Supplementary data Figure S1. Functional role(s) of BMI-1 in PCa. Figure S2. BMI-1 expression in subpopulations of DU145 cells. Figure S3. Pharmacological inhibition of BMI-1. Figure S4. Molecular and cellular effects of pharmacological targeting of BMI-1. Figure S5. Examining BMI-1 inhibitors in toxicological assays and effects on normal cells. Figure S6. Toxicity effects of C-209 and CHX on adult and embryo zebrafish. Figure S7. BMI-1 inhibition effect on the normal prostate and hematopoietic system. Figure S8. Representative images of BMI-1 expression in primary PCa samples. Figure S9. Xenografts of human primary PCa cells in embryonic zebrafish. Figure S10. Xenografts of primary PCa tissue in zebrafish embryos. Figure S11. Toxicology assays of chemotherapy and BMI-1 inhibitors in embryonic zebrafish. Figure S12. Anti-tumor activity of BMI-1 inhibitors. Figure S13. Representative H&E staining of mouse xenograft sections indicating the histological effects of treatments. Figure S14. In vivo pharmacological targeting of BMI-1 in androgen independent DU145 and androgen sensitive 22rv1 PCa mouse xenografts. Figure S15. Colony-formation frequency evaluated by dilution analysis of xenograft-derived cells from untreated mice and mice treated with C-209 60mg/kg/day. Figure S16. BMI-1 inhibition effects on androgen-dependent and -independent cells.
Overexpression of the “activating” transcription factors, E2F1,2 and-3a induces genes involved in DNA synthesis and leads to cellular proliferation, tumor growth, and invasion. Therefore, inhibiting the overexpression of one or more activating E2Fs is a recognized target in cancer therapeutics. Dysregulation/overexpression of E2Fs is also controlled by deletion or mutations in the retinoblastoma protein in tumors. In our previous studies we showed that a novel penetratin conjugated 7-mer peptide (PEP) inhibited transcription of the E2F1, 2 and 3a by bounding tightly to E2F promoters. The PEP was cytotoxic at low micro molar concentrations to several malignant cell lines. As the PEP was unstable in vivo, the PEP was encapsulated in PEGylated liposomes (PL-PEP). Treatment of xenografts of the pRB negative small cell lung cancer H-69 and castrate resistant prostate cancer DU145 tumors propagated in mice with the PL- PEP, caused tumor regression. To increase stability and potency of the PEP, L-Arg in the PEP was replaced by D-Arg. Molecular simulation studies showed that the D-Arg PEP secondary structure is more stable than the L- Arg peptide structure in water. In vitro studies showed that the D-Arg PEP was more potent and more resistant to degradation by serum proteases than the L- form. As E2F is important for DNA repair, and for transcription of thymidylate synthase, we tested the effects of the PEP in combination with cisplatin, a DNA damaging drug and pemetrexed, a potent thymidylate synthase inhibitor. Combination studies of the D-ARG pep with cisplatin (in DU145, PC3, LnCap and 4T1) cells and with pemetrexed (in non-small cell lung cancer, H2009, H441, H1975 and H2228) resulted in synergistic cytotoxicity as determined by Chou-Talalay analysis. Citation Format: Gulam M. Rather, Michael Anyanwu, John E. Kerrigan, Kathleen W. Scotto, Olga Garbuzenko, Tamara Minko, Zoltan Szekely, Joseph R. Bertino. A modified L-penetratin peptide targeting e2f-1, 2 and 3 is effective in combination with cisplatin or pemetrexed against prostate and lung cancer cell lines [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2019; 2019 Mar 29-Apr 3; Atlanta, GA. Philadelphia (PA): AACR; Cancer Res 2019;79(13 Suppl):Abstract nr 5213.
Abstract Purpose: Studies have shown that bone morphogenetic protein (BMP) signaling is aberrantly expressed in lung and other carcinoma leading to pro-oncogenic effects on tumor growth. The BMP receptor inhibitor DMH2 induces death of lung cancer cells through the downregulation of anti-apoptotic proteins XIAP, TAK1, and Id1-Id3. Since DMH2 does not downregulate BMP signaling in vivo because of metabolic instability and poor pharmacokinetics better BMP inhibitors are needed. Experimental Design: Here, we identified a site of metabolic instability of DMH2 and designed a novel BMP receptor inhibitor, JL5. We examined the effects of JL5 to downregulate BMP signaling and induce cell death of lung cancer cells in vitro and in vivo. We also queried the The Cancer Genome Atlas (TCGA) to assess if genetic alterations in lung cancer would affect drug targetability of the BMP receptors. Results: We show that JL5 has improved pharmacokinetic profile compared to DMH2. JL5 suppresses BMP signaling in lung cancer cells in vitro and in tumor xenografts. Moreover, we demonstrate JL5-induced tumor cell death and tumor regression in xenograft mouse models without immune cells and humanized with adoptively transferred human immune cells. In humanized mice, JL5 additionally induces the infiltration of immune cells within the tumor microenvironment. The TCBA database analysis suggests that genetic alterations in the BMP signaling cascade will not limit targeting with small molecule inhibitors. Conclusion: Our studies show that the BMP signaling pathway is targetable and BMP receptor inhibitors should be developed as a therapeutic to treat lung and other cancer patients. Citation Format: Jenna H. Newman, Rachel E. NeMoyer, David Augeri, Jyoti Malhotra, Elaine Langenfeld, Charles B. Chesson, Micheal J. Lee, Saeed Tarabichi, Sachin R. Jhawar, Praveen K. Bommareddy, Sh'rae Marshall, Evita T. Sadimin, John E. Kerrigan, Michael Goedken, Christine Minerowicz, Salma K. Jabbour, Shengguo Li, Natalie Dobias, Mary O. Carayannopolous, Andrew Zloza, John Langenfeld. Novel bone morphogenetic protein receptor inhibitor JL5 suppresses tumor cell survival signaling and induces regression of human lung cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr LB-189.
BMP receptor inhibitors induce death of cancer cells through the downregulation of antiapoptotic proteins XIAP, pTAK1, and Id1-Id3. However, the current most potent BMP receptor inhibitor, DMH2, does not downregulate BMP signaling in vivo because of metabolic instability and poor pharmacokinetics. Here we identified the site of metabolic instability of DMH2 and designed a novel BMP receptor inhibitor, JL5. We show that JL5 has a greater volume of distribution and suppresses the expression of Id1 and pTak1 in tumor xenografts. Moreover, we demonstrate JL5-induced tumor cell death and tumor regression in xenograft mouse models without immune cells and humanized with adoptively transferred human immune cells. In humanized mice, JL5 additionally induces the infiltration of immune cells within the tumor microenvironment. Our studies show that the BMP signaling pathway is targetable in vivo and BMP receptor inhibitors can be developed as a therapeutic to treat cancer patients.
Abstract The mitochondrial folate enzyme, methylene tetrahydrofolate dehydrogenase (MTHFD2), is a promising anticancer target because 1) it is required for the generation of one-carbon units required for purine synthesis and generation of NADH/NADPH necessary for protection from ROS in the mitochondria; 2) it is markedly distinct from the cytoplasmic MTHFD1 enzyme with respect to location, catalytic activity and cofactors; 3) it is expressed at low levels in proliferating normal cells; 4) in contrast, it is highly expressed in a variety of rapidly proliferating malignant tumors; 5) knockdown (KD) of MTHFD2 has been shown to inhibit proliferation in a subset of tumor cells in vitro; and 6) MTHFD2 KD is predicted to have metabolic consequences (glycine auxotrophy, folate deficiency) that could be exploited for combination therapy. In this study we tested the hypotheses that downregulation of MTHFD2 will result in relative folate deficiency, which can be exploited by using a folate-depleting enzyme, carboxypeptidase G2 (CPG2), to enhance tumor cell kill. CPG2 is approved by the FDA for the treatment of methotrexate overdose in patients. It acts to inactivate MTX or naturally occurring folates by hydrolyzing the terminal glutamate from folates and MTX, generating a pteroate and glutamate. As pteroates cannot be used to resynthesize folates, or MTX, this treatment depletes cells from MTX or folates. The combination of CPG2 in cell lines, MCF7 and T47D with MTHFD2 KD, was done and the actual increase in growth inhibition showed enhanced antitumor effects, indicating that when effective inhibitors of MTHFD2 are available, this combination may have widespread clinical usefulness, especially in rapidly proliferating tumors that express high levels of MTHFD2. Citation Format: Gulam M. Rather, John E. Kerrigan, Kathleen W. Scotto, Joseph R. Bertino. Enhancement of the anticancer activity of methylenetetrahydrofolate dehydrogenase knockdown by folate depletion with carboxypeptidase G2 [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr 3981.
Over the past several decades, the frequency of antibacterial resistance in hospitals, including multidrug resistance (MDR) and its association with serious infectious diseases, has increased at alarming rates. Pseudomonas aeruginosa is a leading cause of nosocomial infections, and resistance to virtually all approved antibacterial agents is emerging in this pathogen. To address the need for new agents to treat MDR P. aeruginosa, we focused on inhibiting the first committed step in the biosynthesis of lipid A, the deacetylation of uridyldiphospho-3-O-(R-hydroxydecanoyl)-N-acetylglucosamine by the enzyme LpxC. We approached this through the design, synthesis, and biological evaluation of novel hydroxamic acid LpxC inhibitors, exemplified by 1, where cytotoxicity against mammalian cell lines was reduced, solubility and plasma-protein binding were improved while retaining potent anti-pseudomonal activity in vitro and in vivo.
Human breast tumors contain significant amounts of stromal cells. There exists strong evidence that these stromal cells support cancer development and progression by altering various pathways (e.g. downregulation of tumor suppressor genes or autocrine signaling loops). Here, we suggest that stromal carcinoma-associated fibroblasts (CAFs), shown to be generated from bone marrow-derived mesenchymal stem cells, may (i) recycle tumor-derived lactate for their own energetic requirements, thereby sparing glucose for neighboring glycolytic tumor cells, and (ii) subsequently secrete surplus energetically and biosynthetically valuable metabolites of lactate oxidation, such as pyruvate, to support tumor growth. Lactate, taken up by stromal CAFs, is converted to pyruvate, which is then utilized by CAFs for energy needs as well as excreted and shared with tumor cells. We have interrogated lactate oxidation in CAFs to determine what metabolites may be secreted, and how they may affect the metabolism and growth of MDA-MB-231 breast cancer cells. We found that CAFs secrete pyruvate as a metabolite of lactate oxidation. Further, we show that pyruvate is converted to lactate to promote glycolysis in MDA-MB-231 cells and helps to control elevated ROS levels in these tumor cells. Finally, we found that inhibiting or interfering with ROS management, using the naturally occurring flavonoid phloretin (found in apple tree leaves), adds to the cytotoxicity of the conventional chemotherapeutic agent doxorubicin. Our work demonstrates that a lactate-pyruvate, reciprocally-supportive metabolic relationship may be operative within the tumor microenvironment (TME) to support tumor growth, and may be a useful drug target.
As we enter the era of precision medicine, characterization of cancer genomes will directly influence therapeutic decisions in the clinic. Here we describe a platform enabling functionalization of rare gene mutations through their high-throughput construction, molecular barcoding and delivery to cancer models for in vivo tumour driver screens. We apply these technologies to identify oncogenic drivers of pancreatic ductal adenocarcinoma (PDAC). This approach reveals oncogenic activity for rare gene aberrations in genes including NAD Kinase ( NADK ), which regulates NADP(H) homeostasis and cellular redox state. We further validate mutant NADK , whose expression provides gain-of-function enzymatic activity leading to a reduction in cellular reactive oxygen species and tumorigenesis, and show that depletion of wild-type NADK in PDAC cell lines attenuates cancer cell growth in vitro and in vivo . These data indicate that annotating rare aberrations can reveal important cancer signalling pathways representing additional therapeutic targets.
Abstract Purpose: Current prostate cancer management calls for identifying novel and more effective therapies. Self-renewing tumor-initiating cells (TICs) hold intrinsic therapy resistance and account for tumor relapse and progression. As BMI-1 regulates stem cell self-renewal, impairing BMI-1 function for TIC-tailored therapies appears to be a promising approach. Experimental Design: We have previously developed a combined immunophenotypic and time-of-adherence assay to identify CD49bhiCD29hiCD44hi cells as human prostate TICs. We utilized this assay with patient-derived prostate cancer cells and xenograft models to characterize the effects of pharmacologic inhibitors of BMI-1. Results: We demonstrate that in cell lines and patient-derived TICs, BMI-1 expression is upregulated and associated with stem cell–like traits. From a screened library, we identified a number of post-transcriptional small molecules that target BMI-1 in prostate TICs. Pharmacologic inhibition of BMI-1 in patient-derived cells significantly decreased colony formation in vitro and attenuated tumor initiation in vivo, thereby functionally diminishing the frequency of TICs, particularly in cells resistant to proliferation- and androgen receptor–directed therapies, without toxic effects on normal tissues. Conclusions: Our data offer a paradigm for targeting TICs and support the development of BMI-1–targeting therapy for a more effective prostate cancer treatment. Clin Cancer Res; 22(24); 6176–91. ©2016 AACR.
NAD+ kinase (NADK) catalyzes the phosphorylation of nicotinamide adenine dinucleotide (NAD+) to nicotinamide adenine dinucleotide phosphate (NADP+) using ATP as the phosphate donor. NADP+ is then reduced to NADPH by dehydrogenases, in particular glucose-6-phosphate dehydrogenase and the malic enzymes. NADPH functions as an important cofactor in a variety of metabolic and biosynthetic pathways. The demand for NADPH is particularly high in proliferating cancer cells, where it acts as a cofactor for the synthesis of nucleotides, proteins, and fatty acids. Moreover, NADPH is essential for the neutralization of the dangerously high levels of reactive oxygen species (ROS) generated by increased metabolic activity. Given its key role in metabolism and regulation of ROS, it is not surprising that several recent studies, including in vitro and in vivo assays of tumor growth and querying of patient samples, have identified NADK as a potential therapeutic target for the treatment of cancer. In this review, we will discuss the experimental evidence justifying further exploration of NADK as a clinically relevant drug target and describe our studies with a lead compound, thionicotinamide, an NADK inhibitor prodrug. Clin Cancer Res; 22(21); 5189-95. ©2016 AACR.
Rapidly proliferating tumors attempt to meet the demands for nucleotide biosynthesis by upregulating folate pathways that provide the building blocks for pyrimidine and purine biosynthesis. In particular, the key role of mitochondrial folate enzymes in providing formate for de novo purine synthesis and for providing the one-carbon moiety for thymidylate synthesis has been recognized in recent studies. We have shown a significant correlation between the upregulation of the mitochondrial folate enzymes, high proliferation rates, and sensitivity to the folate antagonist methotrexate (MTX). Burkitt lymphoma and diffuse large-cell lymphoma tumor specimens have the highest levels of mitochondrial folate enzyme expression and are known to be sensitive to treatment with MTX. A key enzyme upregulated in rapidly proliferating tumors but not in normal adult cells is the mitochondrial enzyme methylenetetrahydrofolate dehydrogenase (MTHFD2). This perspective outlines the rationale for specific targeting of MTHFD2 and compares known and generated crystal structures of MTHFD2 and closely related enzymes as a molecular basis for developing therapeutic agents against MTHFD2. Importantly, the development of selective inhibitors of mitochondrial methylenetetrahydrofolate dehydrogenase is expected to have substantial activity, and this perspective supports the investigation and development of MTHFD2 inhibitors for anticancer therapy. Mol Cancer Res; 13(10); 1361–6. ©2015 AACR.
Abstract BACKGROUND: Mutation or inactivation of the retinoblastoma protein is frequently involved in prostate cancer tumorigenesis resulting in overexpression/deregulation of E2F activity. E2F1-3a overexpression induces genes involved in DNA synthesis and leads to abnormal cellular proliferation, tumor growth, and invasion. Therefore, inhibiting the overexpression of one or more activating E2Fs is a recognized target in cancer therapeutics. In our previous studies we showed that a novel penetratin conjugated 7-mer peptide (PEP) bound tightly to an immobilized consensus E2F1 promoter sequence, was cytotoxic at low micro molar concentrations to many malignant cell lines and as the PEP was unstable in serum, the PEP was encapsulated in PEGylated liposomes and treatment of tumor xenografts of small cell lung cancer H-69 and DU145 tumors propagated in mice caused tumor regression. OBJECTIVE: To determine the antitumor activity and stability of two different modified penetratin peptides: D-Arg PEP (substituting L-Arginine with D-Arginine in the peptide sequence) and N-acetylated as well as C-methylated PEP analog. METHODS: DU145 (prostate cancer) and H196 (small cell lung cancer) cells were used. To compare the efficacy of the peptides, we tested the IC50s of peptides at different time points using the MTS assay. Drug combination experiment results were analyzed using the combination index (CI) method. Peptide conformational studies were carried out using the Amber 12 suite of biomolecular simulation programs. RESULTS: Molecular simulation studies showed that the D-Arg PEP secondary structure is more stable than the L-Arg peptide structure in water. D-Arg PEP was more potent compared to L-Arg PEP, and it was also found to be more resistant to degradation by serum proteases than the L-form. The other modified form, N-acetylated, C-methylated PEP was marginally more effective than the unmodified PEP. Drug combination studies showed that the D-Arg PEP in combination with docetaxel, caused synergistic cytotoxicity against DU 145 cells. Our findings validate D-Arg peptide, an inhibitor of E2F1and 3a transcription, as a drug candidate for targeted molecular therapy of prostate cancers with elevated levels of activated E2F’s. Studies in progress are evaluating the combination of the PEGylated liposome encapsulated D-Arg PEP in combination with docetaxel against DU145 xenografts and against primary prostate cancer cells. Supported in part by a grant from the Lung Cancer Research Foundation. Citation Format: Tazeem Shaik, Nitu Bansal, Nadine Johnson Farley, John Kerrigan, Olga Garbuzenko, Tamara Minko, Emine Abali, Zoltan Szekely, Kathleen Scotto, Debabrata Banerjee, Joseph Bertino. Antitumor studies of an E2f1 promoter sequence binding peptide - penetratin conjugate as a molecule targeting E2f in prostate cancer. [abstract]. In: Proceedings of the 106th Annual Meeting of the American Association for Cancer Research; 2015 Apr 18-22; Philadelphia, PA. Philadelphia (PA): AACR; Cancer Res 2015;75(15 Suppl):Abstract nr 1237. doi:10.1158/1538-7445.AM2015-1237
Protein kinases are therapeutic targets for human cancer. However, "gatekeeper" mutations in tyrosine kinases cause acquired clinical resistance, limiting long-term treatment benefits. mTOR is a key cancer driver and drug target. Numerous small-molecule mTOR kinase inhibitors have been developed, with some already in human clinical trials. Given our clinical experience with targeted therapeutics, acquired drug resistance in mTOR is thought likely, but not yet documented. Herein, we describe identification of a hot spot (L2185) for drug-resistant mutations, which is distinct from the gatekeeper site, and a chemical scaffold refractory to drug-resistant mutations. We also provide new insights into mTOR kinase structure and function. The hot spot mutations are potentially useful as surrogate biomarkers for acquired drug resistance in ongoing clinical trials and future treatments and for the design of the next generation of mTOR-targeted drugs. Our study provides a foundation for further research into mTOR kinase function and targeting.
BACKGROUND:Alternate transcripts from a single gene locus greatly enhance the combinatorial flexibility of the human transcriptome. Different patterns of exon usage have been observed when comparing normal tissue to cancers, suggesting that variant transcripts may play a role in the tumor phenotype.METHODS:Ribonucleic acid-sequencing (RNA-seq) data from breast cancer samples was used to identify an intronic start variant transcript of Acyl-CoA oxidase 2, ACOX2 (ACOX2-i9). Difference in expression between Estrogen Receptor (ER) positive and ER negative patients was assessed by the Wilcoxon rank sum test, and the findings validated in The Cancer Genome Atlas (TCGA) breast cancer dataset (BRCA). ACOX2-i9 expression was also assessed in cell lines using both quantitative reverse transcriptase-polymerase chain reaction (qRT-PCR) and Western blot analysis. Knock down by short hairpin RNA (shRNA) and colony formation assays were used to determine whether ACOX2-i9 expression would influence cellular fitness. The effect of ACOX2-i9 expression on patient survival was assessed by the Kaplan-Meier survival function, and association to clinical parameters was analyzed using a Fisher exact test.RESULTS:The expression and translation of ACOX2-i9 into a 25 kDa protein was demonstrated in HepG2 cells as well as in several breast cancer cell lines. shRNA knock down of the ACOX2-i9 variant resulted in decreased cell viability of T47D and MDA-MB 436 cells. Moreover, expression of ACOX2-i9 was shown to be estrogen regulated, being induced by propyl pyrazoletriol and inhibited by tamoxifen and fulvestrant in ER+ T47D and Mcf-7 cells, but not in the ER- MDA-MB 436 cell line. This variant transcript showed expression predominantly in ER-positive breast tumors as assessed in our initial set of 53 breast cancers and further validated in 87 tumor/normal pairs from the TCGA breast cancer dataset, and expression was associated with better outcome in ER positive patients.CONCLUSIONS:ACOX2-i9 is specifically enriched in ER+ breast cancers where expression of the variant is associated with improved outcome. These data identify variant ACOX2 as a potential novel therapeutic biomarker in ER+ breast tumors.
NAD(+) kinase (NADK) is the only known cytosolic enzyme that converts NAD(+) to NADP(+), which is subsequently reduced to NADPH. The demand for NADPH in cancer cells is elevated as reducing equivalents are required for the high levels of nucleotide, protein, and fatty acid synthesis found in proliferating cells as well as for neutralizing high levels of reactive oxygen species (ROS). We determined whether inhibition of NADK activity is a valid anticancer strategy alone and in combination with chemotherapeutic drugs known to induce ROS. In vitro and in vivo inhibition of NADK with either small-hairpin RNA or thionicotinamide inhibited proliferation. Thionicotinamide enhanced the ROS produced by several chemotherapeutic drugs and produced synergistic cell kill. NADK inhibitors alone or in combination with drugs that increase ROS-mediated stress may represent an efficacious antitumor combination and should be explored further.
E2F1-3a overexpression due to amplification or to mutation or loss of the retinoblastoma gene, induces genes involved in DNA synthesis and leads to abnormal cellular proliferation, tumor growth, and invasion. Therefore, inhibiting the overexpression of one or more of these activating E2Fs is a recognized target in cancer therapeutics. In previous studies we identified by phage display, a novel 7-mer peptide (PEP) that bound tightly to an immobilized consensus E2F1 promoter sequence, and when conjugated to penetratin to increase its uptake into cells, was cytotoxic to several malignant cell lines and human prostate and small cell lung cancer xenografts. Based on molecular simulation studies that showed that the D-Arg penetratin peptide (D-Arg PEP) secondary structure is more stable than the L-Arg PEP, the L-Arg in the peptide was substituted with D-Arg. In vitro studies confirmed that it was more stable than the L- form and was more cytotoxic as compared to the L-Arg PEP when tested against the human castrate resistant cell line, DU145 and the human lung cancer H196 cell line. When encapsulated in PEGylated liposomes, the D-Arg-PEP potently inhibited growth of the DU145 xenograft in mice. Our findings validate D- Arg PEP, an inhibitor of E2F1and 3a transcription, as an improved second generation drug candidate for targeted molecular therapy of cancers with elevated levels of activated E2F(s).
E2F-1, a key transcription factor necessary for cell growth, DNA repair and differentiation, is an attractive target for development of useful anticancer drugs in tumors that are E2F "oncogene addicted". A peptide, isolated from phage clones, based on its binding to an E2F-1 consensus sequence, was cytotoxic against a wide range of cancer cell lines.The peptide was coupled to penetratin (PEP) and tested against prostate cancer cell lines. As the PEP was found to be relatively unstable in serum, it was encapsulated in PEGylated liposomes for in vivo studies.The peptide was cytotoxic against prostate cell lines at low micromolar concentrations. Treatment of mice bearing the human Du-145 human prostate tumor with the PEP encapsulated in PEGylated liposomes (PL-PEP) caused tumor regression without significant toxicity.The liposome encapsulated PEP has promise as an antitumor agent, alone or in combination with inhibitors of DNA synthesis.
The Ribonuclease (RNase) H is one of the four enzymes encoded by all retroviruses, including HIV. Its main activity is the hydrolysis of the RNA moiety in RNA-DNA hybrids. The RNase H ribonuclease is essential in the retroviral life cycle, since it generates and removes primers needed by the Reverse Transcriptase (RT) for initiation of DNA synthesis. Retroviruses lacking RNase H activity are noninfectious. Despite its importance, RNase H is the only enzyme of HIV not yet targeted by antiretroviral therapy.Here, we describe functions and mechanisms of RNase H during the HIV life cycle and describe a cleavage assay, which is suitable to determine RNase H activity in samples of various kinds. In this assay, an artificial, fluorescence-labeled RNA-DNA hybrid is cleaved in vitro by an RT/RNase H enzyme. Cleavage products are analyzed by denaturing polyacrylamide gel electrophoresis (PAGE). This assay may be used to detect the RNase H, assess the effect of inhibitors, or even activators, of the RNase H, as we have described, as candidates for novel antiretroviral agents.
E2F-1, a key transcription factor necessary for cell growth, DNA repair, and differentiation, is an attractive target for development of anticancer drugs in tumors that are E2F “oncogene addicted”. We identified a peptide isolated from phage clones that bound tightly to the E2F-1 promoter consensus sequence. The peptide was coupled to penetratin to enhance cellular uptake. Modeling of the penetratin-peptide (PEP) binding to the DNA E2F-1 promoter demonstrated favorable interactions that also involved the participation of most of the penetratin sequence. The penetratin-peptide (PEP) demonstrated potent in vitro cytotoxic effects against a range of cancer cell lines, particularly against Burkitt lymphoma cells and small cell lung cancer (SCLC) cells. Further studies in the H-69 SCLC cell line showed that the PEP inhibited transcription of E2F-1 and also several important E2F-regulated enzymes involved in DNA synthesis, namely, thymidylate synthase, thymidine kinase, and ribonucleotide reductase. As the PEP was found to be relatively unstable in serum, it was encapsulated in PEGylated liposomes for in vivo studies. Treatment of mice bearing the human small cell lung carcinoma H-69 with the PEP encapsulated in PEGylated liposomes (PL-PEP) caused tumor regression without significant toxicity. The liposome encapsulated PEP has promise as an antitumor agent, alone or in combination with inhibitors of DNA synthesis.
A high-throughput screen (HTS) of the MLPCN library using a homogenous fluorescence polarization assay identified a small molecule as a first-in-class direct inhibitor of Keap1-Nrf2 protein-protein interaction. The HTS hit has three chiral centers; a combination of flash and chiral chromatographic separation demonstrated that Keap1-binding activity resides predominantly in one stereoisomer (SRS)-5 designated as ML334 (LH601A), which is at least 100× more potent than the other stereoisomers. The stereochemistry of the four cis isomers was assigned using X-ray crystallography and confirmed using stereospecific synthesis. (SRS)-5 is functionally active in both an ARE gene reporter assay and an Nrf2 nuclear translocation assay. The stereospecific nature of binding between (SRS)-5 and Keap1 as well as the preliminary but tractable structure-activity relationships support its use as a lead for our ongoing optimization.