
Insulin-like growth factor (IGF) bioavailability is modulated by a family of six IGF binding proteins (IGFBPs) that binds IGF with affinities similar to that of the type 1 IGF receptor. Proteolytic degradation of IGFBP-3, the major serum IGFBP, was first reported in pregnancy serum and suggested to be an additional mechanism involved in the regulation of IGF bioavailability. In this paper, the presence of serum IGFBP-3 proteolysis and its potential role in the regulation of IGF bioavailability is discussed partly in view of our recent finding of IGFBP-3 proteolysis by the tissue plasminogen activator (tPA)-plasminogen-plasmin system in human serum.
Identification of sites of expression of IGF, IGF receptors and IGFBPs in the olfactory bulb of the rat brain suggested the presence of a paracrine IGF system. Since cell association of IGFBPs has been suggested as an important factor in their modulation of IGF action, we investigated whether IGFBPs are cell associated in olfactory bulb (OB). This was supported by des(1-3)IGF-I only partially competing for [125I] IGF-I binding to rat OB membrane, suggesting the presence of a cell associated IGFBP. Affinity cross-linking of [125I]IGF-I to rat OB membrane demonstrated a 39-kDa complex which was reduced by IGF-I and IGF-II, but not by des(1-3)IGF-I or insulin. Western ligand blotting of solubilised membrane showed a 38-kDa IGFBP which was immunoprecipitated by anti-IGFBP-2 antiserum but not by anti-IGFBP-5 antiserum. We conclude that in the rat IGFBP-2 is associated with membranes from OB. Whether the cell membrane association is due to integrin binding via its RGD sequence or glycosaminoglycan binding is currently under investigation. Cell associated IGFBP-2 may modulate IGF action in the neonatal rat OB.
Limited proteolysis of insulin-like growth factor binding protein-3 (IGFBP-3) is now recognized as a normal process in the regulation of insulin-like growth factor (IGF) activity, its major effect being to increase IGF bioavialability. In order to characterize the proteolytic fragments of IGFBP-3, we reproduced this proteolysis in vitro using plasmin which provokes cleavages that are similar to those induced in vivo by (unidentified) specific IGFBP-3 proteases. Two major peaks were purified by RP-HPLC. One contained a 16 kDa fragment and the other comprised two fragments of 22 and 25 kDa. Competitive binding experiments showed that the 16 kDa material had no affinity for IGFs. The 22-25 kDa fragments had considerably reduced affinity, particularly for IGF-I. In a chick embryo fibroblast assay where DNA synthesis was stimulated by IGF-I or insulin, the 22-25 kDa fragments weakly inhibited IGF-I-induced cell proliferation and had no effect on stimulation by insulin. The 16 kDa fragment unexpectedly proved to be a potent inhibitor of both IGF- and insulin-induced cell growth. This proteolytic fragment of IGFBP-3 therefore exhibits intrinsic inhibitory activity.
Affinity-purified lysosomal protease cathepsin D cleaved recombinant human IGFBP-1 to -5 in fragments of defined sizes, while IGFBP-6 was not degraded. To assess the role of cathepsin D for proteolytic processing of IGFBP in vivo, serum from cathepsin D-deficient mice and conditioned media from cathepsin D-deficient fibroblasts and organ explants were analyzed. No differences for the pattern and level of IGFBPs were detected. When conditioned media from fibroblasts were incubated at acid pH, proteolysis of IGFBP-1 and -4 was observed only in media derived from cathepsin D-expressing cells. Additional experiments showed that the proteolysis of IGFBP-4 is mediated by cathepsin D and not by a protease activated by cathepsin D. The IGFBP-4 degrading activities in media from organ explants from cathepsin D-deficient mice were found to be sensitive to inhibitors of aspartyl and cysteine proteases. The data indicate that different classes of acid pH-dependent proteases can contribute to the regulation of IGFBP-4 abundance.
Growth factor induction is a major component of the response to central nervous system trauma. The insulin-like growth factors (IGFs) and IGF binding proteins (IGFBPs) are among the molecules induced by injury that have demonstrated neuroprotective actions. Induction of IGFBPs 2, 3, 4 and 5 have been documented following injury and are hypothesized to function in transport or localization of the IGFs to injured cells. It is unclear what factors lead to induction of these molecules following trauma, however, several cytokines including ciliary neurotrophic factor (CNTF) and interleukin-1 beta (IL-1 beta) have been described as major injury signals and can induce aspects of reactive gliosis. To establish whether these cytokines also are responsible for inducing the IGFBPs following CNS injury, we injected CNTF or IL-1 beta intracerebrally into the neocortex of adult rats and measured changes in mRNA expression for the IGFBPs. IGFBP-2 mRNA showed a dramatic increase by 24-48 h following either CNTF or IL-1 beta injection as compared with the contralateral side injected with heat-inactivated cytokine. Neither CNTF nor IL-1 beta caused alterations in BP3 or BP5. Levels of BP4 and BP6 mRNAs also were unchanged following CNTF injection. These results suggest that IGFBP2 is uniquely regulated among the IGFBPs in the CNS and is induced by cytokines that signal CNS injury.
Maternal undernutrition inhibits fetal growth and alters circulating levels of insulin-like growth factors (IGFs) and IGF binding proteins (IGFBPs). This study investigates whether the fetal IGF axis could be reprogrammed by maternal undernutrition and hence be a potential contributing factor to changes in fetal and postnatal metabolism. Ewes were either fed ad lib. or undernourished from day −60 to day 30 of gestation, and then both groups were fed ad lib. These groups were further divided at day 105, either being fed ad lib or undernourished until day 115. Fetal blood samples were obtained at day 105 and day 115. IGFBP-1 and IGFBP-3 levels were lower at day 105 in the periconceptually undernourished fetuses. Levels of IGFBP-1 were increased and IGFBP-3, IGFBP-4, IGF-1, glucose and insulin were reduced at day 115 after undernutrition. The degree of change in IGFBP-1, IGFBP-3 and IGF-I between day 105 and day 115 was greater in fetuses receiving low periconceptual nutrition. These results indicate that periconceptual undernutrition is able to reprogramme the fetal IGF axis such that the responses of IGF-I and the IGFBPs to undernutrition in late gestation are markedly altered.
A number of lines of evidence suggest that IGFs are important mitogens in human breast cancer: (1) IGFs are the most potent growth factor in human breast cancer cells; (2) estrogen stimulates expression of IGF-II and the type 1 IGF receptor; and (3) stromal cells express IGFs, which may act in a paracrine manner. Numerous studies have demonstrated that IGFBPs modulate the mitogenic effects of IGFs in the local environment. In particular, we have recently demonstrated that IGFBP-3 inhibits the growth of Hs578T and MDA-MB-231 human breast cancer cells in an IGF-independent manner. Further studies revealed the existence of cell surface-associated IGFBP-3 receptors. Receptor binding and the subsequent antiproliferative action of IGFBP-3 was inhibited by IGFs, owing to the formation of an IGF-IGFBP-3 complex that prevents the binding of IGFBP-3 to its receptors. In addition, exogeneously added soluble heparin or heparan sulfate inhibited the binding of IGFBP-3 to the cell surface in a dose-dependent manner. However, when heparin and heparan sulfate linkages of glycosaminoglycans on the cell surface were enzymatically remove, IGFBP-3 binding was only minimally affected. These data suggest that soluble heparin or heparan sulfate forms a complex with IGFBP-3, thereby inhibiting receptor binding of IGFBP-3, rather than competing with cell-surface glycosaminoglycans for binding of IGFBP-3. Additionally, the role of IGFBP-3 in the antiproliferative effects of transforming growth factor (TGF)-beta and retinoic acid (RA) is supported by our observations that: (1) inhibition of IGFBP-3 gene expression using an IGFNBP-3 antisense oligodeoxynucleotide not only blocks TGF-beta and RA simulation of IGFBP-3 production by up to 90%m but also inhibits their antiproliferative effects by 40-60%; and (2) treatment with IGF-II and IGF-II analogs diminish TGF-beta effects by blocking TGF-beta induced binding of IGFBP-3 to the cell surface. Taken together, our results support the hypothesis that IGFBP-3 is an important antiproliferative factor in human breast cancer, acting in an IGF-independent manner in addition to its ability to modulate the binding of IGF peptides to IGF receptors.
The acid-labile subunit (ALS) of the ternary insulin-like growth factor binding protein (IGFBP) complex has a central role in regulating the bioavailability of circulating IGF. We have shown that gene expression of ALS in vivo and in vitro is regulated by a variety of factors, including growth hormone (GH). Our aim was to isolate and characterise the ALS gene as a step in defining the mechanism of its regulation. Southern analysis of rat genomic DNA suggests that the ALS gene exists as a single copy in the rat genome. In order to isolate this gene we screened 5 x 10(5) clones and selected fragments of two genomic clones were sequenced. Comparison of this sequence with the cDNA identified two exons and a single approximately 1.1 kb intron. Primer extension experiments suggest two major transcription initiation sites at -539 and -396 nts relative to the translational initiation codon, although there are no consensus TATA-boxes in this region. Analysis of 2.3 kb of 5' flanking sequence identified two LF-A1 sites which may confer the liver-specific expression of the ALS gene. In addition, there are several elements that may be involved in regulation by growth hormone and cytokines.
Osteoporosis develops because of an age-dependent imbalance between the rates of bone formation and bone resorption (i.e. bone formation rate is inadequate compared with bone resorption rate to maintain bone volume). With regard to the mechanism for the deficiency in bone formation, we propose that age-associated changes in the IGF system components contribute to an age-related decrease in the skeletal capacity for osteoblast cell proliferation. As a means of testing this hypothesis, we have measured serum levels of IGFBP-4 and IGFBP-5 since our studies have shown that the mitogenic actions of IGFs in bone cells are modulated by inhibitory IGFBP-4 and stimulatory IGFBP-5. By using newly developed and validated radioimmunoassays for measurement of IGFBP-4 and IGFBP-5, we found that the circulating level of IGFBP-4 increases with age while that of IGFBP-5 declines with age. In subjects from 23–87 years, serum IGFBP-4 concentrations showed a significant positive correlation with serum PTH while serum IGFBP-5 concentrations showed a significant positive correlation with IGF-I. These age-related changes in the serum levels of IGF system components are consistent with our previous findings of age-related decreases in the femoral cortical contents of IGF-I, IGF-II and IGFBP-5. Although the biological implications of the sequestration of IGFs in bone unknown, we have hypothesized that the level of the IGFs in bone is a reflection of their integrated local secretion by osteoblasts. Based on our data, we now propose a model in which (a) underproduction of the stimulatory components and overproduction of an inhibitory component of the IGF system occur as a consequence of aging, and (b) these changes lead to an age-related decrease in the local (autocrine/paracrine) as well as the hormonal (endocrine) actions of the IGFs, which in aggregate could contribute to the decrease in osteoblast proliferation and the deficiency in bone formation. In conclusion, although our findings provide indirect evidence that age associated changes in IGF system components could lead to a deficit in bone formation, further studies are needed to demonstrate a cause and effect relationship between changes in bone cell production of IGF system components and the age-related uncoupling of bone formation from resorption.
The mouse ALS gene spans at least 6 kb. It contains 2 exons which encode a protein highly homologous to human and rat ALS. It was localized to mouse chromosome 17 by flourescent in situ hybridization. The 5' flanking region lacks a TATA box but contains GC boxes that may be recognised by transcription factors such as Spl. Hepatic ALS mRNA is decreased in rats following hypophysectomy, and restored by stimulated ALS promoter activity in a rat hepatoma cell line, but not in 3T3-F442A mouse preadipocyte fibroblasts, suggesting that utilisation of the ALS promoter is cell-type specific. The rat hepatoma system is a promising system to study the regulation of ALS gene expression, and the signalling pathways of CH regulation.
Three hemizygous transgenic (Tg) mouse lines were generated with a fusion gene composed of the mouse metallothionein promoter (mMT-1) and a full length human insulin-like growth factor binding protein-1 (hIGFBP-1) cDNA that was truncated in its 3' untranslated (3'UT) region. The transgene was ectopically expressed in the brain of each line and resulted in postnatal brain-growth retardation that was manifested by 2 weeks of age. Despite the expression of the transgene in multiple other tissues and high serum hIGFBP-1 concentrations in two of the three lines, studies designed to detect alterations in somatic growth, in reproduction and in glucose metabolism revealed few other abnormalities. Unexpectedly, however, we found that the regulation of the transgene shared characteristics with that of the native gene, despite the fact that it lacked the endogenous gene's 5' regulatory region, as well as most of its 3' UT region. Our studies suggest that factors controlling mRNA stability are important to regulation of both the native and transgene, and that an AU-rich element 17 base pairs (bp) from the end of coding sequence is responsible for the instability of the transgene and in part for instability of the endogenous gene.
To provide further insight into the function of the IGFBPs, transgenic (Tg) mice which overexpressed IGFBP-1 and IGFBP-3 were generated. In this report we have compared the phenotypic manifestations observed in these Tg mice. The IGFBP-1 Tg mice were significantly smaller at birth, birth weight and gained less weight in the postnatal period. Organ weight was proportionately reduced relative to body weight in most organs. However the brain was markedly smaller in IGFBP-1 Tg mice. Mean plasma levels of Tg-derived IGFBP-1 ranged from 8 to 80 ng ml−1 in the different groups of IGFBP-1 Tg mice. In addition homozygous mice also demonstrated fasting hyperglycemia, impaired glucose tolerance and reduced fecundity. Two of the seven IGFBP-3 founders had measurable levels of hlGFBP-3 in the circulation and were bred to homozygosity. Maximal plasma levels of transgene-derived IGFBP-3 were 72–198 ng ml−1. Transgene expression was detected in the kidney, small intestine and colon by Northern blot analysis. The birth weight, litter size and body weight of IGFBP-3 Tg mice were not significantly different from wild-type mice. However, the spleen, liver and heart of IGFBP-3 Tg mice derived from both founders were significantly heavier compared with organs from wild-type mice. The relative weight of other organs such as the brain, kidney and lungs were similar to wild-type mice. From these data, we conclude that over expression of IGFBP-1 results in inhibition of IGF action and in profound impairment of brain development, modest inhibition of fetal and postnatal growth and inhibition of the metabolic effects of the IGFs. In contrast, modest overexpression of hlGFBP-3 has little effect other than some selective organomegaly.
In normal subjects, the major form of circulating IGF is the GH-dependent 150 K complex. As demonstrated by gel-permeation chromatography, the acid-labile subunit (ALS) purified from human serum, incubated for 2 h at 20°C with [125I]IGF-I and rIGFBP-3, is able to increase not only the molecular weight (mol. wt.) of the IGF-IGFBP-3 complex, but also the amount of IGF-I bound. In both charcoal and polyethylene glycol ligand binding assays, competitive binding curves for the displacement of [125I]IGF-I from rIGFBP-3 by increasing concentrations of unlabeled IGF-I showed an increased binding activity of rIGFBP-3 in the presence of ALS. The effect of ALS on rIGFBP-3 binding activity was dose dependent. In addition, ligand and immunoblot revealed that ALS and rIGFBP-3 are able to form a high mol. wt. complex in the absence of IGF peptide. On the basis of these data, ALS seems to have a more complex function than that of simply increasing the mol. wt of the IGF-IGFBP-3 complex.
Endogenous IGFBP-3 has been examined in the circulation and in four different extravascular fluids in normal healthy adults and in patients with psoriasis or arthritis. In all of these cases there was no apparent increase of IGFBP-3 protease activity in the circulation. In contrast, endogenous IGFBP-3 from normal skin interstititial fluid and synovial fluid from healthy adults was found to be predominantly in the 29 kDa proteolytically modified form. This indicated that in these extravascular fluids in normal healthy adults a protease was active which was similar, if not identical, to that found in the circulation in pregnancy and other conditions. This was confirmed by the fragmentation of recombinant IGFBP-3 when incubated with these fluids. When the skin interstitial fluid or synovial fluid were taken from abnormal tissues (psoriasis in the former and osteoarthritis or rheumatoid arthritis in the latter) there was a considerable reduction in the amount of endogenous IGFBP-3 in the 'clipped' form and a reduction in the protease activity. In psoriatic lesions, this reduction in IGFBP-3 protease activity was shown to be due to the presence of an inhibitor in the interstitial fluid but not in the circulation. In both peritoneal and follicular fluid, the ratio of intact to fragmented IGFBP-3 appeared to relate to the oestrogen status. In peritoneal fluid there was a decrease in intact IGFBP-3 during the late proliferative/early secretory phase of the endometrial cycle. In the ovary there was an increase in the amount of fragmented IGFBP-3 in the follicular fluid from the dominant follicle in comparison with atretic follicles from the same ovary. There is normally little proteo-lysis of IGFBP-3 in the circulation but this increases in many conditions where there is increased metabolic activity. The same enzyme(s) appear to be active in many extravascular fluids but under very different regulation. The activity in these extravascular fluids is normally high but can be decreased with local tissue inflammation; this decrease appears to be mediated by the induction of a local inhibitor.
There are three potential N-glycosylation sites (Asn-X-Ser/Thr) located in the non-conserved central region of the human IGFBP-3 sequence (Asn89, Asn109, Asn172—sites 1, 2 and 3, respectively). Upon ligand blotting with IGFs, IGFBP-3 appears as two bands (40–45 kDa) representing different glycosylated forms. We have mutated the N-glycosylation sites in permutations of three single, three double and one triple mutations and expressed these variant cDNAs. Each mutant protein was detected by radioimmunoassay, indicating that glycosylation is not required for the secretion of the protein from CHO cells. Ligand blotting using [125I]IGF-I indicated that all seven mutants retained IGF-I binding. Based on the molecular weights of the variant proteins, there are approximately 4, 5 and 6 kDa of carbohydrate on sites 1, 2 and 3, respectively. Furthermore, the two forms of IGFBP-3 represent the protein glycosylated either at all three sites or at Asn89 and Asn109 only. There appears to be no difference between the mutants and the fully-glycosylated rhIGFBP-3 in their acid-labile subunit (ALS) binding. Analysis of variance confirmed that the association constant for ALS was not significantly changed by any mutation [Ka (fully-glycosylated) = 12.5 ± 4.1 nM−1; mean Ka (all mutants) = 22.1 ± 3.0 nM−1]. While glycosylation does not appear to play a role in IGFBP-3 ligand binding, it may affect the turnover rate of the protein or be involved in rendering the protein resistant to proteolysis.
To delinate regions of IGFBP-3 involved in ligand and cell-surface binding, DNAs encoding human IGFBP-3[1–264] and several variants were transfected into CHO cells. Of three deletion (Δ) mutants, IGFBP-3[1–88], [1–184], and [Δ89–184], none bound IGF-I tracer by ligand blotting, although all were detectable by immunoblotting. No ALS binding was detectable, as predicted by the lack of IGF binding. Normal-sequence IGFBP-3 associated with the CHO cells and was partly displaceable by IGF-I. Whereas IGFBP-3[1–88] and [1–184] failed to cell-associate, the non-IGF-binding central deletion variant [Δ89–184] did associate with CHO cells but was not displaced by IGF-I. To further examine the role of the carboxy-terminal domain in cell-association, the basic sequence IGFBP-3[228–232] (KGRKR) was altered to the corresponding IGFBP-1 residues MDGEA, a major charge reversal. This variant showed reduced IGF-I binding, and bound ALS with decreased affinity as determined by Scatchard analysis. It showed no cell binding, implicating the basic domain in cell-association. We conclude that, whereas the central and carboxy-terminal domain deletions fail to bind IGF-I, the ability to cell associate requires the carboxy-terminal but not the central domain. Specifically, the basic region [228–232] is essential for cell binding, and also affects IGF-I binding, and independently, ALS affinity.
In mammals IGF-I is part of a 150-kDa binding protein complex, which also contains a glycosylated acid-labile protein (ALS) and a glycosylated acid-stable IGF binding subunit IGFBP-3. Administration of free IGF-I in vivo induces not only acute insulin-like effects but also growth stimulation. Since co-injection with IGFBP-3 only partially blocked the hypoglycemic response of free IGF-I in hypophysectomized rats, we were interested in the growth stimulating activity of the IGFI-IGFBP-3 complex in pituitary-deficient mice compared to that obtained by IGF-I alone. Therefore, the effects of subcutaneously administered IGF-I, IGFBP-3 and the IGF-I-IGFBP-3 complex on somatic growth and organ growth of pituitary-deficient Snell dwarf mice were studied after 4 weeks of treatment. Treatment with IGF-I alone induced a significant increase in body length and weight, as well as in weights of the submandibular salivary glands, kidneys and quadriceps femoris muscles as compared to buffer treated controls. No significant changes were found in liver, brain, heart and thymus. IGFBP-3 alone had no effect. However, the stimulating effects of IGF-I alone on body length and weight, as well as on the weight of the kidneys, were fully neutralized by co-injection with IGFBP-3. In contrast, the weights of submandibular salivary glands and m. quadriceps femoris were increased by treatment with the complex compared to controls and not significantly different from animals treated with IGF-I alone. Our data show that in GH-deficient mice administration of IGFBP-3 differentially inhibits the IGF-I induced body and organ growth. This calls for extra vigilance when exploring presumed advantages of administering an IGF-I-IGFBP-3 complex to GH-deficient individuals in order to obtain stimulation of growth.
An insulin response element (IRE) has been identified approximately 100 base pairs (bp) 5' to the transcription start site of the human insulin-like growth factor binding protein-1 (hIGFBP-1) gene. This cis element appears crucial to the multihormonal regulation of hIGFBP-1 expression in liver, since (i) an intact IRE is required for maximal stimulation of hIGFBP-1 promoter activity by dexamethasone, and (ii) the IRE confers insulin inhibition of both basal and dexamethasone-stimulated hIGFBP-1 promoter activity. Further progress in understanding how the IRE confers insulin and glucocorticoid effects requires identification of transcription factors confering effects of these hormones. D-site binding protein (DBP), and members of the hepatic nuclear factor 3 (HNF 3) and high mobility group I/Y (HMG I/Y) protein families, each known to bind DNA elements similar in sequence to the IRE, were tested for IRE binding. DBP, HMGI and HNF 3 beta each protected the hIGFBP-1 IRE from DNAseI digestion. Additional studies are required to establish whether binding of any of these proteins to the IRE is important to the regulation of hIGFBP-1 expression by insulin and/or glucocorticoids.
In the circulation, most of the IGFs are bound to a high molecular weight binding protein complex of 150 kDa that consists of IGF-I (or IGF-II), IGFBP-3 and the acid-labile subunit (ALS). Within rat liver, individual components of the 150 kDa complex are synthesized in different cellular compartments. ALS expression is localized in hepatocytes, but not in non-parenchymal cells. IGFBP-3 mRNA, however, is exclusively expressed in non-parenchymal and among them in endothelial and Kupffer cells. Co-cultures of hepatocytes and Kupffer cells were used as a model to study the hormonal regulation of biosynthesis of the components of the 150 kDa complex. Although expressed in different liver cell populations IGFBP-3 and ALS were regulated synergistically. Insulin stimulated both the expression of ALS and IGFBP-3 in co-cultures in a dose-dependent manner, while expression of IGFBP-I was decreased. Regulation of IGFBP-3 synthesis of Kupffer cells required a mediator that is secreted by hepatocytes, since IGFBP-3 expression in cultures of pure Kupffer cells did not respond to the stimulating effect of insulin.