Kudzu's invasive nature has contributed to its classification as a weed, as it frequently outcompetes native plant species, leading to extensive overgrowth. Efforts to control kudzu have proven challenging, with moderate success using physical or biological agents. In this study, we evaluated the effects of two such control agents, ultraviolet C radiation and Myrothecium verrucaria, to significantly increase the production of tuberosin, a phytoalexin isoflavone. Our findings demonstrate that estrogenic activity of tuberosin is cell-type-dependent, displaying antagonist or competitive inhibition when combined with 17-β-estradiol in the estrogen receptor (ER) positive cell lines MCF-7 and T-47D, while showing dose-dependent agonist activity in HEK293 cells transfected to express both ER receptors (α and β). Tuberosin was shown to modulate ER pathways, alter ER-mediated gene expression, and increase cell proliferation in a dose-dependent manner while maintaining expression of the ERα protein. Binding affinity and docking simulations confirmed tuberosin binding to the ERα pocket in a similar but weaker manner compared to synthetic estrogen. Tuberosin-treated endothelial cells suppressed vascular network assembly and maturation without affecting the cellular proliferative capacity. The presented studies leverage current kudzu management methods to naturally produce tuberosin, examine cell-type-specific effects, and support further investigation as an antiestrogen for breast cancer treatment.
Legumes are a predominant source of isoflavones, termed phytoestrogens, that mimic 17 beta-estradiol (E2). Phytoalexins are inducible isoflavones produced in plants subjected to environmental stressors (e.g., UV, heat, or fungi). This study investigated estrogenic activity of snow and green peas elicited with Aspergillus sojae. Elicited extracts increased estrogenic activity and proliferation of breast cancer cells (MCF-7 or T47D) in a dose-dependent manner but exhibited antiestrogenic activity when combined with synthetic E2. HPLC analysis of elicited pea extracts identified (+)-pisatin as the primary phytoalexin, which was produced significantly (p < 0.0001) more in snow pea compared to green pea. RNA sequencing results suggested potential functional effects on endothelial cells and tissue vascularization. Indeed, (+)-pisatin enhanced metrics of network assembly and maturation in a microphysiological model of bulk tissue vasculogenesis. Thus, context-dependent functional effects of (+)-pisatin and pharmacologically similar phytoestrogens on the entire tissue microenvironment should be considered in preclinical investigation as potential therapeutic agents.
With special properties such as excellent fluoresce features, low toxicity, good biocompatibility, permeability, and easy clearance from the body, carbon dot (CD)-based nanoparticles (NPs) have the potential to deliver drugs and use in vivo diagnostics through molecular imaging. In this work, folic acid-CD (FA-CD) NPs were prepared to deliver doxorubicin (Dox) covalently and noncovalently as cancer theranostics. FA was conjugated to the surface of CDs for targeting cancer cells with overexpressing folate receptors. CDs prepared with various amounts of precursors lead to their associated NPs with different photoluminescence properties and drug release profiles. The loading of Dox and its releasing data depends on the linkage of drug Dox to FA-CD and CD composition. All NPs were characterized by UV-vis, Fourier transform infrared spectroscopy, and dynamic light scattering. The noncovalent FA-CD-Dox NPs were preferred with a simple preparation process, excellent photoluminescence, and in vitro drug release properties. The noncovalent FA-CD-Dox showed the best efficacy against MDA-MB-231 compared to the CD-Dox and covalent FA-CD-Dox.
Abstract Methylparaben, ethylparaben, and propylparaben are widely used as preservatives in food, cosmetics, and pharmaceutical products. Parabens are also known to bind the estrogen receptor and induce weak estrogen activity in laboratory bioassays. Many OTC topical medications contain one or more parabens as preservative ingredients. In this study, we surveyed the estrogen activity of extracts from OTC topical medications and tested the hypothesis that a combined threshold concentration of particular parabens is required to induce estrogen activity in human breast cancer cell bioassays. Ethanol extracts (1 gm:1 ml) were prepared from OTC topical medications containing parabens (including: Olay Quench Lotion, CeraVe Daily Moisturizing Lotion and Cortizon-10 Lotion). The estrogen agonist and antagonist activity of each extract was determined using the T47dkbluc estrogen reporter gene and the MCF-7 E3 estrogen responsive proliferation assays. The extracts from Olay Quench Lotion and CeraVe Daily Moisturizing Lotion induced estrogen agonist activity in the MCF-7 proliferation assay. The extract from the Cortizon-10 Lotion did not induce significant estrogen activity. The product ingredients of each OTC topical medications tested listed ethyl and propyl parabens while the Olay Quench Lotion also contained the least estrogenic paraben methylparaben. We propose that the estrogenic potential of OTC topical medications can be estimated with LC-MS analysis determination of paraben content and concentration. This study illustrates that measurable estrogen activity from OTC topical medications requires the presence of estrogenic parabens (ethyl and propyl) at total concentrations that exceed a threshold. Thus, estrogen activity depends on the type and concentration of paraben present in the OTC topical products. While the capacity for these OTC topical medications to induce estrogen activity in individuals using the products is unclear, consumers may benefit from more information about the paraben type and concentration present.
The Research Centers in Minority Institutions (RCMI) Program was congressionally mandated in 1985 to build research capacity at institutions that currently and historically recruit, train, and award doctorate degrees in the health professions and health-related sciences, primarily to individuals from underrepresented and minority populations. RCMI grantees share similar infrastructure needs and institutional goals. Of particular importance is the professional development of multidisciplinary teams of academic and community scholars (the "workforce") and the harnessing of the heterogeneity of thought (the "thinkforce") to reduce health disparities. The purpose of this report is to summarize the presentations and discussion at the RCMI Investigator Development Core (IDC) Workshop, held in conjunction with the RCMI Program National Conference in Bethesda, Maryland, in December 2019. The RCMI IDC Directors provided information about their professional development activities and Pilot Projects Programs and discussed barriers identified by new and early-stage investigators that limit effective career development, as well as potential solutions to overcome such obstacles. This report also proposes potential alignments of professional development activities, targeted goals and common metrics to track productivity and success.
Abstract Exposure to xenobiotic estrogens has the potential to induce estrogen activity that may contribute to a range of undesired physiological effects including the stimulation of estrogen responsive tumors. We have previously determined that extracts of OTC medications containing the stimulant laxative bisacodyl induce estrogenic activity in tissue culture bioassays. In this study, we tested the hypothesis that bisacodyl is responsible for the estrogen activity of these extracts and then characterized these effects. Ethanol extracts and dilutions were prepared from OTC medications containing Bisacodyl (1 gm:1 ml). The estrogen agonist and antagonist activity of each extract, as well as bisacodyl and then metabolite DA-bisacodyl was determined using the T47dkbluc estrogen reporter gene and the MCF-7 E3 estrogen responsive proliferation assays. LC-MS analysis was used to determine bisacodyl and DA-bisacodyl concentration in extracts as well as to trace the metabolism of bisacodyl to DA-bisacodyl in the cell culture bioassays. Molecular modeling “docking” simulations of the interactions of bisacodyl and the metabolite DA-bisacodyl with the estrogen receptor (ER) ligand binding domain was performed using MOE from Chemical Computing Group. Bisacodyl and the metabolite DA-bisacodyl induced mixed agonist/antagonist activity in MCF-7 E3 estrogen responsive proliferation assay similar to 4OH-tamoxifen. At the same time, both compounds stimulated only minimal estrogen activity in the T47dkbluc estrogen reporter gene assay. LC-MS analysis determinations identified that almost all bisacodyl was converted to the dihydroxy metabolite DA-bisacodyl in cell culture bioassays. Molecular modeling “docking” simulations determined that while bisacodyl does not fit into the agonist (estradiol) or antagonist (4OH-tamoxifen) conformations of the estrogen receptor ligand binding site, the metabolite DA-bisacodyl may fit into the antagonist induced binding pocket of the ER in a reasonable way. This study characterizes the observed estrogen activity of extracts from OTC medications containing bisacodyl as resulting from the bisacodyl metabolite DA-bisacodyl interacting with the estrogen receptor. Thus, bisacodyl is an OTC medication active ingredient that has potential to induce side effects and or toxicity involving estrogen signalling. The capacity for medications containing bisacodyl or other estrogenic substances to induce estrogen activity in patients is unclear. At the same time, consumers and practitioners should be aware of the potential estrogen activity of bisacodyl containing products.
Abstract Methylparaben, ethylparaben, and propylparaben are widely used as preservatives in food products, cosmetics, and pharmaceuticals. Parabens have been shown to be weak estrogens and this laboratory has described that extracts of some over the counter (OTC) medications with paraben preservatives can induce estrogen activity in tissue culture-based bioassays. At the same time, this laboratory determined that extracts from OTC medications containing the laxative bisacodyl induce estrogen activity regardless of parabens present and that bisacodyl is estrogenic. The current report describes the use of paraben standards and LC-MS analysis to determine paraben concentrations in extracts from OTC medications (Calcium Carbonate, Bisacodyl, Ibuprofen, Diphenhydramine, and Benzoyl Peroxide) used in previous studies. Also described is the application of the Qiagen RT2 Profiler PCR Array for Human Estrogen Receptor Signalling to determine gene induction profiles in MCF-7 cells treated with methyl, ethyl or proplyparaben, or each of the five pairs of OTC medication extracts (with or without parabens) relative to estradiol treatment. LC-MS analysis of extracts confirmed that five of six OTC medications labeled as paraben-free contain no detectable parabens, while one “paraben free” extract included measurable levels of parabens. At the same time, all of the extracts of OTC medications with paraben ingredients, some of which induce estrogen activity, were found to contain a wide range of paraben concentrations. A threshold range of paraben concentration in OTC medications is required to induce estrogen activity in bioassays. Analysis of paraben concentrations of extracts from different product lots of the same OTC medication identified discrepancies in the amount of paraben between batches. PCR Array profiles of the three paraben standards and the OTC medication extracts share some gene induction characteristics induced by estradiol. At the same time, methyl, ethyl and propylparabens induced unique gene array profiles that are shared by the OTC medication extracts containing parabens. The extracts of OTC medications containing bisacodyl stimulated a distinct gene induction profile that has some features of the profiles of estradiol and paraben treatment. This study highlights both the capacity for paraben preservatives in OTC medications to induce novel estrogen activity (gene induction) and the importance of determining the paraben concentration in OTC medications to determine estrogen potential. While the capacity for OTC medications containing parabens or other estrogenic substances to induce estrogen activity in individuals using the medications is unclear, consumers may want to know the potential for estrogen activity in these products.
Advances in oral SERDs development so far have been confined to nonsteroidal molecules such as those containing a cinnamic acid moiety, which are in earlystage clinical evaluation. ZB716 was previously reported as an orally bioavailable SERD structurally analogous to fulvestrant. In this study, we examined the binding details of ZB716 to the estrogen receptor alpha (ERα) by computer modeling to reveal its interactions with the ligand binding domain as a steroidal molecule. We also found that ZB716 modulates ERα-coregulator interactions in nearly identical manner to fulvestrant. The ability of ZB716 to inhibit cell growth and downregulate ER expression in endocrine resistant, ERα mutant breast cancer cells was demonstrated. Moreover, in both the MCF-7 xenograft and a patient derived xenograft model, orally administered ZB716 showed superior efficacy in blocking tumor growth when compared to fulvestrant. Importantly, such enhanced efficacy of ZB716 was shown to be attributable to its markedly higher bioavailability, as evidenced in the final plasma and tumor tissue concentrations of ZB716 in mice where drug concentrations were found significantly higher than in the fulvestrant treatment group.
This work aims to face the challenge of monitoring small molecule drugs accurately and rapidly for point-of-care (POC) diagnosis in current clinical settings. Overdose of acetaminophen (AP), a commonly used over the counter (OTC) analgesic drug, has been determined to be a major cause of acute liver failure in the US and the UK. However, there is no rapid and accurate detection method available for this drug in the emergency room. The present study examined an AP sensing strategy that relies on a previously unexplored strong interaction between AP and the arginine (Arg) molecule. It was found that as many as 4 hydrogen bonds can be formed between one Arg molecule and one AP molecule. By taking advantages of this structural selectivity and high tenability of hydrogen bonds, Arg, immobilized on a graphene surface via electrostatic interactions, was utilized to structurally capture AP. Interestingly, bonded AP still remained the perfect electrochemical activities. The extent of Arg-AP bonds was quantified using a newly designed electrochemical (EC) sensor. To verify the feasibility of this novel assay, based on multihydrogen bond manipulated single-molecule recognition (eMuHSiR), both pharmaceutical and serum sample were examined. In commercial tablet measurement, no significant difference was seen between the results of eMuHSiR and other standard methods. For measuring AP concentration in the mice blood, the substances in serum, such as sugars and fats, would not bring any interference to the eMuHSiR in a wide concentration range. This eMuHSiR method opens the way for future development of small molecule detection for the POC testing.
Purpose: Resistance to chemotherapeutic agents such as doxorubicin is a major reason for cancer treatment failure. At present the treatment option for metastatic breast cancer is very poor. Therefore, development of an effective therapeutic strategy to circumvent MDR of metastatic breast cancer is highly anticipated. The MDR of metastatic breast cancer cells was accompanied with the overexpression of P-gp transporter. Even though the overexpression of P-gp could be minimized by silencing with siRNA, the question is how they can be selectively targeted to the cancer cells. We propose that aptamer surface labeling of the nanoparticles could enhance the selectively delivery of p-gp siRNA into the metastatic breast cancer cells. Our hypothesis is that conjugating nanoparticles with a cancer cell specific aptamer should allow selective delivery of therapeutic drugs to tumor cells leading to enhanced cellular toxicity and antitumor effect as compared to unconjugated nanoparticles. The primary objective of this study is to develop a targeted nanocarrier delivery system for siRNA into breast cancer cells.Design methods: For targeted delivery, Aptamer A6 has been used which can bind to Her-2 receptors on breast cancer cells. For aptamer binding to particle surface, maleimide-terminated PEG-DSPE (Mal-PEG) was incorporated into the nanoparticles. Initially, three blank hybrid nanoparticles (i.e. F21, F31, and F40) out of nine different formulations prepared by high pressure homogenization (HPH) using different amount of DOTAP, cholesterol, PLGA or PLGA-PEG and Mal-PEG were chosen. Then protamine sulfate condensed GAPDH siRNA (TRITC conjugated; red) or P-gp siRNA was encapsulated into those nanoparticles. Finally, the particles were incubated with aptamer A6 (FITC conjugated; green) for surface labeling.Results: Aptamer labeled-nanoparticles having PLGA are smaller in size than those having PLGA-PEG. Surface charge was reduced when the particles were labeled with aptamer. Cell transfection was increased significantly in Her-2 (+) SKBR-3 and 4T1-R cells but not in Her-2 poorly expressed MDA MB-231 and MCF-7 cells. The knockdown of P-gp was increased significantly when the particles were labeled with aptamer. No significant cellular toxicity was observed for any of these formulations.Conclusion: This preliminary study concludes that aptamer-functionalized hybrid nanoparticles could be used to deliver P-gp targeted siRNA into the breast cancer cells to overcome chemoresistance. (C) 2017 Elsevier B.V. All rights reserved.
The hypoxia-inducible factor (HIF) family of transcription factors plays central roles in the development, physiology, pathology, and environmental adaptation of animals. Because many aquatic habitats are characterized by episodes of low dissolved oxygen, fish represent ideal models to study the roles of HIF in the response to aquatic hypoxia. The estuarine fish Fundulus heteroclitus is found in habitats prone to hypoxia. It responds to low oxygen via behavioral, physiological, and molecular changes, and one member of the HIF family, HIF2α, has been previously described. Herein, cDNA sequencing, phylogenetic analyses, and genomic approaches were used to determine other members of the HIFα family from F. heteroclitus and their relationships to HIFα subunits from other vertebrates. In vitro and cellular approaches demonstrated that full-length forms of HIF1α, HIF2α, and HIF3α independently formed complexes with the β-subunit, aryl hydrocarbon receptor nuclear translocator, to bind to hypoxia response elements and activate reporter gene expression. Quantitative PCR showed that HIFα mRNA abundance varied among organs of normoxic fish in an isoform-specific fashion. Analysis of the F. heteroclitus genome revealed a locus encoding a second HIF2α-HIF2αb-a predicted protein lacking oxygen sensing and transactivation domains. Finally, sequence analyses demonstrated polymorphism in the coding sequence of each F. heteroclitus HIFα subunit, suggesting that genetic variation in these transcription factors may play a role in the variation in hypoxia responses among individuals or populations.
Development of orally bioavailable nonsteroidal selective estrogen receptor downregulators (SERDs) provides clinical opportunities for the long-term treatment and adjuvant therapy of breast cancer at all stages. We describe the design, synthesis, and identification of a boron-modified GW7604 derivative (GLL398, 9), a SERD candidate, in which a boronic acid functional group replaces the phenolic hydroxyl group of GW7604. Compound 9 strongly binds to ERα in a fluorescence resonance energy transfer binding assay (IC50 = 1.14 nM) and potently degrades ERα in MCF-7 breast cancer cells (IC50 = 0.21 μM). Most importantly, the introduction of the boronic acid group confers superior oral bioavailability of 9 (AUC = 36.9 μg·h/mL) in rats as compared to GW7604 (AUC = 3.35 μg·h/mL). The strikingly favorable pharmacokinetic property of 9 makes it a promising oral SERD suitable for clinical evaluation.
Orally bioavailable SERDs may offer greater systemic drug exposure, improved clinical efficacy, and more durable treatment outcome for patients with ER-positive endocrine-resistant breast cancer. We report the design and synthesis of a boronic acid modified fulvestrant (5, ZB716), which binds to ERα competitively (IC50 = 4.1 nM) and effectively downregulates ERα in both tamoxifen-sensitive and tamoxifen-resistant breast cancer cells. Furthermore, It has superior oral bioavailability (AUC = 2547.1 ng·h/mL) in mice, indicating its promising clinical utility as an oral SERD.
In humans, cytochrome P450 1A2 is the major enzyme metabolizing environmental arylamines or heterocyclic amines into carcinogens. Since evidence shows that planar triangle-shaped molecules are capable of selectively inhibiting P450 1A2, 16 triangular flavone, and coumarin derivatives were designed and synthesized for these studies. Among these compounds, 7,8-furanoflavone time-dependently inhibits P450 1A2 with a K(I) value of 0.44 μM. With a 5 min preincubation in the presence of NADPH, 0.01 μM 7,8-furanoflavone completely inactivates P450 1A2 but does not influence the activities of P450s 1A1 and 1B1. Another target compound, 7,8-pyrano-4-trifluoromethylcoumarin, is found to be a competitive inhibitor, showing high selectivity for the inhibition of P450 1A2 with a K(i) of 0.39 μM, 155- and 52-fold lower than its K(i) values against P450s 1A1 and 1B1, respectively. In yeast AhR activation assays, 7,8-pyrano-4-trifluoromethylcoumarin does not activate aryl hydrocarbon receptor when the concentration is lower than 1 μM, suggesting that this compound would not up-regulate AhR-caused P450 enzyme expression. In-cell P450 1A2 inhibition assays show that 7,8-pyrano-4-trifluoromethylcoumarin decreases the MROD activity in HepG2 cells at concentrations higher than 1 μM. Thus, using 7,8-pyrano-4-trifluoromethylcoumarin, a selective and specific P450 1A2 action suppression could be achieved, indicating the potential for the development of P450 1A2-targeting cancer preventive agents.
An estimated 70% of breast cancer tumors utilize estrogen receptor (ER) signaling to maintain tumorigenesis and targeting of the estrogen receptor is a common method of treatment for these tumor types. However, ER-positive (+) breast cancers often acquire drug resistant or altered ER activity in response to anti-estrogens. Here we demonstrate glyceollin, an activated soy compound, has anti-estrogen effects in breast cancers. We demonstrate through estrogen response element luciferase and phosphorylation-ER mutants that the effects of glyceollin arise from mechanisms distinct from conventional endocrine therapies. We show that glyceollin suppresses estrogen response element activity; however, it does not affect ER-alpha (α) phosphorylation levels. Additionally we show that glyceollin suppresses the phosphorylation of proteins known to crosstalk with ER signaling, specifically we demonstrate an inhibition of ribosomal protein S6 kinase, 70 kDa (p70S6) phosphorylation following glyceollin treatment. Our data suggests a mechanism for glyceollin inhibition of ERα through the induced suppression of p70S6 and demonstrates novel mechanisms for ER inhibition.
Alkylated polycyclic aromatic hydrocarbons (APAHs) are abundant in petroleum, but data regarding their toxicological properties are limited. A survey of all monomethylated phenanthrene structures revealed that they were 2 times to 5 times more potent than phenanthrene for activation of human aryl hydrocarbon receptor in a yeast bioassay. Phenanthrenes with equatorial methyl groups had the greatest potency. The greater potency of the methylated phenanthrenes highlights the need for more toxicological data on APAHs. Environ Toxicol Chem 2014;33:2363–2367. © 2014 The Authors. Environmental Toxicology and Chemistry published by Wiley Periodicals, Inc. on behalf of SETAC.
Significant cancer health disparities exist in the United States and Puerto Rico. While numerous initiatives have been implemented to reduce cancer disparities, regional coordination of these efforts between institutions is often limited. To address cancer health disparities nation-wide, a series of regional transdisciplinary networks through the Geographic Management Program (GMaP) and the Minority Biospecimen/Biobanking Geographic Management Program (BMaP) were established in six regions across the country. This paper describes the development of the Region 3 GMaP/BMaP network composed of over 100 investigators from nine institutions in five Southeastern states and Puerto Rico to develop a state-of-the-art network for cancer health disparities research and training. We describe a series of partnership activities that led to the formation of the infrastructure for this network, recount the participatory processes utilized to develop and implement a needs and assets assessment and implementation plan, and describe our approach to data collection. Completion, by all nine institutions, of the needs and assets assessment resulted in several beneficial outcomes for Region 3 GMaP/BMaP. This network entails ongoing commitment from the institutions and institutional leaders, continuous participatory and engagement activities, and effective coordination and communication centered on team science goals.