Accumulating evidence has suggested that cancer progression and therapeutic response depend on both tumor epithelium (EPI) and tumor microenvironment (TME). However, the dependency of clinical outcomes on the tumor EPI vs. the TME has neither been clearly defined nor quantified. We classified 2373 colorectal cancer (CRC) tumors into the consensus molecular subtypes (CMS1-4) and generated the 10-gene TMES and the 10-gene EPIS signatures as the serendipitous derivatives of the most (positively vs. negatively) correlated genes of a highly-prognostic, 500-gene signature we previously identified. Distinct TME vs. EPI cellular features of the signature genes were identified by CIBERSORT deconvolution and validated by scRNASEQ in an independent public dataset. The TMES signature was strongly associated with the immune/stromal TME-rich CMS1/CMS4 subtypes that portended worse survival, whereas the EPIS signature was predominantly related to the TME-poor, epithelial CMS2/CMS3 classes that portended better survival. Multivariable Cox regression analysis against 29 TME-related signatures revealed that the TMES signature was the most strikingly impacted by the “Cancer-associated fibroblasts” signature (HR: 10.87 vs. 0.13, both P < 0.0001). Moreover, the TMES score was strongly correlated with EMT, SRC activation and MEK inhibitor resistance in 2373 CRC tumors (Spearman r = 0.727, 0.802, 0.824, respectively), which was validated in two independent CRC datasets (n = 626 and n = 566). By contrast, the EPIS score was the dominant force in associating with longer progression free survival in cetuximab-treated metastatic CRC patients derived from two independent clinical trials (Logrank trend P = 0.0005/n = 80; P = 0.0013/n = 44). This finding was further validated in a large real-world clinico-genomics dataset with EGFR inhibitor therapy, which demonstrated that higher EPIS scores were associated with increased overall survival (EGFRi, Logrank trend P < 0.0001/n = 2343) and time on treatment (cetuximab, P = 0.003/n = 953; panitumumab, P < 0.0001/n = 1307). Here we identified a pair of new, distinct 10-gene signatures (the EPIS vs. the TMES) capable of distinguishing the cellular contribution of the tumor EPI vs. the TME in determining CRC prognosis and therapeutic outcomes. With targeted approaches emerging to address both tumor epithelial cells and the TME, the EPIS vs. TMES signature scores may have a novel biomarker role to permit optimization of CRC therapy by identifying sensitive vs. resistant subpopulations.
Background Over a century ago, Virchow proposed that cancer represents a chronically inflamed, poorly healing wound. Normal wound healing is represented by a transitory phase of inflammation, followed by a pro-resolution phase, with prostaglandin (PGE2/PGD2)-induced 'lipid class switching' producing inflammation-quenching lipoxins (LXA4, LXB4).Objective We explored if lipid dysregulation in colorectal cancers (CRCs) is driven by a failure to resolve inflammation.Design We performed liquid chromatography and tandem mass spectrometry (LC-MS/MS) untargeted analysis of 40 human CRC and normal paired samples and targeted, quantitative analysis of 81 human CRC and normal paired samples. We integrated analysis of lipidomics, quantitative reverse transcription-PCR, large scale gene expression, and spatial transcriptomics with public scRNASEQ data to characterize pattern, expression and cellular localisation of genes that produce and modify lipid mediators.Results Targeted, quantitative LC-MS/MS demonstrated a marked imbalance of pro-inflammatory mediators, with a dearth of resolving lipid mediators. In tumours, we observed prominent over-expression of arachidonic acid derivatives, the genes encoding their synthetic enzymes and receptors, but poor expression of genes producing pro-resolving synthetic enzymes and resultant lipoxins (LXA4, LXB4) and associated receptors. These results indicate that CRC is the product of defective lipid class switching likely related to inadequate or ineffective levels of PGE2/PGD2.Conclusion We show that the lipidomic profile of CRC tumours exhibits a distinct pro-inflammatory bias with a deficiency of endogenous resolving mediators secondary to defective lipid class switching. These observations pave the way for 'resolution medicine', a novel therapeutic approach for inducing or providing resolvins to mitigate the chronic inflammation driving cancer growth and progression.
Abstract Accumulating evidence has suggested that cancer progression and therapeutic response may depend on not only tumor cells but also their tumor microenvironment (TME). However, their contributory roles are complex and not well understood. Here we report an analysis of 2373 human colorectal cancer (CRC) tumors representing all stages, leading to identification of a 20-gene signature capable of quantifying the cellular contribution of the tumor vs. the TME in determining colorectal cancer prognosis and therapeutic outcome. We classified these tumors into the consensus molecular subtypes (CMS1-4) with distinct, variable TME cellular features defined by CIBERSORT deconvolution analysis of bulk gene expression data. Surprisingly, all the 10 positive signature genes (portending worse survival) were strongly correlated with the TME-rich CMS1 and CMS4 tumors. By contrast, all the 10 negative signature genes (portending better survival) were highly related to the TME-poor CMS2 and CMS3 tumors. A single cell expression analysis from an independent database further revealed that strikingly, all the 10 positive genes were principally expressed by the immune/stromal TME whereas all the 10 negative genes were predominantly expressed in epithelial tumor cells. These data suggest that the TME has an equally important role as do tumor cells in determining CRC prognosis and support targeting the TME to improve survival. Moreover, distinct gene expression from tumor cells versus the TME also showed a differential impact on therapeutic outcome. Retrospective analyses on two independent clinical trial datasets show that the 20-gene signature score significantly predicted progression free survival in metastatic CRC patients treated with cetuximab, an FDA-approved EGFR inhibitor therapy. These data suggest a potential for the 20-gene signature as a predictive biomarker to identify “sensitive” versus “resistant” subpopulations of CRC patients to improve outcome of EGFR-targeted therapy. Citation Format: Mingli Yang, Timothy J. Yeatman, Michael V. Nebozhyn, Michael J. Schell, Lance Pflieger, Andrey Loboda, Warren J. Pledger, Ramani Soundararajan, Michelle Maurin, Heiman Wang, Jetsen Rodriguez Silva, Ashley Alden. Gene expression signature quantifies the cellular contribution of the tumor vs. the microenvironment in determining colorectal cancer prognosis and therapeutic outcome [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 6430.
Supplementary Methods and Materials from Protein Kinase Cε Is Overexpressed in Primary Human Non–Small Cell Lung Cancers and Functionally Required for Proliferation of Non–Small Cell Lung Cancer Cells in a p21/Cip1-Dependent Manner
Supplementary Figure 1 from Protein Kinase Cε Is Overexpressed in Primary Human Non–Small Cell Lung Cancers and Functionally Required for Proliferation of Non–Small Cell Lung Cancer Cells in a p21/Cip1-Dependent Manner
Abstract Background Over half of colorectal cancers (CRCs) are hard-wired to RAS/RAF/MEK/ERK pathway oncogenic signaling. However, the promise of targeted therapeutic inhibitors, has been tempered by disappointing clinical activity, likely due to complex resistance mechanisms that are not well understood. This study aims to investigate MEK inhibitor-associated resistance signaling and identify subpopulation(s) of CRC patients who may be sensitive to biomarker-driven drug combination(s). Methods We classified 2250 primary and metastatic human CRC tumors by consensus molecular subtypes (CMS). For each tumor, we generated multiple gene expression signature scores measuring MEK pathway activation, MEKi “bypass” resistance, SRC activation, dasatinib sensitivity, EMT, PC1, Hu-Lgr5-ISC, Hu-EphB2-ISC, Hu-Late TA, Hu-Proliferation, and WNT activity. We carried out correlation, survival and other bioinformatic analyses. Validation analyses were performed in two independent publicly available CRC tumor datasets (n = 585 and n = 677) and a CRC cell line dataset (n = 154). Results Here we report a central role of SRC in mediating “bypass”-resistance to MEK inhibition (MEKi), primarily in cancer stem cells (CSCs). Our integrated and comprehensive gene expression signature analyses in 2250 CRC tumors reveal that MEKi-resistance is strikingly-correlated with SRC activation (Spearman P < 10–320), which is similarly associated with EMT (epithelial to mesenchymal transition), regional metastasis and disease recurrence with poor prognosis. Deeper analysis shows that both MEKi-resistance and SRC activation are preferentially associated with a mesenchymal CSC phenotype. This association is validated in additional independent CRC tumor and cell lines datasets. The CMS classification analysis demonstrates the strikingly-distinct associations of CMS1-4 subtypes with the MEKi-resistance and SRC activation. Importantly, MEKi + SRCi sensitivities are predicted to occur predominantly in the KRAS mutant, mesenchymal CSC-like CMS4 CRCs. Conclusions Large human tumor gene expression datasets representing CRC heterogeneity can provide deep biological insights heretofore not possible with cell line models, suggesting novel repurposed drug combinations. We identified SRC as a common targetable node–-an Achilles’ heel–-in MEKi-targeted therapy-associated resistance in mesenchymal stem-like CRCs, which may help development of a biomarker-driven drug combination (MEKi + SRCi) to treat problematic subpopulations of CRC.
Colorectal cancer (CRC) is the second leading cause of cancer death in the United States. The RAS pathway is activated in more than 55% of CRC and has been targeted for therapeutic intervention with MEK inhibitors. Unfortunately, many patients have de novo resistance, or can develop resistance to this new class of drugs. We have hypothesized that much of this resistance may pass through SRC as a common signal transduction node, and that inhibition of SRC may suppress MEK inhibition resistance mechanisms. CRC tumors of the Consensus Molecular Subtype (CMS) 4, enriched in stem cells, are difficult to successfully treat and have been suggested to evade traditional chemotherapy agents through resistance mechanisms. Here, we evaluate targeting two pathways simultaneously to produce an effective treatment by overcoming resistance. We show that combining Trametinib (MEKi) with Dasatinib (SRCi) provides enhanced cell death in 8 of the 16 tested CRC cell lines compared to treatment with either agent alone. To be able to select sensitive cells, we simultaneously evaluated a validated 18-gene RAS pathway activation signature score along with a 13-gene MEKi resistance signature score, which we hypothesize predict tumor sensitivity to this dual targeted therapy. We found the cell lines that were sensitive to the dual treatment were predominantly CMS4 and had both a high 18-gene and a high 13-gene score, suggesting these cell lines had potential for de novo MEKi sensitivity but were subject to the rapid development of MEKi resistance. The 13-gene score is highly correlated to a score for SRC activation, suggesting resistance is dependent on SRC. Our data show that gene expression signature scores for RAS pathway activation and for MEKi resistance may be useful in determining which CRC tumors will respond to the novel drug combination of MEKi and SRCi.
Additional file6. TCGA 677 CRC_CMS_signature scores.xls.
EGFR inhibitor (EGFRi) therapies (cetuximab and panitumumab) have been approved for metastatic CRC patients who harbor wild-type KRAS/NRAS. Unfortunately, only ~50% of treated patients will respond to therapy. While FDA approved for first-line therapy, these agents are seldom used, significantly limiting their utility. Thus, there is an unmet need to develop additional biomarkers to identify EGFRi sensitive patients. Using an innovative hybrid approach fusing gene expression and DNA sequencing, we recently reported that combined mutations in APC and TP53, two major tumor suppressor genes, were strongly correlated with a validated gene expression signature measuring cetuximab sensitivity (CTX-S) in 468 CRC human tumors (Yang et al. Cancer Epidemiol Biomarkers Prev. 2019). Further analysis reported that APC and TP53 mutations predict cetuximab sensitivity across consensus molecular subtypes (CMS1-4) (Thota et al. Cancers. 2021). While APC truncated mutations are known to mediate WNT pathway activation, one of key features of CMS2 CRCs reported to be associated with cetuximab response, little is known about TP53 mutations with cetuximab sensitivity. To investigate a contributive role of mutant TP53 in vitro, we stably transfected expression plasmids of three hotspot mutations (R175H, R248W, R273H) of TP53 in APC-mutated CRC cells such as SW48 cells harboring WT KRAS/NRAS. Multiple stable clones for each of three TP53 mutations (empty vector as a control) were selected for biochemical and RNASeq analyses. We found that the three oncogenic mutations of TP53 enhanced cetuximab-mediated apoptosis under low serum culture conditions (2% FBS). Interestingly, the enhanced drug effect was associated with altered p53 pathway signatures as assessed by RNASeq. In support of the role of TP53 mutations, siRNA-knockdown of TP53 in SW48 cells also demonstrated an increased sensitivity to cetuximab treatments. Collectively, these in vitro analysis supports TP53 mutations, in combination with APC mutations, as predictive mutation biomarkers of cetuximab sensitivity in CRC. Citation Format: Mingli Yang, Heiman Wang, Thomas B. Davis, Lance Pflieger, Ramya Thota, W. Jack Pledger, Timothy J. Yeatman. Hotspot mutations of TP53 sensitize APC-mutated colorectal cancer cells to cetuximab in vitro [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 5366.
Colorectal cancers (CRCs) are hard-wired to RAS/RAF/MEK/ERK pathway oncogenic signaling. However, the promise of targeted therapeutic inhibitors (KRASi/BRAFi/MEKi/ERKi), has been tempered by disappointing clinical activity, likely due to complex resistance mechanisms including intrinsic and adaptive resistance. Here we report a central role of SRC in mediating intrinsic and adaptive “bypass”-resistance to MEK inhibition in cancer stem cells (CSCs). The SRC oncogene is a well-studied non-receptor tyrosine kinase that can regulate multiple signaling pathways involved in the control of cell proliferation, survival, differentiation, adhesion, invasion and motility. Previously, our laboratory was the first to document that human CRC truncating mutations in the negative regulatory domain of SRC result in SRC activation (Nat Genet 1999). Now our integrated and expansive gene expression signature analyses in >2000 human CRCs reveal that MEKi bypass-resistance is strikingly-correlated with SRC activation, which is associated clinically with regional metastasis, disease recurrence and poor overall survival, and associated biologically with EMT and “stemness”. In support of this, SRC-associated MEKi resistance is strongly related to the CMS4 subtype that has a mesenchymal CSC phenotype. The finding is further supported by in vitro analyses demonstrating that CSCs vs. non-CSCs display greater levels of MEKi-resistance, which is attenuated by a SRC inhibitor. These results support a novel notion that SRC may serve as a common targetable node in MEKi resistance mechanisms, permitting effective cancer stem cell targeting. These pre-clinical data, based on strikingly-correlated pathway analyses of thousands of human tumors, support the “fast-track” development of a biomarker-driven (MEKi + SRCi) drug combination targeting problematic SRC-mediated, mesenchymal CSCs. Citation Format: Mingli Yang, Thomas B. Davis B. Davis, Michael V. Nebozhyn, Andrey Loboda, Heiman Wang, Michael J. Schell, Lance Pflieger, Ramya Thota, W. Jack Pledger, Timothy J. Yeatman. A novel role of SRC in mediating bypass resistance to MEK inhibition in colorectal cancer stem cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2021; 2021 Apr 10-15 and May 17-21. Philadelphia (PA): AACR; Cancer Res 2021;81(13_Suppl):Abstract nr 1083.
Recently, it was suggested that consensus molecular subtyping (CMS) may aide in predicting response to EGFR inhibitor (cetuximab) therapies. We recently identified that APC and TP53 as two tumor suppressor genes, when mutated, may enhance cetuximab sensitivity and may represent easily measured biomarkers in tumors or blood. Our study aimed to use APC and TP53 mutations (AP) to refine the CMS classification to better predict responses to cetuximab. In total, 433 CRC tumors were classified into CMS1-4 subtypes. The cetuximab sensitivity (CTX-S) signature scores of AP vs. non-AP tumors were determined across each of the CMS classes. Tumors harboring combined AP mutations were predominantly enriched in the CMS2 class, and to a lesser degree, in the CMS4 class. On the other hand, AP mutated CRCs had significantly higher CTX-S scores compared to non-AP CRCs across all CMS classes. Similar results were also obtained in independent TCGA tumor collections (n = 531) and in PDMR PDX/PDO/PDC models (n = 477). In addition, the in vitro cetuximab growth inhibition was preferentially associated with the CMS2 cell lines harboring A/P genotypes. In conclusion, the AP mutation signature represents a convenient biomarker that refines the CMS classification to identify CRC subpopulations predicted to be sensitive to EGFR targeted therapies.
PTPRS is the most commonly mutated receptor tyrosine phosphatase in colorectal cancer (CRC). PTPRS has been shown to directly affect ERK and regulate its activation and nuclear localization. Here we identify that PTPRS may play a significant role in developing adaptive resistance to MEK/ERK inhibitors (MEKi/ERKi) through SRC activation. Moreover, we demonstrate a new clinical approach to averting adaptive resistance through the use of the SRC inhibitor, dasatinib. Our data suggest the potential for dasatinib to enhance the efficacy of MEKi and ERKi by preventing adaptive resistance pathways operating through SRC.
Colorectal cancer (CRC) growth and progression is frequently driven by RAS pathway activation through upstream growth factor receptor activation or through mutational activation of KRAS or BRAF. Here we describe an additional mechanism by which the RAS pathway may be modulated in CRC. PTPRS, a receptor-type protein tyrosine phosphatase, appears to regulate RAS pathway activation through ERK. PTPRS modulates ERK phosphorylation and subsequent translocation to the nucleus. Native mutations in PTPRS, present in ~10% of CRC, may reduce its phosphatase activity while increasing ERK activation and downstream transcriptional signaling.
679 Background: Mutational activation of the RAS pathway occurs in >50% of human CRC tumors, and to date has been difficult to overcome. We recently identified receptor tyrosine phosphatase-S (PTPRS) as an important regulator of the RAS pathway, which is mutated in ~11% of CRC. Methods: Global gene expression and DNA sequencing data (1321 cancer genes) were integrated across 468 CRC tumors to identify PTPRS as one of the most commonly mutated genes with a high correlation to a RAS activation score. Apoptotic responses to inhibitors of ERK, EGFR and their combination were tested in isogenic wild-type and mutant RAS cell lines where PTPRS had been knocked out by CRISPR. Results: PTPRS was in the top 15 genes correlating with RAS pathway activation scores; as expected, KRAS, BRAF were the most correlated genes. In order to determine the effect of the loss of PTPRS on RAS/ERK signaling, we used CRISPR to knockout PTPRS in an isogenic pair of CRC cell lines (HCT116) with mutant or wild type KRAS. Cell lines lacking PTPRS expression had elevated phospho-ERK activity. Interestingly, cell lines with PTPRS knockout and elevated ERK phosphorylation had an increased sensitivity to ERK inhibitors. Moreover, the loss of PTPRS allowed ERK to localize to the nucleus. Apoptosis increased dramatically from 13.1% in control cells to 53.8% in PTPRS KO cells treated with both ERK and EGFR inhibitors (Table), a synergistic effect not seen in wild type KRAS cells, where only ERK inhibitors were active. Conclusions: The loss of PTPRS allows increased activation of ERK (and the RAS pathway) which is associated with ERK addiction and increased sensitivity to ERK inhibitors. Surprisingly, ERK inhibitors synergize with EGFRi in wild type KRAS cell lines absent PTPRS. These data suggest the potential for mutant PTPRS to serve as a biomarker for ERK/EGFR inhibition. [Table: see text]
Background Minimal Change Disease (MCD) is the most common type of nephrotic syndrome in children. Angiopoietin-like-4 (Angplt4) has been proposed as mediator of proteinuria in MCD. The aim of this study was to evaluate the role of Angptl4 as a biomarker in MCD. Methods Patients with biopsy-proven primary MCD, focal segmental glomerulosclerosis, membranous nephropathy (60, 52 and 52 respectively) and 18 control subjects had urinary and serum Angptl4 measured by Elisa. Frozen kidney tissue sections were stained for Angptl4. Results Angptl4 was not identified in glomeruli of MCD patients in relapse. Urinary Angptl4 levels were elevated in MCD in relapse as well as in patients with massive proteinuria due to other glomerular diseases. Conclusion Neither serum nor urine Angptl4 appear to be good biomarkers in MCD. Elevated urinary Angptl4 n glomerular disease appears to reflect the degree of proteinuria rather than any specific disease.
Abstract The RAS pathway is a driver of many cancers, and has been targeted for the development of a variety of therapeutic inhibitors of BRAF, MEK, and more recently ERK. One of challenging issues is to predict response to targeted therapies. Here we report identification of PTPRS, a receptor-type protein tyrosine phosphatase, as a regulator/biomarker of ERK activation and inhibitor response in colorectal cancer. To identify the genes with high frequency mutations that might be predictive of RAS pathway dependence (“addiction”), we used a gene expression signature score to stratify 468 colorectal cancer tumors that also underwent targeted exome sequencing for 1321 cancer-associated genes. We found that, when the masking effects caused by mutant KRAS, BRAF and NRAS was iteratively removed, mutant PTPRS was strongly correlated with RAS pathway activation, with a mutation rate of 10.4% (22 out of 211 remaining tumors). This led us to inactivate PTPRS in vitro using a specific peptide inhibitor, siRNA or CRISPR approaches in various colorectal cancer cell lines. Inhibition/loss of PTPRS significantly elevated phosphorylation of ERK and AKT and substantially sensitized cancer cells to the treatment of ERK inhibitors, which was enhanced by an AKT inhibitor. Surprisingly, PTPRS did not modulate the activity of EGFR and the ERK kinase, MEK. Our data indicate that PTPRS negatively regulates ERK signaling downstream of the EGFR/RAS/RAF/MEK pathway in a mechanism independent of AKT and DUSP6. As a result, inactivation/loss of PTPRS promotes ERK activation and “addiction”, thereby contributing to increased sensitivity to ERK inhibitors. Citation Format: Thomas B. Davis, Mingli Yang, Michael J. Schell, Heiman Wang, Le Ma, W. Jack Pledger, Timothy J. Yeatman. Inactivation/loss of PTPRS promotes ERK activation that sensitizes colorectal cancer cells to ERK inhibitors [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2017; 2017 Apr 1-5; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2017;77(13 Suppl):Abstract nr 4135. doi:10.1158/1538-7445.AM2017-4135
Minimal Change Disease (MCD) in relapse is associated with increased podocyte CD80 expression and elevated urinary CD80 excretion, whereas focal segmental glomerulosclerosis (FSGS) has mild or absent CD80 podocyte expression and normal urinary CD80 excretion. One patient with MCD, one patient with primary FSGS and three patients with recurrent FSGS after transplantation received CD80 blocking antibodies (abatacept or belatacept). Urinary CD80 and CTLA-4 levels were measured by ELISA. Glomeruli were stained for CD80. After abatacept therapy, urinary CD80 became undetectable with a concomitant transient resolution of proteinuria in the MCD patient. In contrast, proteinuria remained unchanged after abatacept or belatacept therapy in the one patient with primary FSGS and in two of the three patients with recurrent FSGS despite the presence of mild CD80 glomerular expression but normal urinary CD80 excretion. The third patient with recurrent FSGS after transplantation had elevated urinary CD80 excretion immediately after surgery which fell spontaneously before the initiation of abatacept therapy; after abatacept therapy, his proteinuria remained unchanged for 5 days despite normal urinary CD80 excretion. These observations are consistent with a role of podocyte CD80 in the development of proteinuria in MCD. In contrast, CD80 may not play a role in recurrent FSGS since the urinary CD80 of our three patients with recurrent FSGS was only increased transiently after surgery and normalization of urinary CD80 did not result in resolution of proteinuria.
Minimal Change Disease (MCD) is associated with CD80 expression in podocytes and elevated urinary CD80 excretion during active renal disease. We have evaluated the urinary excretion of CTLA-4 and CD80 during different stages of the nephrotic syndrome in patients with MCD to test the hypothesis that persistent increased urinary CD80 excretion in patients with MCD in relapse is due to an ineffectual CTLA-4 response of the host to curtail the activation of CD80. Thirty-two children with biopsy-proven MCD were studied during relapse and/or remission. Eleven healthy subjects served as controls. Urinary CD80 excretion was significantly increased in MCD patients in relapse relative to that in MCD patients in remission (p < 0.001) and controls (p < 0.001). Although urinary CTLA-4 excretion was higher in MCD patients in relapse than in MCD patients in remission (p = 0.01) and controls (p = 0.03), no significant correlation was observed between urinary CD80 excretion and urinary CTLA-4 level in MCD patients at the time of relapse (p = 0.06). At the time of remission, CD80 had decreased significantly in all patients, but CTLA-4 levels either decreased or remained unchanged in all but five patients, and no correlation was observed between urinary CD80 excretion and CTLA-4 level (p = 0.7). Urinary CTLA-4 levels do not correlate with urinary CD80 excretion, suggesting the possibility that the CTLA4 response may be suboptimal in this disease during relapse.
Minimal change disease (MCD) is the most common cause of nephrotic syndrome in children and is associated with the expression of CD80 in podocytes and the increased excretion of CD80 in urine. We hypothesized that serum from patients with MCD might stimulate CD80 expression in cultured podocytes.
Estrogen signaling plays a critical role in the pathogenesis of breast cancer. Because the majority of breast carcinomas express the estrogen receptor ERα, endocrine therapy that impedes estrogen-ER signaling reduces breast cancer mortality and has become a mainstay of breast cancer treatment. However, patients remain at continued risk of relapse for many years after endocrine treatment. It has been proposed that cancer recurrence may be attributed to cancer stem cells (CSCs)/tumor-initiating cells (TICs). Previous studies in breast cancer have shown that such cells can be enriched and propagated in vitro by culturing the cells in suspension as mammospheres/tumorspheres. Here we established tumorspheres from ERα-positive human breast cancer cell line MCF7 and investigated their response to antiestrogens Tamoxifen and Fulvestrant. The tumorsphere cells express lower levels of ERα and are more tumorigenic in xenograft assays than the parental cells. Both 4-hydroxytamoxifen (4-OHT) and Fulvestrant attenuate tumorsphere cell proliferation, but only 4-OHT at high concentrations interferes with sphere formation. However, treated tumorsphere cells retain the self-renewal capacity. Upon withdrawal of antiestrogens, the treated cells resume tumorsphere formation and their tumorigenic potential remains undamaged. Depletion of ERα shows that ERα is dispensable for tumorsphere formation and xenograft tumor growth in mice. Surprisingly, ERα-depleted tumorspheres display heightened sensitivity to 4-OHT and their sphere-forming capacity is diminished after the drug is removed. These results imply that 4-OHT may inhibit cellular targets besides ERα that are essential for tumorsphere growth, and provide a potential strategy to sensitize tumorspheres to endocrine treatment.