41. The Dual Role of Human UDP-Glucuronosyltransferase-Mediated Metabolism in Tumor Drug Resistance: Mechanisms and Prospects.
作者: Zhike Wang.;Jin Zhong.;Chenran Ren.;Hao Shi.;Xiong Fang.;Xiao Xiao.;Xia Liu.;Deliang Cao.;Xi Zeng.
来源: Int J Mol Sci. 2026年27卷15期
UDP-glucuronosyltransferases (UGTs) are a key family of phase II metabolic enzymes in humans that play a central role in maintenance of metabolic homeostasis and drug disposition by catalyzing glucuronidation of endogenous and exogenous substances. UGT-mediated metabolism of antitumor drugs plays a dual role in tumor drug resistance, emerging as a hotspot in cancer therapy. This review outlines the structural characteristics, classification system, tissue distribution, and multilevel regulation of UGTs, with a focus on their bidirectional roles in tumor drug resistance, i.e., promotion of resistance through metabolic clearance and inhibition of resistance through metabolic activation. This review also discusses strategies of multidimensional tumor resistance intervention based on UGTs, and we also discussed the challenges in the clinical translation of current UGT-targeting strategies. To date, most data on UGTs were derived from in vitro and preclinical models; clinical validation remains limited, and the dual roles of UGTs are highly context-dependent. This review article provides a perspective for comprehensive understanding of UGT-mediated tumor resistance and offers theoretical foundations and practical directions for development of novel antitumor strategies.
42. Curcumin and Cancer Stem Cells: Epigenetic Mechanisms Underlying Therapeutic Resistance and Tumor Relapse.
Cancer stem cells (CSCs) drive therapeutic resistance, metastasis, and tumor recurrence through reversible transitions among stem-like, differentiated, epithelial, and mesenchymal states, which are sustained by interconnected epigenetic mechanisms. To our knowledge, this is the first review to integrate curcumin-mediated regulation of DNA methylation, chromatin remodeling, and non-coding RNAs within a single CSC plasticity framework and to propose the concept of an "epigenetic collapse of CSC plasticity" as a mechanistic explanation for how curcumin may weaken stemness, state switching, and adaptive treatment resistance. Evidence was critically evaluated through structured searches of PubMed/MEDLINE, Scopus, Web of Science Core Collection, Google Scholar, and citation tracking, while direct curcumin-epigenetic evidence was distinguished from independent CSC evidence and inferential mechanistic links. Curcumin has been reported to modulate DNMT1 and locus-specific DNA methylation; regulate HDACs, p300/CBP, EZH2, H3K27me3, and BMI1; and alter selected microRNA, long non-coding RNA, and circular RNA pathways, with comparatively stronger evidence involving the miR-34 family, miR-200c, miR-21, H19, and circHN1. However, current evidence is constrained by the predominance of bulk cancer-cell models, heterogeneous formulations and exposure conditions, and the scarcity of epigenetic rescue experiments combined with rigorous functional CSC assays. By unifying previously fragmented epigenetic evidence, this review advances a new evidence-weighted model in which curcumin may suppress CSC persistence not through a single molecular target, but by destabilizing the multilayer epigenetic circuitry that enables plasticity. Curcumin should therefore be regarded as a context-dependent, multilayer epigenetic modulator rather than an established CSC-eradicating therapy, and its translational relevance requires validation in prospectively defined CSC models with pharmacologically justified delivery and exposure conditions.
43. Special Issue "Novel Targeted Therapies and Drugs in Cancer".
Over the past decades, major advances have been achieved in the field of anticancer therapies, with several breakthroughs representing true milestones in cancer treatment [...].
44. Peptide-Based Nanocomplexes Enable Transferrin-Mediated Uptake and p53-Driven Antitumor Activity in 2D and 3D Glioblastoma Models.
作者: Leonor M Castro.;Ana R Neves.;Eric Vivès.;Prisca Boisguérin.;Ângela Sousa.;Diana Costa.
来源: Int J Mol Sci. 2026年27卷15期
Glioblastoma (GB), the most prevalent and aggressive brain tumor, remains one of the most lethal challenges in modern oncology. Standard therapy remains largely ineffective, mainly due to limited therapeutic penetration across the blood-brain barrier (BBB) and adaptive tumor resistance. Consequently, there is an urgent need for innovative strategies to enhance therapeutic precision and efficacy. To address these limitations, we engineered a targeted peptide-based co-delivery system using the WRAP5 cell-penetrating peptide functionalized with a transferrin receptor (TfR)-targeting T7 peptide (sequence: HAIYPRH), enabling simultaneous delivery of temozolomide (TMZ) and a p53-encoding plasmid DNA. The resulting peptide-based TMZ/p53 nanocomplexes exhibited favorable physicochemical properties, enhanced TfR-mediated cellular uptake, and targeted antitumor activity mediated through p53-induced apoptosis in two-dimensional (2D) U87 MG cell cultures. To better reproduce the structural and cellular complexity of the tumor microenvironment, a three-dimensional U87 MG spheroid model was established and optimized using a Design of Experiments (DoE) approach to improve reproducibility and physiological relevance. The developed WRAP5-based nanocomplexes induced a significant dose-dependent inhibition of growth and morphological alterations in the U87 MG spheroid model, accompanied by deep penetration and cell death throughout the spheroid. Collectively, these findings highlight the potential of this targeted and tailored nanosystem to enhance cellular transfection, enable drug/gene co-delivery, restore p53 function, and promote apoptosis, representing a promising therapeutic strategy for GB treatment.
45. Oridonin Suppresses Bladder Cancer Growth and Metastasis by Inducing S-Phase Arrest and Apoptosis.
作者: Wenqiang Sun.;Yongchao Li.;Menglong Xu.;Haocheng Guan.;Tinghui Wu.;Shuwei Li.
来源: Int J Mol Sci. 2026年27卷15期
Bladder cancer (BC) remains a major clinical challenge owing to limited therapeutic options and high recurrence rates. Oridonin (ORI), a natural diterpenoid derived from Rabdosia plants, exhibits promising anti-tumor activity, but its effects and mechanisms in BC remain poorly defined. We evaluated the anti-BC potential of ORI in vitro and in vivo using proliferation, migration, invasion, cell-cycle, and apoptosis assays, integrated transcriptomic and proteomic analyses, Western blotting, and a 5637 xenograft model. ORI dose- and time-dependently inhibited 5637 and T24 cell proliferation, induced S-phase arrest (from 23.37% to 42.12% in 5637 and from 31.87% to 50.28% in T24; p < 0.01), and reduced migration (from 53.39% to 13.77% and from 59.81% to 12.49%; p < 0.0001) and invasion (from 74.42% to 25.43% and from 67.03% to 30.12%; p < 0.001). Multi-omics analyses revealed widespread changes enriched in apoptosis- and cell-cycle-related pathways. Consistently, ORI promoted apoptosis and necrosis, up-regulating BAX, CASP3, BID, and CYCS and down-regulating BCL2, validating the omics findings. In vivo, ORI (20 mg/kg, daily gavage) significantly suppressed xenograft growth (p < 0.001) without obvious toxicity, indicating that ORI inhibits BC growth and metastasis by inducing S-phase arrest and apoptosis and is a promising candidate for BC therapy.
46. Identification of Natural Flavonoids Targeting PLK-1 as Potential Anti-Metastatic Agents: A Computational Approach.
作者: Yudith Cañizares-Carmenate.;Erix W Hernández-Rodríguez.;Yunier Perera-Sardiña.;Dina B Aguado-Herrera.;Roberto Díaz-Amador.;Francisco Torrens.;Juan A Castillo-Garit.
来源: Int J Mol Sci. 2026年27卷15期
This study combines ligand- and structure-based in silico strategies to predict the inhibitory activity of natural flavonoids on the Polo-Like Kinase-1 (PLK-1) enzyme as candidate anticancer agents. This enzyme participates in mitosis and is overexpressed in cancer cells. Furthermore, it has been shown to have important implications for tumor metastasis, and its inhibitors are attractive starting points for drug development. First, classification models are developed using linear discriminant analysis and a multilayer perceptron neural network. Models with accuracy greater than 80%, validated using standard statistical performance metrics and applicability domain, are used for virtual screening identifying four compounds as potential antitumor drugs. Subsequently, the identified compounds are evaluated using a molecular docking methodology to verify their binding mode and interactions with the catalytic domain of PLK-1. Finally, the integration of molecular dynamics simulations, at 300 ns, with Molecular Mechanics/Generalized Born Surface Area (MM/GBSA) thermodynamic calculations demonstrates that the hydroxylation pattern of ring B in the flavonol scaffold is the fundamental chemical-structural determinant of electrostatic interactions and the architecture of water-mediated networks. Among the evaluated flavonoids, myricetin showed the most favorable overall computational profile, including the highest virtual-screening score and the most favorable mean MM/GBSA estimate, supporting its prioritization for experimental evaluation as a potential PLK-1 inhibitor. The integration of these approaches offers a robust methodological framework for proposing candidates with a higher probability of success, in subsequent stages of experimental validation, reducing time and costs in the early stages of drug development.
47. MicroRNA Signatures of Fulvestrant-Treated Luminal Breast Cancer Cells: Identification of Therapeutic Targets Regulated by miR-374b-5p.
作者: Ayako Nagata.;Yuya Tomioka.;Ryutaro Yasudome.;Hiroko Toda.;Takuya Tokunaga.;Yuki Nagata.;Mayuko Kato.;Yoshiaki Shinden.;Akihiro Nakajo.;Naohiko Seki.
来源: Int J Mol Sci. 2026年27卷15期
Estrogen receptor (ER)-positive breast cancer (BrCa) accounts for two-thirds of all BrCa cases worldwide. Therefore, ER-targeted endocrine therapy is the standard treatment for this disease. There has been a recent trend towards developing combination therapies using molecularly targeted drugs to improve outcomes. This study aimed to identify therapeutic targets demonstrating efficacy when combined with fulvestrant (a selective ER downregulator/degrader). We generated microRNA (miRNA) signatures from fulvestrant-treated MCF-7 cells by RNA sequencing. From the signature, we evaluated miR-374b-5p because its expression was elevated by fulvestrant treatment in MCF-7 cells. Also, in expression analysis by subtype of BrCa patients, miR-374b-5p expression was suppressed only in luminal BrCa. Ectopic expression assays revealed that miR-374b-5p attenuated the malignant phenotypes of MCF-7 cells. We searched for genes regulated by miR-374b-5p and discovered that 11 (NEK2, NUF2, HMMR, DEPDC1B, FOXM1, ELOVL6, KIF20A, NCAPH, CENPK, FAM83D, and KIAA0101) are closely involved in BrCa molecular pathogenesis. Among these target genes, we focused on forkhead box M1 (FOXM1), a transcription factor regulating cell cycle progression and division. Notably, combination therapy with fulvestrant and a FOXM1 inhibitor significantly suppressed MCF-7 cell proliferation. From the miRNA signature established in this study, we identified antitumor miR-374b-5p and its target genes and used these findings to explore candidate drugs with potential efficacy when combined with fulvestrant.
48. Anticancer Effects of Cucurbitacin B and Meleagrin Associated with TYRO3 Downregulation in Colorectal Cancer Cells.
作者: Reha Sertac Ilhan.;Merve Gurboga.;Turgut Sekerler.;Pinar Ulupinar.;Derya Ozsavci.;Ozlem Bingol Ozakpinar.
来源: Int J Mol Sci. 2026年27卷15期
Colorectal cancer (CRC) remains a major cause of cancer mortality worldwide, highlighting the need for novel molecular targets and alternative therapeutic strategies. TYRO3, a member of the TAM receptor tyrosine kinase family, has been associated with tumor progression and poor prognosis in CRC. In this study, the effects of the natural compounds Meleagrin and Cucurbitacin B on TYRO3 expression and CRC cell behavior were investigated in HCT-116 and HT-29 cells. Cell proliferation, apoptosis, migration, and TYRO3 expression were evaluated using functional and expression-based analyses. Both compounds modulated TYRO3 expression and suppressed proliferation and wound closure dynamics in CRC cells. Cucurbitacin B exerted more pronounced antiproliferative and pro-apoptotic effects, whereas Meleagrin demonstrated antiproliferative activity with comparatively lower effects on normal colon epithelial cells (CCD 841 CoN), suggesting a potentially more favorable selectivity profile. Collectively, these findings support further mechanistic investigation of TYRO3-modulating natural compounds as potential therapeutic candidates for CRC.
49. PARP Inhibitor Sensitivity in Tumors Harboring Non-BRCA Homologous Recombination Gene Alterations: Current Evidence Across Ovarian, Breast, Prostate, and Pancreatic Cancers.
作者: Elizabeth Santana Dos Santos.;André Luiz Cicilini.;Maria Fernanda Evangelista Simões.;Maria Baz.;Sandrine M Caputo.;Etienne Rouleau.
来源: Int J Mol Sci. 2026年27卷15期
Poly(ADP-ribose) polymerase inhibitors (PARPis) have demonstrated remarkable efficacy in tumors carrying BRCA1/2 pathogenic variants (PVs) through the mechanism of synthetic lethality. PVs in other homologous recombination (HR) genes may also impair homologous recombination repair and confer sensitivity to PARPis; however, their predictive value remains uncertain and appears to vary according to the affected gene and tumor type. We review and critically discuss the current evidence regarding the predictive value of non-BRCA HR gene pathogenic variants as biomarkers of PARPi sensitivity across ovarian, breast, prostate, and pancreatic cancers. A narrative review was conducted between October 2023 and December 2025, first identifying pivotal clinical trials of PARP inhibitors across ovarian, breast, prostate, and pancreatic cancers, followed by a targeted search of PubMed, Embase, Web of Science, and Google Scholar for relevant preclinical and clinical studies. Seventeen clinical studies and multiple preclinical reports were analyzed regarding genomic frequency, HRD association, and treatment response. Preclinical studies consistently demonstrated increased PARPi sensitivity in models with alterations in several non-BRCA HR genes. Clinical evidence, however, was heterogeneous. PALB2 demonstrated the strongest and most consistent association with PARPi benefit across tumor types, while RAD51C and RAD51D also showed clinically meaningful activity, particularly in ovarian cancer. In contrast, evidence supporting PARPi sensitivity in tumors harboring ATM, CHEK2, CDK12, and several other HR gene alterations remained limited or inconsistent. Differences in gene function, biallelic inactivation, variant type, and current limitations of HRD companion diagnostic assays likely contribute to the observed variability in clinical response. Non-BRCA HR gene alterations represent promising predictive biomarkers for PARPi therapy but should not be considered a homogeneous group. Future biomarker-driven studies integrating comprehensive genomic profiling and functional assessment of homologous recombination deficiency are needed to refine patient selection and optimize the clinical application of PARPis beyond BRCA1/2-associated cancers.
50. Quinoa (Chenopodium quinoa Willd.) Saponins and Their Pharmaceutical Potential: A Review.
作者: Stella Karydogianni.;Ioannis Roussis.;Myrto Chatzitriantafyllou.;Stavroula Kallergi.;Panteleimon Stavropoulos.;Antonios Mavroeidis.;Dimitrios Bilalis.;Ioanna Kakabouki.
来源: Int J Mol Sci. 2026年27卷15期
This review provides an updated and comprehensive assessment of the current literature on quinoa (Chenopodium quinoa Willd.) saponins, with particular emphasis on pharmacological effects. Quinoa (Chenopodium quinoa Willd.) is an annual plant native to South America. Quinoa seeds are characterized by high nutritional value and are rich in proteins, lipids, carbohydrates, minerals, and saponins. Saponins are found in quinoa seeds and impart a bitter taste, which is why they are typically removed before seed consumption. Saponins have been characterized as antinutritional agents, but in recent years they have been investigated for their pharmaceutical applications. Protocols have been developed for the extraction of saponins from seeds, such as conventional solid-liquid extraction (maceration), ultrasound-assisted extraction, microwave-assisted extraction, enzyme-assisted extraction, and pressurized liquid extraction. Ultrasound-assisted extraction and microwave-assisted extraction are considered the most suitable methods for quinoa saponins. Quinoa saponins have shown promise as vaccine adjuvants. Furthermore, they have demonstrated direct anticancer activity, inducing apoptosis and inhibiting the proliferation of breast and colon cancer cells. In general, saponins can induce hemolysis at high concentrations through membrane disruption, primarily via lipid solubilization or pore formation. However, hemolytic activity varies significantly among different saponins and depends on their chemical structure and concentration. In vivo, they have not recorded adverse side effects at doses below 50 mg/kg body weight per day. More than 40 triterpenoid saponins, mainly derived from oleanolic acid, ederagenin, phytolaccagenic acid, and sergianic acid, have been identified in quinoa. Overall, although quinoa saponins have traditionally been considered antinutritional compounds, accumulating evidence indicates that they possess promising pharmacological properties, particularly as anticancer agents.
51. Autophagy in Melanoma: Molecular Mechanisms and Therapeutic Perspectives.
Melanoma is a malignant tumor that originates in pigment-producing cells called melanocytes. This type of cancer remains a major public health challenge due to its high metastatic potential and resistance to treatment. Autophagy is a catabolic process that enables the controlled degradation of damaged cellular organelles and unnecessary or abnormal macromolecules. Its primary function is to maintain intracellular homeostasis and cell survival. There are three main types of autophagy: macroautophagy, microautophagy and chaperone-mediated autophagy (CMA). The role of autophagy in oncogenesis is multifaceted and context-dependent-depending on the type of cancer and its stage of development. Autophagy can either promote tumor progression or act as a tumor-suppressive mechanism. Factors influencing the role of autophagy in cancer include inflammation, crosstalk with apoptosis and resistance to anticancer therapies. Current research is focused on the use of both autophagy inhibitors and autophagy inducers as potential strategies to improve the effectiveness of melanoma treatment.
52. Bacterioruberin from Haloferax mediterranei Triggers Cytotoxic and Pro-Oxidant Effects in Different Solid Tumour Models, Effectively Targeting P-gp-Resistant Lung Cancer Cells.
作者: Andrés Baeza-Morales.;Sandra Pascual-García.;Pascual Martínez-Peinado.;Alicia Navarro-Sempere.;Yolanda Segovia.;Miguel Medina-García.;Carolina Pujalte-Satorre.;Rúben Rodrigues.;Magdalena García.;Rosa María Martínez-Espinosa.;M Helena Vasconcelos.;José Miguel Sempere-Ortells.
来源: Int J Mol Sci. 2026年27卷15期
Bacterioruberin (BR), a C50 carotenoid produced by halophilic archaea, is emerging as a bioactive molecule with potential anticancer relevance, but its activity in solid tumour and multidrug-resistant (MDR) models remains poorly defined. This in vitro study evaluated the cytotoxic, antiproliferative and growth-inhibitory effects of a chemically characterized bacterioruberin-rich carotenoid extract (BRCE) from Haloferax (H.) mediterranei in A549 lung adenocarcinoma, BT-549 triple-negative breast cancer and WM115 melanoma cells, as well as in paired sensitive/multidrug resistant (MDR) lung cancer models. Metabolic activity and proliferation were assessed by thiazolyl blue tetrazolium bromide (MTT) and carboxyfluorescein diacetate succinimidyl ester (CFDA-SE) assays, intracellular reactive oxygen species (ROS) by 2',7'-dichlorodihydrofluorescein diacetate (H2DCFDA) staining, and apoptosis-associated morphology by acridine orange/ethidium bromide (AO/EB) staining. Growth inhibition in A549/A549-CDR2 and NCI-H460/NCI-H460/R cells was analysed by sulforhodamine B (SRB) assay, while P-glycoprotein (P-gp) function and expression were examined using Rhodamine 123 (Rh123) accumulation and Western blotting. BRCE reduced metabolic activity and proliferation in a concentration- and time-dependent manner, increased intracellular ROS levels, and induced apoptosis-associated morphological changes in A549 cells. In MDR models, BRCE retained comparable growth-inhibitory activity in sensitive and resistant cells and partially attenuated P-gp-related drug efflux. These findings support further mechanistic investigation of BR in solid tumour and MDR cancer models.
53. Deciphering the Leading-Edge Spatiotemporal Microenvironment of Hepatocellular Carcinoma for Targeted Drug Discovery Using SpaPred.
作者: Shibo Zhang.;Ziqiao Li.;Kexin Yu.;Guang Shi.;Yangguang Su.;Xin Hu.;Xiujie Chen.
来源: Int J Mol Sci. 2026年27卷15期
The leading-edge (LE) of hepatocellular carcinoma (HCC) is a critical region driving malignant progression and is closely associated with high patient mortality and marked intratumoral heterogeneity. Multi-omics integration identified elevated expression of SPARC and IGFBP7 in the LE region, which was associated with stromal remodeling-related transcriptional programs and an immune-depleted microenvironment. Cell-cell communication and pathway analyses further suggested potential links between LE-associated stromal states and pro-invasive signaling programs. Furthermore, we developed SpaPred, which demonstrated favorable performance in inferring the spatiotemporal heterogeneity of HCC at the spatial resolution. This model overcomes the limitations of existing algorithms in analyzing the composition of tissue spatial structures. Finally, integration of in silico trajectory-perturbation and pharmacogenomic drug-response analyses prioritized Oxaliplatin, Belinostat, and Temsirolimus as candidate compounds associated with LE-related transcriptional programs. These drug predictions are computational and require experimental validation. Collectively, SpaPred provides a hypothesis-generating framework for investigating spatial heterogeneity and candidate therapeutic vulnerabilities in HCC.
54. Current Research in Polypharmacology for Cancer Treatment Using Dual-Target Histone Deacetylase Inhibitors.
The review covers research on dual-target antitumor agents over the past five years. One of the targets is histone deacetylases (HDACs), while the second potential target is a protein group located both on the membrane surface (phosphatidylinositol 3-kinase (PI3K), anaplastic lymphoma kinase (ALK), receptor tyrosine kinase (AXL), tyrosine protein kinase (HER2), FMS-like tyrosine kinase (FLT3), and vascular endothelial growth factor receptor (VEGFR2)) and in the nucleus (serine/threonine protein kinase Wee1, DNA methyltransferase (DNMT), dual-specificity phosphatase (CDC25A), an enzyme from the cyclin-dependent kinase family (CDK9), dual-specificity tyrosine-serine/threonine kinase (DYRK2), and BET family proteins (BRD4, BD1, and BD2)). This review presents the results of studies on the inhibitory activity of various HDAC isoforms and other enzymes, as well as in vitro cytotoxicity studies on both neoplastic and healthy cells. It also includes selectivity studies, in vivo experiments (changes in tumor volume in mice) and oral bioavailability assessments. The review also describes the chemical structures of several dual-target agents and identifies the molecular fragments responsible for inhibiting different targets. Based on the studies reviewed in this paper, it can be concluded that some dual inhibitors have superior in vitro cytotoxicity and exhibit selectivity towards some tumor cells compared to monofunctional reference compounds. These findings may be useful for molecular design in the field of polypharmacology, with the aim of developing new dual-target molecules that exhibit improved antitumor activity and selectivity towards neoplastic cells.
55. Ni(II) Complexes with Mixed Ligands, Reduced N2O2 Schiff Bases and β-Diketones: Redox Modulation, ROS Generation and Antiproliferative Activity in Cancer Cells Associated with Caspase-3.
作者: Erika Lorena Cedillo-Gutiérrez.;Adrián Espinoza-Guillén.;Luis Felipe Hernández-Ayala.;Esther Reveles-Ayala.;Marcos Flores-Álamo.;Luis Antonio Ortiz-Frade.;Carmen Mejía.;Lena Ruiz-Azuara.
来源: Int J Mol Sci. 2026年27卷15期
This study addresses the development of nickel(II) complexes with potential antiproliferative activity. Two novel hydrogenated Schiff base ligands (N2O2-type), L1 and L2, were synthesized using environmentally friendly routes within a green chemistry framework and fully characterized. These ligands were coordinated to Ni(II) to obtain mixed octahedral complexes of general formulae [Ni(N2O2)(NO3)2] and [Ni(N2O2)(O-O)]NO3, where O-O denotes β-diketones (acetylacetonate and fluorinated analogs). Structural, spectroscopic, and electrochemical characterization, including cyclic voltammetry, was performed to evaluate the effect of ligand substitution on redox properties. Antiproliferative activity was assessed in HeLa cells. The results show that all complexes exhibit octahedral geometry, while [Ni(N2O2)(O-O)]NO3 complexes behave as 1:1 electrolytes, with redox potentials influenced by electron-withdrawing fluorinated substituents on the secondary ligand. Complexes containing fluorinated diketones and the methoxy-substituted L1 ligand displayed enhanced antiproliferative effects compared to non-fluorinated and unsubstituted analogues. Mechanistic studies suggest apoptosis induction associated with early caspase-3 activation, likely mediated by reactive oxygen species. Overall, ligand electronic effects play a key role in modulating redox behavior and biological activity in these nickel(II) complexes.
56. Targeting Kinase Signaling in Glioblastoma: Structural Optimization, Blood-Brain Barrier Dynamics and Combinatorial Translational Strategies.
作者: Diana Juanes-Gusano.;Beatriz Fernández-Roldán.;Rafael Coveñas.;Maruan Hijazi.
来源: Int J Mol Sci. 2026年27卷15期
Small-molecule kinase inhibitors offer a compelling therapeutic strategy for glioblastoma, yet their clinical efficacy remains severely limited by blood-brain barrier penetration and active efflux transporter extrusion. This review evaluates current medicinal chemistry approaches and translational paradigms to overcome these drug delivery and biological constraints. A critical analysis of the literature reveals that direct structural optimization faces a multidimensional balancing act; next-generation design must prioritize macrocyclization, structural rigidification, and bioisosteric capping to lower polar surface area and evade P-glycoprotein and BCRP efflux. Furthermore, carrier-mediated prodrugs targeting the LAT1 transporter provide a viable rescue strategy for highly potent scaffolds. Reviewing recent clinical failures, such as paxalisib and osimertinib, underscores that single-node monotherapies fail due to compensatory pathway hyperactivation and clonal heterogeneity, whereas multi-targeted agents or rational dual-node combinations prevent rapid tumor adaptation. Additionally, combining kinase inhibitors with DNA damage repair inhibitors, immune checkpoint modulation, or MR-guided focused ultrasound could provide powerful synergistic networks. Finally, bridging the translational gap requires complementing conventional serum-cultured cell lines with patient-derived glioma stem cells and orthotopic xenografts to better recapitulate the cellular architecture of the disease. Ultimately, overcoming the therapeutic challenges in glioblastoma demands a fundamental pivot toward rigorous neuro-pharmacological design and multi-lineage network oncology.
57. Amphiphilic Semisynthetic Triterpenoids Impair Survival Pathways and Suppress Clonogenic Growth in Multidrug-Resistant High-Risk Neuroblastoma.
作者: Silvana Alfei.;Cinzia Domenicotti.;Sara Tirendi.;Elaheh Khaledizadeh.;Dafni Graikioti.;Constantinos M Athanassopoulos.;Guendalina Zuccari.;Caterina Reggio.;Barbara Marengo.
来源: Int J Mol Sci. 2026年27卷15期
High-risk neuroblastoma (HR-NB) remains a major clinical challenge due to the emergence of therapy resistance. In this study, the anticancer effects of seven previously synthesized betulin (BET), betulinic acid (BA) and ursolic acid (UA) derivatives (1-7) and of their natural precursors BET, BA and UA (8-10) were investigated in HTLA NB cells, selected as the experimental model by MTT assay, to find a possible solution to drugs that have lost their effect. Dynamic light scattering (DLS) analysis showed that amphiphilic compounds 1 and 4-7 form nanovesicles (240-448 nm) in water, while all compounds have high positive ζ-potential (ζ-p, +28.5-+83.1 mV), supporting favourable membrane interaction and cellular uptake. Cytotoxic experiment results and related IC50 values were expressed as the mean ± SD of four independent experiments run in triplicate. Most derivatives exhibited a cytotoxic activity higher than that of their natural precursors and outperformed etoposide; they were particularly effective against the multidrug resistant (MDR) HTLA ER cells. Among them, the ursolic acid (UA) derivative 7 emerged as the most active compound, displaying sub-micromolar to low micromolar IC50 values and markedly improving the activity of native UA. Functional studies revealed that it induces complete suppression of clonogenic growth at low micromolar concentrations in both HTLA ER and parental HTLA 230 NB cells. In addition, a concentration-dependent downregulation of Akt, p-Akt, BMI1 and PARP, was observed consistently with a marked suppression of survival pathways and loss of cellular homeostasis. Collectively, our experiments, which need further direct investigation to confirm subsequent assumption, could suggest that compound 7 could kill cancer cells via a non-apoptotic, bioenergetic collapse mechanism. All of these findings suggest compound 7 as a promising mitochondria-targeted lead candidate and support amphiphilic triterpenoid derivatives as attractive platforms for overcoming multidrug resistance in high-risk NB.
58. Novel Functionalized Pyrrolopyridines to Target Brk.
作者: Erik Schmidt.;Jannis von Veh.;Anne-Christin Sarnow.;Wolfgang Sippl.;Julian Kowalski.;Niels Heise.;Frank Totzke.;Andreas Hilgeroth.
来源: Molecules. 2026年31卷15期
Increasing resistance against protein kinase inhibitors used in cancer therapies enforces the search for novel target structures to be addressed with favourable small-molecule inhibitors. One of these novel target structures is the tyrosine kinase Brk that is known to play a prominent role in breast cancer progression. Moreover, Brk overexpression in various kinds of cancer is associated with poor outcomes, making Brk an interesting target structure for potential treatment. So far, no class of promising Brk inhibitors has been identified.
59. Synthesis and Antitumor Mechanism of Emodin-Derived Transition Metal Complexes.
作者: Yumin Pan.;Ying Rui.;Biqun Zou.;Xiaoteng Jing.;Ruijie He.;Jianyi Liang.;Fangyao Li.
来源: Molecules. 2026年31卷15期
In this study, emodin was used as the starting material to synthesize two novel ligands, L1 and L2, containing bipyridine or phenanthroline moieties. Seven metal complexes (1-7) were obtained through coordination with Co, Rh, Ru, and Pt ions. Their structures were confirmed via NMR, HRMS, UV-Vis, IR, HPLC and SC-XRD analyses. The MTT assay showed that L1 and complex 2 selectively inhibited HepG-2 cells, with IC50 values of 8.77 μM and 6.10 μM, respectively. Both compounds exhibited stronger activity than cisplatin (9.05 μM) and low toxicity toward normal 293T cells. Mechanistic studies demonstrated that they induced G2/M phase arrest by regulating Cyclin B1 and P21 expression, which was accompanied by ROS and Ca2+ accumulation, mitochondrial membrane potential disruption, and activation of the Caspase-9/3 cascade. Complex 2 showed superior antitumor activity to L1, and this finding was further supported by molecular docking analysis. In sum, Rh(III) complex 2 was identified as a selective and mechanistically defined anti-hepatocellular carcinoma lead compound, providing a potential strategy for the development of natural product-based metal anticancer agents.
60. Synthesis and Biological Activity of Azolo[a]quinoxalines.
This review covers published data (mostly from 2019 to 2025) on the synthesis and biological activity of azolo[a]quinoxalines, including pyrazolo-, imidazo- and triazolo-annelated systems. We highlight that most research efforts are directed toward the design of anticancer agents, with additional applications as Toll-like receptor antagonists, monoamine oxidase inhibitors, opioid receptor modulators, PI3Kα inhibitors, tubulin polymerization inhibitors, GABAᴀ receptor modulators, VEGFR-2 kinase inhibitors, BRD9 binders, and anti-inflammatory, antimicrobial, and antifungal agents. Recent synthetic strategies include Cu-catalyzed oxidative annulations, I2-mediated C-H functionalization, metal-free cascade cyclization, and multicomponent reactions, often employing eco-friendly catalysts and reductants. A growing number of studies integrate virtual screening, molecular docking, and pharmacophore-based in silico approaches to guide lead discovery and optimization. Innovative drug delivery systems, such as nanogels and hybrid molecules combining azoloquinoxalines with pharmacophores like thalidomide, have also been explored. This review emphasizes both the medicinal chemistry aspects of azolo[a]quinoxalines and the synthetic methodologies for their preparation from the perspective of drug development and discovery.
|