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Search Results (1,254)

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Keywords = drug delivery to the brain

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12 pages, 722 KB  
Article
Local Sustained Delivery of Temozolomide via an Injectable Poly(Anhydride-Ester) Depot for Glioblastoma Therapy
by Hasan Slika, Christine Warwar Damouny, Aanya Shahani, Harshal A. Shah, William ElNemer, Esteban Velarde, Christopher Peters, Omar Selim, David Lee, Toriyn Dotson, Charles G. Eberhart, Peter Siman, Henry Brem, Abraham Domb and Betty Tyler
Pharmaceutics 2026, 18(8), 963; https://doi.org/10.3390/pharmaceutics18080963 - 5 Aug 2026
Abstract
Background/Objectives: Glioblastoma (GBM) remains one of the most aggressive primary brain malignancies, with limited therapeutic progress over the past two decades. Systemic administration of temozolomide (TMZ) is a pillar of clinical management but is constrained by poor brain penetration, short half-life, and [...] Read more.
Background/Objectives: Glioblastoma (GBM) remains one of the most aggressive primary brain malignancies, with limited therapeutic progress over the past two decades. Systemic administration of temozolomide (TMZ) is a pillar of clinical management but is constrained by poor brain penetration, short half-life, and systemic toxicity. Localized drug delivery systems represent a compelling approach to address these limitations. We report the development and evaluation of an injectable poly(sebacic acid–ricinoleic acid) poly(anhydride-ester) (pSARA) gel for sustained intratumoral delivery of TMZ. Methods: The pSARA gel was synthesized using a one-pot melt polycondensation technique, and its in vitro release dynamics were assessed using spectrophotometry. In vivo efficacy of the TMZ-loaded pSARA gel was evaluated as a monotherapy and as an adjuvant to radiation or surgical resection using an orthotopic 9L gliosarcoma rat model. Results: The formulation exhibits shear-thinning behavior, enabling syringe-based administration, and undergoes surface erosion in aqueous environments to achieve controlled drug release. In vivo, the TMZ-loaded pSARA significantly prolonged survival compared to controls and outperformed paclitaxel-loaded formulations. Furthermore, combination therapy with radiation or surgical resection demonstrated combined survival benefits, including long-term survivors. Conclusions: These findings highlight the translational potential of pSARA-based local delivery systems as an adjunct or alternative to systemic chemotherapy in GBM treatment. Full article
(This article belongs to the Section Drug Delivery and Controlled Release)
20 pages, 3979 KB  
Article
Acetyl L-Carnitine Nanoparticles Modulate Neuronal and Inflammatory Responses in In Vitro Cell Model
by Alessia Mariano, Benedetta Brugnoli, Iolanda Francolini, Sergio Ammendola and Anna Scotto d’Abusco
Int. J. Mol. Sci. 2026, 27(15), 7024; https://doi.org/10.3390/ijms27157024 - 5 Aug 2026
Abstract
Acetyl L-carnitine is an ester of the trimethylated amino acid L-carnitine with well-documented neuroprotective properties. Despite its ability to cross the blood–brain barrier, acetyl L-carnitine requires high and repeated doses to achieve and maintain therapeutic concentrations in the central nervous system. To overcome [...] Read more.
Acetyl L-carnitine is an ester of the trimethylated amino acid L-carnitine with well-documented neuroprotective properties. Despite its ability to cross the blood–brain barrier, acetyl L-carnitine requires high and repeated doses to achieve and maintain therapeutic concentrations in the central nervous system. To overcome these limitations, nanotechnology-based delivery systems have emerged as a promising strategy to improve drug bioavailability, targeting, and therapeutic efficacy. In this study, we evaluated the efficacy of nanoparticle-based formulations of acetyl L-carnitine in comparison with its conventional bulk form using in vitro cultures of SH-SY5Y neuroblastoma cell line. The ALC nanoparticles were produced through an organic solvent-free mechanical ball milling process employing a planetary ball mill. The dimension and stability of the nanoparticles were analyzed by Dynamic Light Scattering and Thermogravimetric Analysis. The biological effects were evaluated using quantitative Real Time-Polymerase Chain Reaction, Enzyme-linked Immunosorbent Assay and immunofluorescence experiments. ALC nanoparticles, at low concentration of nanoparticles compared to the non-nanoparticle form, were able to decrease the alarmin S100B release, pro-inflammatory interleukin mRNA and protein expression as well as p65 activation, confirming their involvement in NF-κB pathway. Moreover, it was able to stimulate the nerve growth factor release and to increase intracellular Ca++ levels, showing neuroprotective effects in addition to anti-inflammatory ones. Our findings allow us to highlight the therapeutic potential of ALC nanoparticles for neurological disorders, with the prospect of enhancing efficacy while reducing dosage and administration frequency. Full article
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37 pages, 8893 KB  
Review
Advances in Machine Learning-Enhanced PBPK Models for Brain-Targeted Drug Delivery via Nanocarriers: A Comprehensive Review
by Hanwen Hu and Ya Wang
J. Funct. Biomater. 2026, 17(8), 377; https://doi.org/10.3390/jfb17080377 - 3 Aug 2026
Viewed by 260
Abstract
Nanostructured drug-delivery materials—liposomes, polymeric nanoparticles, dendrimers, and inorganic carriers—have become central to pharmaceutical strategies for crossing the blood–brain barrier (BBB), where most candidate therapeutics fail to reach their targets. Their biological performance hinges on a coupled chain of vascular transport, BBB translocation, tissue [...] Read more.
Nanostructured drug-delivery materials—liposomes, polymeric nanoparticles, dendrimers, and inorganic carriers—have become central to pharmaceutical strategies for crossing the blood–brain barrier (BBB), where most candidate therapeutics fail to reach their targets. Their biological performance hinges on a coupled chain of vascular transport, BBB translocation, tissue diffusion, cellular uptake, and intracellular release, each of which is shaped by the nanocarrier’s size, surface chemistry, charge, and ligand functionalization. Physiologically based pharmacokinetic (PBPK) models describe this chain mechanistically but are limited by parameter uncertainty, simplified representations of the BBB, and coarse regional resolution. Machine learning (ML) can close these gaps by extracting nonlinear structure–transport–exposure relationships from heterogeneous experimental and clinical datasets. This review examines emerging ML–PBPK hybrid frameworks for predicting the brain biodistribution of nanostructured drug carriers. We compare regression, kernel, and deep learning approaches for parameter inference, model correction, and surrogate modeling; assess strategies for feature selection, uncertainty quantification, and interpretability; and discuss documented failure cases that bound the conditions under which these methods can be trusted. The review closes with recommendations on dataset standardization, software platform selection, and the responsible use of generative AI in pharmaceutical modeling, thus providing guidance for translating nanostructured material design into safer, more effective brain-targeted therapies. Full article
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19 pages, 95781 KB  
Article
Lymph-Targeted Resveratrol-NLCs Improve Oral Bioavailability: Validation via Rat Mesenteric Lymph Collection System and In Vivo Safety
by Xiaorui Zhang, Wenli Shi, Xinlin Yang, Yuchen Lin, Bo Yang, Hui Deng, Daojin Yu and Shuaizhen Zhou
Animals 2026, 16(15), 2337; https://doi.org/10.3390/ani16152337 - 31 Jul 2026
Viewed by 190
Abstract
Resveratrol (RES) is a natural polyphenolic compound characterized by poor aqueous solubility and significant first-pass metabolism, resulting in extremely low oral bioavailability. Although resveratrol-loaded nanostructured lipid carriers (RES-NLCs) have shown potential in enhancing oral absorption, direct experimental evidence for their intestinal lymphatic transport [...] Read more.
Resveratrol (RES) is a natural polyphenolic compound characterized by poor aqueous solubility and significant first-pass metabolism, resulting in extremely low oral bioavailability. Although resveratrol-loaded nanostructured lipid carriers (RES-NLCs) have shown potential in enhancing oral absorption, direct experimental evidence for their intestinal lymphatic transport mechanism remains limited, and existing explanations is largely based on indirect inference. RES-NLCs were prepared, and their pharmacokinetics and lymphatic transport characteristics were evaluated using a laboratory-established mesenteric lymph duct–jugular vein assisted reflux model in rats. Simultaneously, a 28-day repeated-dose toxicity study was conducted in ICR mice. Pharmacokinetic results showed that compared with RES-Sol, RES-NLCs increased Cmax by approximately 2.3-fold, improved relative bioavailability by 7-fold, and achieved an absolute bioavailability of 176%. The lymphatic transport model confirmed that RES-NLCs are absorbed via the intestinal lymphatic pathway. In the 28-day repeated-dose toxicity study, no mortality or obvious clinical symptoms were observed at a dose of 10 mg/kg. The RES-NLCs group exhibited increased liver coefficient and decreased spleen coefficient. Hematological analysis showed a mild increase in red blood cell count, along with decreases in mean corpuscular volume and red blood cell distribution width coefficient of variation. Serum biochemistry revealed significant elevations in aspartate aminotransferase and alanine aminotransferase (p = 9 × 10−5 and p = 4.02 × 10−7, respectively). However, no significant differences were observed in the organ coefficients of the heart, lungs, kidneys, or brain. Body composition and magnetic resonance imaging showed no abnormalities, and histopathological examination of major organs including the liver, stomach, and intestines revealed no structural damage. These findings provide direct evidence that RES-NLCs enhance the oral bioavailability by promoting intestinal lymphatic uptake, suggesting that this system may serve as an effective delivery platform for poorly soluble hydrophobic drugs. Full article
(This article belongs to the Section Animal Physiology)
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30 pages, 5551 KB  
Article
Peptide-Based Nanocomplexes Enable Transferrin-Mediated Uptake and p53-Driven Antitumor Activity in 2D and 3D Glioblastoma Models
by Leonor M. Castro, Ana R. Neves, Eric Vivès, Prisca Boisguérin, Ângela Sousa and Diana Costa
Int. J. Mol. Sci. 2026, 27(15), 6857; https://doi.org/10.3390/ijms27156857 - 30 Jul 2026
Viewed by 200
Abstract
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 [...] Read more.
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. Full article
(This article belongs to the Special Issue Research Progress of Nanocarriers)
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16 pages, 20263 KB  
Article
Development of Arginine Stearate-Based Solid Lipid Nanoparticles for Enhanced Idebenone Delivery: In Vitro Evaluation on Glioblastoma Model
by Stefania Petralito, Federica Curcio, Laura Di Muzio, Roberta Sole, Francesca Giordano, Adele Elisabetta Leonetti, Sonia Trombino and Roberta Cassano
Molecules 2026, 31(15), 2642; https://doi.org/10.3390/molecules31152642 - 29 Jul 2026
Viewed by 211
Abstract
Glioblastoma (GBM) is the most aggressive primary brain tumor and remains difficult to treat due to its invasive nature, therapeutic resistance, and the presence of the blood–brain barrier (BBB), which represents a major obstacle to effective drug delivery. This study describes the development [...] Read more.
Glioblastoma (GBM) is the most aggressive primary brain tumor and remains difficult to treat due to its invasive nature, therapeutic resistance, and the presence of the blood–brain barrier (BBB), which represents a major obstacle to effective drug delivery. This study describes the development of biocompatible solid lipid nanoparticles (SLNs) based on a novel arginine stearate derivative for the encapsulation of idebenone, a synthetic antioxidant with potential biological activity. The objective of this work was to design and characterize a lipid-based nanoparticulate system for idebenone delivery and to evaluate its physicochemical properties and preliminary in vitro biological effects. The nanoparticles were characterized by Dynamic Light Scattering (DLS) and Differential Scanning Calorimetry (DSC), and in vitro release profiles were investigated under different pH conditions. Antioxidant activity and cell viability assays were also performed in glioblastoma and non-tumorigenic cell lines. The results indicate successful formulation of idebenone-loaded SLNs with good encapsulation efficiency, maintained antioxidant activity, and promising physical stability over time as monitored by size analysis. The rationale behind the development of arginine stearate-based SLNSs is to optimize the performance of pharmaceutical active ingredients, such as idebenone, versus non-tumorigenic cells. Overall, these findings support the potential of the developed SLNs as a promising delivery system for further in vitro and in vivo investigations. Full article
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39 pages, 16587 KB  
Review
Rewiring the Glioma Ecosystem: Glial–Tumor Crosstalk, Immune Evasion, and Therapeutic Opportunities
by Anass Oukhdouch, Maria Dref, Youssef Nadir, Hayat Bouighajd, Wijdane Ait Marzouka, Imane Elbah, Basma Zinbi, Souad Sellami, Fatima Ezzahra Hazmiri and Hanane Rais
Neuroglia 2026, 7(3), 25; https://doi.org/10.3390/neuroglia7030025 - 26 Jul 2026
Viewed by 475
Abstract
Glioblastoma (GBM), classified as grade 4 of high-grade glioma (HGG) under the 2021 World Health Organization (WHO) Classification of Central Nervous System Tumors (WHO CNS-2021), is the most aggressive primary brain tumor in adults. However, with maximal surgical resection, concurrent radiotherapy, and temozolomide [...] Read more.
Glioblastoma (GBM), classified as grade 4 of high-grade glioma (HGG) under the 2021 World Health Organization (WHO) Classification of Central Nervous System Tumors (WHO CNS-2021), is the most aggressive primary brain tumor in adults. However, with maximal surgical resection, concurrent radiotherapy, and temozolomide (TMZ) chemotherapy, a median patient survival is still between 14 and 16 months. The persistent failure of current treatments is not only traceable to the molecular complexity of tumor cells but is fundamentally shaped by the tumor microenvironment (TME), in which non-neoplastic cells collectively constitute up to half of the total tumor mass. Reactive astrocytes, microglia, tumor-associated macrophages (TAMs), and oligodendrocyte precursor cells (OPCs) are no longer regarded as passive bystanders but as active architects of tumor progression, immune evasion, and therapy resistance. In this comprehensive review, we systematically describe the molecular mechanisms of glial–tumor crosstalk across all three major glial cells. Reactive astrocytes sustain tumor invasion and chemoresistance through connexin-43 gap junctions, bidirectional IL-6/JAK-STAT3 paracrine signaling, and extracellular vesicle-mediated oncogenic reprogramming. Microglia and TAMs undergo profound transcriptional reprogramming via PI3K/Akt/mTOR and CSF-1R signaling, adopting immunosuppressive states that exclude cytotoxic T cells, maintain glioma stem cell (GSC) niches, and drive angiogenesis. OPCs are now underexplored, accumulate at the tumor border, and cooperate with macrophages via Notch and Wnt/β-catenin pathways to establish a therapy-resistant GSC niche at the precise site of post-surgical recurrence. We further address glial–glial interactions as an independent regulatory layer and integrate recent spatial transcriptomic (ST) results revealing a structured, multi-glial niche that governs drug penetration. Finally, we critically evaluate emerging therapeutic strategies targeting these glial–tumor interfaces, including CSF-1R inhibitors, STAT3 modulators, CD47/SIRPα blockades, and engineered extracellular vesicle-based delivery systems. Understanding and targeting the glial ecosystem is an inseparable new field to explore. Full article
(This article belongs to the Special Issue Glial Regulation in Neurooncology)
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24 pages, 2860 KB  
Article
Chrono-Nanomedicine at the Barrier: Circadian Rhythms Influence the Delivery of Donepezil Across the BCSFB
by Maria Rodrigues Cardoso, Ana Catarina Duarte, Rafael Mineiro, Miguel Ferreira, Ângela Sousa, Eugenia Gallardo, Hiroshi Ishikawa, Christian Schwerk, Horst Schroten, Cecília Santos, Diana Costa and Telma Quintela
Int. J. Mol. Sci. 2026, 27(15), 6644; https://doi.org/10.3390/ijms27156644 - 25 Jul 2026
Viewed by 231
Abstract
To reach the target tissue within the central nervous system (CNS), drugs, such as donepezil (DNPZ), must overcome naturally occurring barriers. Despite its substantial pharmacological relevance, the blood–cerebrospinal fluid barrier (BCSFB) remains insufficiently studied. The BCSFB harbors a functional molecular clock that regulates, [...] Read more.
To reach the target tissue within the central nervous system (CNS), drugs, such as donepezil (DNPZ), must overcome naturally occurring barriers. Despite its substantial pharmacological relevance, the blood–cerebrospinal fluid barrier (BCSFB) remains insufficiently studied. The BCSFB harbors a functional molecular clock that regulates, for instance, the expression of membrane transporters. Thus, there has been an increasing interest in exploring chronotherapeutic strategies to enhance cerebral drug delivery. Additionally, nanotechnology constitutes a well-established approach for improving tissue-specific drug bioavailability within the CNS through, for example, the employment of chitosan (CS)-based nanosystems. Given the considerable potential of both approaches for the treatment of neurological disorders, we propose establishing an integrated chronotherapy–nanotechnology platform to optimize pharmacological regimens. In this context, this study aims to explore the influence of circadian rhythms in the transport of free and encapsulated DNPZ forms across an in vitro model of the BCSFB. We developed and characterized CS-based nanoparticles with promising properties for the enhanced delivery of DNPZ across brain barriers. We found that free and encapsulated drug forms of DNPZ display distinct patterns of circadian trafficking across BCSFB. In summary, our findings represent an important step toward the integration of chronotherapy and nanotechnology as a promising strategy to optimize therapeutic outcomes. Full article
(This article belongs to the Special Issue Current Research on Choroid Plexus)
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39 pages, 4271 KB  
Review
Natural Product-Derived Carbon Dots in Neurodegenerative Diseases: Advances in Blood–Brain-Barrier-Related Delivery, Neuroprotection, and Theranostics
by Kaixin Song, Xiang Gu, Na Sun, Rujia Xie, Ziyan Chen, Zili Wang, Ya Li and Lei Meng
Biology 2026, 15(15), 1235; https://doi.org/10.3390/biology15151235 - 25 Jul 2026
Viewed by 426
Abstract
The mechanisms underlying neurodegenerative diseases (NDDs) involve multiple pathological processes, such as abnormal protein aggregation, oxidative stress, neuroinflammation, mitochondrial dysfunction, and the disruption of neurovascular unit homeostasis. The blood–brain barrier (BBB) restricts drug exposure in the brain, posing a significant challenge for central [...] Read more.
The mechanisms underlying neurodegenerative diseases (NDDs) involve multiple pathological processes, such as abnormal protein aggregation, oxidative stress, neuroinflammation, mitochondrial dysfunction, and the disruption of neurovascular unit homeostasis. The blood–brain barrier (BBB) restricts drug exposure in the brain, posing a significant challenge for central nervous system delivery and for improving therapeutic efficacy. In recent years, carbon dots derived from natural products (CDs) have emerged as candidate materials for brain delivery and theranostic applications due to their small size, modifiable surfaces, fluorescence-tracking capability, and potential neuroprotective activity. This narrative review summarizes their sources, physicochemical characteristics, biological basis, interactions with the BBB, delivery strategies, neuroprotective effects, and imaging applications. Current evidence suggests that these CDs can alleviate oxidative stress and inflammatory responses, influence abnormal protein aggregation, and support drug delivery and fluorescence tracking in certain cellular and animal models. However, BBB permeability, brain fluorescence signals, brain parenchymal exposure, and therapeutic efficacy represent distinct levels of evidence and should not be considered interchangeable. Future studies should focus on strengthening material standardization, ensuring batch-to-batch consistency, characterizing absorption, distribution, metabolism, and excretion (ADME), conducting long-term safety assessments, and validating using humanized BBB models. Full article
(This article belongs to the Special Issue Neurodegeneration: Pathways and Mechanisms)
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40 pages, 1853 KB  
Review
Systematic Design and Evaluation of Nasal Drug Delivery for Central Nervous System Disease from Experimental to Clinical Application
by Xi-Rui Zhou, Yi Zhang, Qianqian Kong, Ziyue Wang, Yiming Luo, Hao Huang, Wensheng Qu, Zhiyuan Yu and Xiang Luo
Pharmaceutics 2026, 18(8), 916; https://doi.org/10.3390/pharmaceutics18080916 - 25 Jul 2026
Viewed by 466
Abstract
Disorders of the central nervous system (CNS) are intricate and often resistant conditions that create a significant global impact, affecting millions of individuals each year. The blood–brain barrier (BBB) acts as a protective mechanism for the brain against external substances, but it also [...] Read more.
Disorders of the central nervous system (CNS) are intricate and often resistant conditions that create a significant global impact, affecting millions of individuals each year. The blood–brain barrier (BBB) acts as a protective mechanism for the brain against external substances, but it also prevents most therapeutic agents from entering the CNS, leading to inadequate drug absorption and reduced effectiveness after diagnosis. Nasal drug delivery has emerged as a viable approach to bypass the BBB, facilitating direct access to the brain through the olfactory and trigeminal nerve routes. Although considerable research focuses on innovative nasal formulations with proven clinical promise, a critical gap persists: a systematic framework that bridges laboratory breakthroughs with clinical implementation. This review addresses this unmet need by integrating recent basic research advances with practical clinical requirements. We summarize nasal transport pathways, targeted design strategies, formulation optimization, and device engineering. Crucially, we propose a structured clinical evaluation framework built upon five essential pillars: targeting precision, pharmacokinetic performance, multi-organ safety profiling, device–drug clinical compatibility, and anatomical translation from animal models to humans. By mapping current research capabilities against clinical readiness criteria, this framework identifies translational bottlenecks and provides actionable guidance to accelerate the bench-to-bedside transition of intranasal drug delivery systems for CNS disorders. Full article
(This article belongs to the Special Issue CNS Drug Delivery: Recent Advances and Challenges)
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48 pages, 3599 KB  
Review
Targeting Kinase Signaling in Glioblastoma: Structural Optimization, Blood–Brain Barrier Dynamics and Combinatorial Translational Strategies
by Diana Juanes-Gusano, Beatriz Fernández-Roldán, Rafael Coveñas and Maruan Hijazi
Int. J. Mol. Sci. 2026, 27(15), 6590; https://doi.org/10.3390/ijms27156590 - 24 Jul 2026
Viewed by 423
Abstract
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 [...] Read more.
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. Full article
(This article belongs to the Special Issue Current Research on Cancer Biology and Therapeutics: Fourth Edition)
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28 pages, 5714 KB  
Review
Spinosin: A Critical Updated Review on Pharmacology, Pharmacokinetics, Toxicity and Translational Bottlenecks
by Keer Lu, Congyao Wang and Ji Li
Molecules 2026, 31(15), 2567; https://doi.org/10.3390/molecules31152567 - 23 Jul 2026
Viewed by 277
Abstract
Ziziphi Spinosae Semen (ZSS) is a traditional East Asian sedative–hypnotic herb with over 2000 years of clinical application. Spinosin (SPI), a characteristic flavone-C-glycoside, is the official quality marker and principal bioactive constituent of ZSS. Despite extensive research on SPI in recent years, a [...] Read more.
Ziziphi Spinosae Semen (ZSS) is a traditional East Asian sedative–hypnotic herb with over 2000 years of clinical application. Spinosin (SPI), a characteristic flavone-C-glycoside, is the official quality marker and principal bioactive constituent of ZSS. Despite extensive research on SPI in recent years, a timely, comprehensive review integrating its pharmacological mechanisms, pharmacokinetic barriers, and translational strategies remains absent. Herein, a systematic literature search was conducted up to 31 May 2026, and we synthesize all available evidence on SPI’s chemical properties, natural sources, pharmacology, pharmacokinetics, toxicology, structural derivatives, and advanced drug delivery systems. Our analysis reveals that SPI exerts broad-spectrum pharmacological activities via multi-target modulation of serotonergic/GABAergic neurotransmission, the ERK/CREB/BDNF axis, and the Nrf2/HO-1 pathway. However, its clinical translation is severely hindered by extremely low oral bioavailability (<1%) and limited blood–brain barrier penetration due to poor aqueous solubility and P-glycoprotein-mediated efflux. Novel formulations have achieved up to 5-fold enhancement in oral bioavailability in preclinical models. While toxicological studies support a favorable safety profile, long-term toxicity and human pharmacokinetic data are lacking. This review critically discusses key translational bottlenecks and proposes evidence-based future directions to advance SPI as a natural neurotherapeutic agent. Full article
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18 pages, 6279 KB  
Article
Feasibility Study of Nose-to-Brain Delivery of Galantamine for Alzheimer’s Disease: Enhancing Olfactory-Region Deposition to Improve Therapeutic Efficacy
by Chuangxin Chen, Chunying Leung, Zizhao Zhai, Guanlin Wang, Rui Yang, Qiuyi Hu, Xiao Yue, Zhongxuan Yao, Ziyu Zhao and Xuejuan Zhang
Pharmaceutics 2026, 18(7), 885; https://doi.org/10.3390/pharmaceutics18070885 - 20 Jul 2026
Viewed by 417
Abstract
Background: Alzheimer’s disease (AD) is the seventh leading cause of death worldwide, posing a substantial global health burden. Although galantamine (GNT) is a first-line clinical drug for AD treatment, its therapeutic efficacy is constrained by inefficient brain delivery across the blood–brain barrier [...] Read more.
Background: Alzheimer’s disease (AD) is the seventh leading cause of death worldwide, posing a substantial global health burden. Although galantamine (GNT) is a first-line clinical drug for AD treatment, its therapeutic efficacy is constrained by inefficient brain delivery across the blood–brain barrier (BBB). Nose-to-brain delivery represents a promising route to bypass the BBB. However, its efficiency remains limited by insufficient drug deposition in the anatomically restricted olfactory region. In this study, we developed a galantamine nasal spray (GNT-NS) with enhanced olfactory region deposition and evaluated its feasibility for nose-to-brain delivery in AD treatment. Methods: We optimized the formulation by systematically investigating the cascade relationship among formulation physicochemical properties, spray performance, and olfactory region deposition. Nasal deposition distribution was quantitatively evaluated using a physiologically realistic 3D-printed human nasal cavity model reconstructed from clinical magnetic resonance imaging (MRI) data. Further, the in vivo biodistribution and therapeutic efficacy of GNT-NS were evaluated in AD rats. Results: The optimized formulation P3 achieved an olfactory region fraction of 23.85%, markedly exceeding that of the unoptimized formulation P0. Subsequent in vivo biodistribution studies showed that P3 produced higher brain drug exposure than both intranasally administered P0 and the commercial oral formulation. Further pharmacodynamic studies demonstrated that GNT-NS significantly improved cognitive and behavioral deficits in AD rats, exhibiting superior therapeutic efficacy over commercially available oral galantamine tablets. Conclusions: Collectively, this study proposes a cascade regulation strategy linking formulation physicochemical properties, spray performance, and olfactory region deposition and demonstrates that optimizing nasal spray properties can enhance olfactory deposition, increase brain exposure and improve therapeutic efficacy. These findings provide a useful reference for the design of nose-to-brain delivery formulations for AD and other central nervous system diseases. Full article
(This article belongs to the Special Issue Nasal and Inhalable Drug Delivery Systems)
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22 pages, 2244 KB  
Review
Hirudin as a Therapeutic and Brain-Delivery Platform: From Stroke to Central Nervous System Disorders
by Yufei Sun, Qiang Fu, Kunyao Deng, Hongjie Zhang, Zhong Zuo, Zhonggui He and Zhijun Yang
Int. J. Mol. Sci. 2026, 27(14), 6388; https://doi.org/10.3390/ijms27146388 - 18 Jul 2026
Viewed by 458
Abstract
Crossing the blood–brain barrier (BBB) remains a central obstacle in central nervous system (CNS) therapeutics. Hirudin, a 65-amino acid, disulfide-stabilized, direct thrombin inhibitor with a long history in Traditional Chinese Medicine, has shown compelling efficacy in thrombotic disorders and mounting neuroprotective activity in [...] Read more.
Crossing the blood–brain barrier (BBB) remains a central obstacle in central nervous system (CNS) therapeutics. Hirudin, a 65-amino acid, disulfide-stabilized, direct thrombin inhibitor with a long history in Traditional Chinese Medicine, has shown compelling efficacy in thrombotic disorders and mounting neuroprotective activity in preclinical stroke models, with supportive clinical signals. Although few studies have directly quantified its BBB permeability, available evidence indicates low but measurable brain exposure under pathological conditions, likely via paracellular leakage rather than receptor-mediated transport. To extend its therapeutic reach in cerebrovascular diseases and mitigate bleeding risk, researchers have engineered hirudin using nanocarrier encapsulation, hydrogel-based delivery systems, prodrug strategies, and other methods to enhance targeting, prolong half-life, and localize activation. These approaches also enable synergistic combinations with established CNS drugs and may facilitate delivery of co-therapeutics to the brain. This review synthesizes current evidence for hirudin in stroke, neurodegeneration, psychiatric disorders, and brain tumors; evaluates its context-dependent BBB access; and outlines a translational agenda centered on quantitative brain pharmacokinetics, pathology-guided targeting, stimulus-responsive formulations, controlled clinical evaluation, and rigorous management of bleeding risk and chemistry, manufacturing, and controls (CMC) readiness. Full article
(This article belongs to the Special Issue From Molecular Insights to Novel Therapies: Neurological Diseases)
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22 pages, 374 KB  
Review
Integrating Endovascular Drug Delivery into the Therapeutic Landscape of Glioblastoma
by Zahra Hasanpour-Segherlou, Abdolreza Alikhani, Luca Bertola, Connor Rupp, Maya Haghighi, Jerick Kim, Clayton Rawson, Andrea Baloi, Fatemehsadat Hosseini, Mehrdad Pahlevani and Brandon Lucke-Wold
Cancers 2026, 18(14), 2278; https://doi.org/10.3390/cancers18142278 - 15 Jul 2026
Viewed by 349
Abstract
Glioblastoma (GBM) is the most common and aggressive primary brain tumor, characterized by poor prognosis and a median survival of 12–18 months despite standard therapies such as surgery, radiation, and temozolomide chemotherapy. Its high cellular heterogeneity, along with complex mechanisms of therapy resistance, [...] Read more.
Glioblastoma (GBM) is the most common and aggressive primary brain tumor, characterized by poor prognosis and a median survival of 12–18 months despite standard therapies such as surgery, radiation, and temozolomide chemotherapy. Its high cellular heterogeneity, along with complex mechanisms of therapy resistance, presents significant challenges for effective treatment. Conventional systemic chemotherapy is limited by the blood–brain barrier (BBB), systemic toxicity, and insufficient drug penetration into the tumor microenvironment. Emerging therapeutic strategies aim to overcome these barriers through novel chemotherapeutic agents, targeted therapies, immunotherapies, and smart drug delivery systems. Endovascular drug delivery, particularly super-selective intra-arterial cerebral infusion (SSIACI), offers a minimally invasive approach to directly target the tumor vasculature, potentially increasing drug concentration at the tumor site while reducing systemic exposure. Complementary techniques, such as MR-guided focused ultrasound, hyperosmotic disruption, and nanoparticle-based carriers, are being explored to enhance BBB penetration and retention of therapeutics within the tumor. Ongoing clinical trials and translational studies provide insights into optimizing these approaches, with future directions focused on precision medicine, biomarker-driven patient selection, and combination therapies. Integrating endovascular strategies with innovative chemotherapies and immunotherapies may transform GBM management, but further research is required to establish their efficacy and safety in clinical practice. Full article
(This article belongs to the Special Issue Advances in Diagnostics and Treatments for Glioblastoma)
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