgenic and Gene-Targeting Institutional Facility (TGIF) at the KU Medical Center for the generation of targeted ES cell clones and blastocyst injection.
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