| Literature DB >> 22069448 |
Mahbuba Rahman1, Annie P K Chan, Michelle Tang, Isabella T Tai.
Abstract
<span class="Gene">SPARC, a matricellular protein with <span class="Disease">tumor suppressor properties in certain human cancers, was initially identified in a genome-wide analysis of differentially expressed genes in chemotherapy resistance. Its exciting new role as a potential chemosensitizer arises from its ability to augment the apoptotic cascade, although the exact mechanisms are unclear. This study further examines the mechanism by which SPARC may be promoting apoptosis and identifies a smaller peptide analogue with greater chemosensitizing and tumor-regressing properties than the native protein. We examined the possibility that the apoptosis-enhancing activity of SPARC could reside within one of its three biological domains (N-terminus (NT), the follistatin-like (FS), or extracellular (EC) domains), and identified the N-terminus as the region with its chemosensitizing properties. These results were not only confirmed by studies utilizing stable cell lines overexpressing the different domains of SPARC, but as well, with a synthetic 51-aa peptide spanning the NT-domain. It revealed that the NT-domain induced a significantly greater reduction in cell viability than SPARC, and that it enhanced the apoptotic cascade via its activation of caspase 8. Moreover, in chemotherapy resistant human colon, breast and pancreatic cancer cells, its chemosensitizing properties also depended on its ability to dissociate Bcl2 from caspase 8. These observations translated to clinically significant findings in that, in-vivo, mouse tumor xenografts overexpressing the NT-domain of SPARC had significantly greater sensitivity to chemotherapy and tumor regression, even when compared to the highly-sensitive SPARC-overexpressing tumors. Our results identified an interplay between the NT-domain, Bcl2 and caspase 8 that helps augment apoptosis and as a consequence, a tumor's response to therapy. This NT-domain of SPARC and its 51-aa peptide are highly efficacious in modulating and enhancing apoptosis, thereby conferring greater chemosensitivity to resistant tumors. Our findings provide additional insight into mechanisms involved in chemotherapy resistance and a potential novel therapeutic that specifically targets this devastating phenomenon.Entities:
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Year: 2011 PMID: 22069448 PMCID: PMC3206029 DOI: 10.1371/journal.pone.0026390
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Over-expression of the N-terminus domain of SPARC diminished cell viability and induced apoptosis in colorectal cancer cell lines.
A) The biological domains of SPARC (SP) and sites of mutations introduced within the N-terminus (SP-N), follistatin-like (SP-F), and extracellular (SP-C) domains are represented. B-D) The effect on cell viability following over-expression of SPARC domains were assessed by transient transfection of sensitive (B) and (C) CPT resistant MIP101 cells (MIP/CPT) with plasmid constructs for SP, SP-N, SP-F, SP-C, and empty vector (ZEO) for 48 h, followed by no treatment (gray bars) or treatment (white or red bars) with 100 µM CPT-11, for an additional 24 h. Cell viability was assessed by WST assay. Transfection with the empty vector (ZEO) served as control for all experiments; “No txfn” = untransfected cells. D) Transfection of chemoresistant MIP/5FU cells with different mutations introduced into SP-N (SP-N mut 1 or SP-N mut2) no longer diminished the survival of cells exposed to 1000 µM 5-FU for 24 hrs. E) Cell lines stably transfected with and overexpressing SPARC (MIP/SP), SP-N (MIP/SP-N), SP-F (MIP/SP-F), SP-C (MIP/SP-C), and empty-vector (MIP/ZEO) were treated with 5 µM 5-FU for 24 h. (*) = statistically different (p<0.05) from respective untreated control (B–E) F) Stable MIP101 cells overexpressing SPARC, the different SPARC domains or empty-vector control were assessed for apoptosis by M30 staining: i) Comparison of % M30 positive cells in different cell lines after exposure to 5 µM 5-FU for 24 h, ii) representative images from M30 staining in cells after 5-FU treatment. Results represent mean ± s.e. (n = 3–4 independent studies).
Figure 2N-terminus domain of SPARC activates caspase 8 in response to treatment with 5-FU.
A) Changes in the expression of proteins involved in the apoptotic pathway following incubation with 5-FU at different time points in MIP101 cells stably overexpressing SPARC domains by immunoblotting. B–D) The contribution of caspase 8 or Bid in inducing SP-N-associated apoptosis were compared with various cell lines after transient transfection with caspase 8 and Bid siRNA (or scramble control) for 48 h, followed by no treatment (grey bars) or incubation with 5-FU (white or orange bars) for 24 h. Cell viability after caspase 8 siRNA transfection was assessed by WST assay (B), while apoptosis after caspase 8 (C) or Bid (D) siRNA transfection was assessed by caspase 3/7 assay. Results represent mean ± s.e. (n = 3–4 independent studies). *p<0.05, Student's t-test, in comparison to untreated controls.
Figure 3Xenografts overexpressing SP-N have greater tumor regression and apoptosis in response to 5-FU.
A,B) Comparison of tumor size in xenografts from MIP/SP-N, MIP/SP-F, MIP/SP-C, and MIP/ZEO cells with or without treatment with 5-FU; “+” = 5-FU-treatment; “−” = saline-treatment, (n = 14/group; mean ± s.e). C) Tumor doubling times of xenografts following 5-FU treatment. (D) Percentage of apoptotic cells detected by TUNEL staining [representative images in (E)]. (F) number of CD31-positive stained blood vessels in the tumor xenografts of (▪) saline or (□) 5-FU-treated animals. Student's t-test * p<0.05, ** p<0.01.
Figure 4The site of interaction between SPARC and caspase 8 is at the N-terminus of SPARC.
Co-localization of the N-terminus of SPARC with caspase 8 was determined by co-immunoprecipitation (IP) studies using whole protein extracts. A) Only the recombinant N-terminus containing His-tagged fusion protein from MIP/SP-N cells co-IP with caspase 8 in a reciprocal fashion. B) Mutations in the N-terminus domain of SPARC (SP-Nmut1, SP-Nmut2) abolishes this interaction with caspase 8, and only the wild-type SP-N interacted with caspase 8. As additional controls, neither the wild type nor the mutant FS domain (SP-Fmut1, SP-Fmut2) interacted with caspase 8.
Figure 5SPARC and Bcl2 both interact with caspase 8 with opposing effects.
(A) In resistant MIP/5FU cells, caspase 8 interacts with Bcl2 and this is also observed in other resistant colorectal (RKO/5FU, RKO/CPT, RKO/CIS), pancreatic (MiaPaca/CPT) and breast cancer (MCF/CIS) cell lines (B). The Bcl2-caspase 8 interaction can be eliminated following exposure to rSPARC (100 ng/mL) (denoted as “*”). C) The interaction between Bcl2-caspase 8 occurs at the N-terminus of caspase 8 as cells incubated with antibodies blocking the N-terminus of caspase 8 (N-term, 1.5–3 µg) prevented this Bcl2-caspase 8 interaction. D) Bcl2-caspase 8 interaction is abolished after exposure to 100 ng/mL rSPARC in resistant MIP/5FU and MiaPaca/CPT cells. (E) Chemoresistant MIP/5FU cells transfected with Bcl2 siRNA to reduce Bcl2 expression are now responsive to 1000 µM 5-FU (+), especially in combination with incremental concentrations of rSPARC (20–100 ng/ml). Results represent mean ± s.e. (n = 3 independent studies). Student's t-test, statistically significant when p<0.05.
Figure 6Augmentation of apoptosis by peptide-NT.
Sensitive MIP101 or RKO and 5-FU resistant MIP/5FU and RKO/5FU cells were incubated with peptide-NT 100 ng/ml +/− 5-FU 5 µM for 24 hrs and assayed for (A) caspase 3/7 levels, or (B) cell viability by MTT assays. (C) Immunoblots showing the ability of peptide-NT to interfere with the interaction between caspase 8 and Bcl2: MIP/5FU cells were incubated with peptide-NT or scramble control peptides 1 or 2 for 24 hrs; cell pellets were collected 24 hrs later for co-immunoprecipitation studies.
Figure 7The DEDI-domain of caspase 8 is critical for its interaction with Bcl2.
Vectors containing mutations in specific domains (DEDI, putative binding(PB), DEDII) of caspase 8 were transiently transfected into (A) MIP/5FU, MiaPaca/CPT or (B) MIP/SP cells, to determine the ability of the mutant proteins to co-IP with Bcl2 or SPARC. C) Basal levels of caspase 8 gene expression between various cancer cell lines. D–F) The effect of SPARC on cell viability (D, E) or apoptosis (F) in cells overexpressing mutant forms of caspase 8 was assessed. Cells were transiently transfected with wild-type caspase 8 (Csp8), mutants (DEDIm, PBm, and DEDIIm), or empty-vector (EV, control) for 48 h, followed by exposure to 100 ng/mL rSPARC for 48 h, and treated with 0 (▪) or 500 µM (□)5-FU for an additional 24 h. D–E) In resistant cells, exposure to rSPARC and 5-FU resulted in decreased cell viability following transfection with EV-control: MIP/5FU: 90.14±2.80 (SPARC) vs. 69.89±4.64% (SPARC+5-FU) (p<0.005); MiaPaca/CPT: 108.77±6.85 (SPARC) vs. 73.98±4.46% (SPARC+5-FU) (p<0.005). Over-expression of wild-type caspase 8 in resistant cells further decreased cell viability following exposure to rSPARC and 5-FU, in comparison to EV-controls: MIP/5FU: 69.89±4.64 (SPARC + 5-FU) vs. 59.21±3.66% (SPARC + 5-FU + caspase 8) (p = 0.03); MiaPaca/CPT: 73.98±4.46 (SPARC + 5-FU) vs. 46.78±2.01% (SPARC + 5-FU + caspase 8) (p<0.005). However, over-expression of mutant forms of caspase 8 abolished the reduction in cell viability seen in the presence of rSPARC. Results represent mean ± s.e. (n = 3 independent studies). *p<0.05, Student's t-test.
Figure 8Interaction between the N-terminus of both caspase 8 and SPARC are required to reduce cell viability and enhance apoptosis.
A–B) Cell viability further decreased in MIP/SP and MIP/SP-N after transfection with wild-type caspase 8 and 5-FU treatment, relative to empty vector (EV, control): MIP/SP: 77.2±3.8 (EV) vs. 59.1±1.5% (caspase 8) (p<0.005); MIP/SP-N: 68.8±4.8 (EV) vs. 50.6±3.6% (caspase 8) (p = 0.04). Transfection with any of the caspase 8 mutants eliminated their response to 5-FU, not only in terms of cell viability, but apoptosis (C). In cells overexpressing mutant SP-N (MIP/SP-Nmut1), transfection with caspase 8 was incapable of decreasing cell viability (D) or increasing apoptosis (E). Results represent mean ± s.e. (n = 3 independent studies). *p<0.05, Student's t-test. F) Bcl2 expression of clinical specimens of human CRCs obtained from the same individual following primary tumor resection (chemotherapy-naïve) and disease recurrence post-chemotherapy (chemotherapy-resistant) (paraffin-embedded 6 µM sections).
Figure 9A model: SPARC-mediated apoptosis.
A schematic of SPARC and Bcl2 interacting with caspase 8 to influence apoptosis. In this study, we demonstrate that in an environment low in SPARC, Bcl2 interacts with caspase 8 to inhibit apoptosis. However, in the presence of SPARC or its N-terminus, these proteins interact with caspase 8 to inhibit its interaction with Bcl2, leading to an augmentation of the apoptotic cascade.