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Epithelial tumor suppressor deletion promotes neuroendocrine differentiation in bladder cancer and reveals homoharringtonine as a candidate vulnerability.

Neuroendocrine bladder carcinoma (NEBC) is a highly aggressive malignancy with unresolved lineage determinants and limited preclinical models, hindering mechanistic investigation and therapeutic development. Here, we sought to assess whether bladder epithelial-derived models are competent to acquire neuroendocrine lineage programs under defined tumor suppressor alterations and to identify candidate therapeutic vulnerabilities in these systems. We integrated genomic and transcriptomic analyses of human NEBC with genetically engineered mouse models, epithelial-derived bladder organoids, and patient-derived NEBC models. Human NEBC exhibited dominant RB1 and TP53 alterations and an epithelial transcriptional continuum consistent with lineage plasticity. In vivo, intravesical Adeno-Cre-mediated tumor suppressor deletion predominantly generated sarcoma-like tumors, whereas epithelial-restricted organoid models recapitulated the molecular and neuroendocrine features of human NEBC, supporting epithelial lineage competence for neuroendocrine differentiation. Patient-derived models and human NEBC specimens further supported epithelial identity in NEBC. Using these complementary platforms, drug screening identified homoharringtonine (HHT) as a candidate therapeutic vulnerability in the tested NEBC systems. HHT suppressed neuroendocrine marker expression, induced apoptosis, and attenuated IL6-JAK-STAT3 signaling. Together, these findings describe complementary epithelial-derived NEBC models and support further investigation of HHT as a candidate therapeutic vulnerability.

Journal Article

Cytotoxicity and cell cycle specificity of homoharringtonine.

The plant alkaloid, homoharringtonine, isolated from Cephalotaxus harringtonia is cytotoxic to HeLa, KB, and L cells growing in monolayer cell cultures. This effect appears to be cell-cycle specific. In synchronized KB cells, protein synthesis was preferentially inhibited in the G(1) and G(2) phases (70 and 45% inhibition, respectively) as might be expected for a protein-synthesis inhibitor.

Alkaloids

Complete biosynthesis of the anticancer cephalotaxinone and homoerythratine.

Cephalotaxine-type and homoerythrina-type alkaloids are structurally unique and biologically important natural products isolated from endangered species that belong to the genus Cephalotaxus. Among them, homoharringtonine (HHT [1]) is a marketed drug used to treat leukemia. However, the scalable production of HHT is significantly hindered by limited natural resources. Despite intensive investigation over half a century, the complete biosynthetic pathways of these alkaloids remain unknown. Here, we applied a comprehensive multi-omics analysis and used a set of chemically synthesized standard compounds to identify the missing enzymes required for the biosynthesis of cephalotaxinone and homoerythratine. We also uncovered a rare case of divergent oxidation catalyzed by two highly homologous cytochrome P450 enzymes, CfCYP2 and CfCYP3, in the biosynthesis of two structurally distinct alkaloids. We further identified the key residues that significantly affect the divergent oxidation outcomes and ultimately reconstituted the complete biosynthetic pathways for producing these two alkaloids in N. benthamiana.

Cephalotaxus

Binding of [3H]narciclasine to eukaryotic ribosomes. A study on a structure-activity relationship.

[3H]Narciclasine is a specific inhibitor of peptide bond formation on eukaryotic ribosomes and binds to 60-S ribosomal subunits. Binding of [3H]-narciclasine to yeast ribosomes is inhibited by many other inhibitors of peptide bond formation including anisomycin, several sequiterpene antibiotics (trichodermin, trichothecin, fusarenon X and verrucarin A) several Cephalotaxus alkaloids (harringtonine, homoharringtonine and isoharringtonine), several Amaryllidaceae alkaloids (pretazettine, haemanthamine, lycorine, pseudolycorine and dihydrolycorine) and the narciclasine derivatives trans-dihydronarciclasine, trans-dihydronarciclasine acetonide and isonarciclasine. Binding is also inhibited, although to a very small extent, by methylnarciclasine and cisdihydronarciclasine. In contrast, no inhibition of [3H]narciclasine binding was observed in the presence of certain other inhibitors of peptide bond formation including blasticidin S, gougerotin, sparsomycin and puromycin.

Alkaloids

The effect of inhibitors of protein synthesis on the reexpression of surface immunoglobulin following antigenic modulation.

P3, a cell line derived from the plasmacytoma MOPC-21 secretes IgG1 (K) and is sensitive to complement (C')-mediated lysis by antibody directed against gamma1 or K. Sensitivity is attributed to the presence of immunoglobulin molecules on the surface membrane, designed Ig-mem. This sensitivity is abolished by antigenic modulation of Ig-mem. Modulated cells, when incubated in the absence of antibody, recover sensitivity to lysis in 4 hr. By measuring the rate of recovery, it has been possible to study the effects of various drugs on the reexpression of Ig-mem. Treatment of modulated cells with cycloheximide (Cx), pactamycin Pc), anisomycin (An), homoharringtonine (Ha) or sparsomycin (Sm), each a specific inhibitor of a different step in protein synthesis, produces a significant reduction in the rate of recovery. Paradoxically, puromycin (Pm), also a specific inhibitor of protein synthesis, does not reduce the rate of recovery. Studies were performed using Pm together with each of the other drugs to gain an understanding of the relationship between protein synthesis and recovery from modulation. Based upon these studies, we conclude that continued operation of the initiation cycle of protein synthesis is required for reexpression of Ig-mem in the absence of de novo protein formation.

Anisomycin

Inhibition of translation in eukaryotic systems by harringtonine.

The Cephalotaxus alkaloids harringtonine, homoharringtonine and isoharringtonine inhibit protein synthesis in eukaryotic cells. The alkaloids do not inhibit, in model systems, any of the steps of the initiation process but block poly(U)-directed polyphenylalanine synthesis as well as peptide bond formation in the fragment reaction assay, the sparsomycin-induced binding of (C)U-A-C-C-A-[3H]Leu-Ac, and the enzymic and the non-enzymic binding of Phe-tRNA to ribosomes. These results suggest that the Cephalotaxus alkaloids inhibit the elongation phase of translation by preventing substrate binding to the acceptor site on the 60-S ribosome subunit and therefore block aminoacyl-tRNA binding and peptide bond formation. However, the Cephalotaxus alkaloids do not inhibit polypeptide synthesis and peptidyl[3H]puromycin formation in polysomes. Furthermore, these alkaloids strongly inhibit [14C]trichlodermin binding to free ribosomes but hardly affect the interaction of the antibiotic with yeast polysomot interact with polysomes and therefore only inhibit cycles of elongation. This explains the polysome run off that has been observed by some workers in the presence of harringtonine.

Alkaloids