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1.
Nat Commun ; 15(1): 3731, 2024 May 03.
Article En | MEDLINE | ID: mdl-38702306

Molecular recognition of proteins is key to their biological functions and processes such as protein-protein interactions (PPIs). The large binding interface involved and an often relatively flat binding surface make the development of selective protein-binding materials extremely challenging. A general method is reported in this work to construct protein-binding polymeric nanoparticles from cross-linked surfactant micelles. Preparation involves first dynamic covalent chemistry that encodes signature surface lysines on a protein template. A double molecular imprinting procedure fixes the binding groups on the nanoparticle for these lysine groups, meanwhile creating a binding interface complementary to the protein in size, shape, and distribution of acidic groups on the surface. These water-soluble nanoparticles possess excellent specificities for target proteins and sufficient affinities to inhibit natural PPIs such as those between cytochrome c (Cytc) and cytochrome c oxidase (CcO). With the ability to enter cells through a combination of energy-dependent and -independent pathways, they intervene apoptosis by inhibiting the PPI between Cytc and the apoptotic protease activating factor-1 (APAF1). Generality of the preparation and the excellent molecular recognition of the materials have the potential to make them powerful tools to probe protein functions in vitro and in cellulo.


Cytochromes c , Electron Transport Complex IV , Nanoparticles , Polymers , Nanoparticles/chemistry , Cytochromes c/metabolism , Cytochromes c/chemistry , Humans , Polymers/chemistry , Polymers/metabolism , Electron Transport Complex IV/metabolism , Electron Transport Complex IV/chemistry , Molecular Imprinting/methods , Protein Binding , Apoptosis , Micelles , HeLa Cells , Animals
2.
J Nanobiotechnology ; 22(1): 223, 2024 May 03.
Article En | MEDLINE | ID: mdl-38702815

Cardiac muscle targeting is a notoriously difficult task. Although various nanoparticle (NP) and adeno-associated viral (AAV) strategies with heart tissue tropism have been developed, their performance remains suboptimal. Significant off-target accumulation of i.v.-delivered pharmacotherapies has thwarted development of disease-modifying cardiac treatments, such as gene transfer and gene editing, that may address both rare and highly prevalent cardiomyopathies and their complications. Here, we present an intriguing discovery: cargo-less, safe poly (lactic-co-glycolic acid) particles that drastically improve heart delivery of AAVs and NPs. Our lead formulation is referred to as ePL (enhancer polymer). We show that ePL increases selectivity of AAVs and virus-like NPs (VLNPs) to the heart and de-targets them from the liver. Serotypes known to have high (AAVrh.74) and low (AAV1) heart tissue tropisms were tested with and without ePL. We demonstrate up to an order of magnitude increase in heart-to-liver accumulation ratios in ePL-injected mice. We also show that ePL exhibits AAV/NP-independent mechanisms of action, increasing glucose uptake in the heart, increasing cardiac protein glycosylation, reducing AAV neutralizing antibodies, and delaying blood clearance of AAV/NPs. Current approaches utilizing AAVs or NPs are fraught with challenges related to the low transduction of cardiomyocytes and life-threatening immune responses; our study introduces an exciting possibility to direct these modalities to the heart at reduced i.v. doses and, thus, has an unprecedented impact on drug delivery and gene therapy. Based on our current data, the ePL system is potentially compatible with any therapeutic modality, opening a possibility of cardiac targeting with numerous pharmacological approaches.


Dependovirus , Genetic Vectors , Myocardium , Nanoparticles , Polylactic Acid-Polyglycolic Acid Copolymer , Dependovirus/genetics , Animals , Nanoparticles/chemistry , Mice , Myocardium/metabolism , Polylactic Acid-Polyglycolic Acid Copolymer/chemistry , Humans , Mice, Inbred C57BL , Heart , Genetic Therapy/methods , Gene Transfer Techniques , Liver/metabolism , Viral Tropism , HEK293 Cells
3.
Drug Des Devel Ther ; 18: 1469-1495, 2024.
Article En | MEDLINE | ID: mdl-38707615

This manuscript offers a comprehensive overview of nanotechnology's impact on the solubility and bioavailability of poorly soluble drugs, with a focus on BCS Class II and IV drugs. We explore various nanoscale drug delivery systems (NDDSs), including lipid-based, polymer-based, nanoemulsions, nanogels, and inorganic carriers. These systems offer improved drug efficacy, targeting, and reduced side effects. Emphasizing the crucial role of nanoparticle size and surface modifications, the review discusses the advancements in NDDSs for enhanced therapeutic outcomes. Challenges such as production cost and safety are acknowledged, yet the potential of NDDSs in transforming drug delivery methods is highlighted. This contribution underscores the importance of nanotechnology in pharmaceutical engineering, suggesting it as a significant advancement for medical applications and patient care.


Biological Availability , Nanotechnology , Solubility , Humans , Pharmaceutical Preparations/chemistry , Pharmaceutical Preparations/administration & dosage , Drug Delivery Systems , Nanoparticles/chemistry , Drug Carriers/chemistry , Animals
4.
Int J Nanomedicine ; 19: 3861-3890, 2024.
Article En | MEDLINE | ID: mdl-38708178

Introduction: Cystic fibrosis (CF) is associated with pulmonary Pseudomonas aeruginosa infections persistent to antibiotics. Methods: To eradicate pseudomonal biofilms, solid lipid nanoparticles (SLNs) loaded with quorum-sensing-inhibitor (QSI, disrupting bacterial crosstalk), coated with chitosan (CS, improving internalization) and immobilized with alginate lyase (AL, destroying alginate biofilms) were developed. Results: SLNs (140-205 nm) showed prolonged release of QSI with no sign of acute toxicity to A549 and Calu-3 cells. The CS coating improved uptake, whereas immobilized-AL ensured >1.5-fold higher uptake and doubled SLN diffusion across the artificial biofilm sputum model. Respirable microparticles comprising SLNs in carbohydrate matrix elicited aerodynamic diameters MMAD (3.54, 2.48 µm) and fine-particle-fraction FPF (65, 48%) for anionic and cationic SLNs, respectively. The antimicrobial and/or antibiofilm activity of SLNs was explored in Pseudomonas aeruginosa reference mucoid/nonmucoid strains as well as clinical isolates. The full growth inhibition of planktonic bacteria was dependent on SLN type, concentration, growth medium, and strain. OD measurements and live/dead staining proved that anionic SLNs efficiently ceased biofilm formation and eradicated established biofilms, whereas cationic SLNs unexpectedly promoted biofilm progression. AL immobilization increased biofilm vulnerability; instead, CS coating increased biofilm formation confirmed by 3D-time lapse confocal imaging. Incubation of SLNs with mature biofilms of P. aeruginosa isolates increased biofilm density by an average of 1.5-fold. CLSM further confirmed the binding and uptake of the labeled SLNs in P. aeruginosa biofilms. Considerable uptake of CS-coated SLNs in non-mucoid strains could be observed presumably due to interaction of chitosan with LPS glycolipids in the outer cell membrane of P. aeruginosa. Conclusion: The biofilm-destructive potential of QSI/SLNs/AL inhalation is promising for site-specific biofilm-targeted interventional CF therapy. Nevertheless, the intrinsic/extrinsic fundamentals of nanocarrier-biofilm interactions require further investigation.


Anti-Bacterial Agents , Biofilms , Chitosan , Liposomes , Nanoparticles , Pseudomonas Infections , Pseudomonas aeruginosa , Biofilms/drug effects , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/physiology , Humans , Pseudomonas Infections/drug therapy , Nanoparticles/chemistry , Chitosan/chemistry , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacokinetics , Drug Carriers/chemistry , Cystic Fibrosis/drug therapy , Cystic Fibrosis/microbiology , Lipids/chemistry , Lipids/pharmacology , Quorum Sensing/drug effects , A549 Cells , Alginates/chemistry
5.
Int J Nanomedicine ; 19: 3919-3942, 2024.
Article En | MEDLINE | ID: mdl-38708176

Typical physiological characteristics of tumors, such as weak acidity, low oxygen content, and upregulation of certain enzymes in the tumor microenvironment (TME), provide survival advantages when exposed to targeted attacks by drugs and responsive nanomedicines. Consequently, cancer treatment has significantly progressed in recent years. However, the evolution and adaptation of tumor characteristics still pose many challenges for current treatment methods. Therefore, efficient and precise cancer treatments require an understanding of the heterogeneity degree of various factors in cancer cells during tumor evolution to exploit the typical TME characteristics and manage the mutation process. The highly heterogeneous tumor and infiltrating stromal cells, immune cells, and extracellular components collectively form a unique TME, which plays a crucial role in tumor malignancy, including proliferation, invasion, metastasis, and immune escape. Therefore, the development of new treatment methods that can adapt to the evolutionary characteristics of tumors has become an intense focus in current cancer treatment research. This paper explores the latest understanding of cancer evolution, focusing on how tumors use new antigens to shape their "new faces"; how immune system cells, such as cytotoxic T cells, regulatory T cells, macrophages, and natural killer cells, help tumors become "invisible", that is, immune escape; whether the diverse cancer-associated fibroblasts provide support and coordination for tumors; and whether it is possible to attack tumors in reverse. This paper discusses the limitations of targeted therapy driven by tumor evolution factors and explores future strategies and the potential of intelligent nanomedicines, including the systematic coordination of tumor evolution factors and adaptive methods, to meet this therapeutic challenge.


Immunotherapy , Neoplasms , Tumor Microenvironment , Humans , Tumor Microenvironment/drug effects , Immunotherapy/methods , Neoplasms/drug therapy , Neoplasms/therapy , Neoplasms/immunology , Nanomedicine/methods , Animals , Nanoparticles/chemistry , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacology
6.
Int J Nanomedicine ; 19: 3805-3825, 2024.
Article En | MEDLINE | ID: mdl-38708177

Telomere is a protective structure located at the end of chromosomes of eukaryotes, involved in maintaining the integrity and stability of the genome. Telomeres play an essential role in cancer progression; accordingly, targeting telomere dynamics emerges as an effective approach for the development of cancer therapeutics. Targeting telomere dynamics may work through multifaceted molecular mechanisms; those include the activation of anti-telomerase immune responses, shortening of telomere lengths, induction of telomere dysfunction and constitution of telomerase-responsive drug release systems. In this review, we summarize a wide variety of telomere dynamics-targeted agents in preclinical studies and clinical trials, and reveal their promising therapeutic potential in cancer therapy. As shown, telomere dynamics-active agents are effective as anti-cancer chemotherapeutics and immunotherapeutics. Notably, these agents may display efficacy against cancer stem cells, reducing cancer stem levels. Furthermore, these agents can be integrated with the capability of tumor-specific drug delivery by the constitution of related nanoparticles, antibody drug conjugates and HSA-based drugs.


Antineoplastic Agents , Neoplasms , Telomerase , Telomere , Humans , Neoplasms/drug therapy , Neoplasms/therapy , Telomere/drug effects , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Telomerase/antagonists & inhibitors , Animals , Drug Delivery Systems/methods , Nanoparticles/chemistry , Immunotherapy/methods , Neoplastic Stem Cells/drug effects
7.
Int J Nanomedicine ; 19: 3907-3917, 2024.
Article En | MEDLINE | ID: mdl-38708183

Background: As highlighted by recent pandemic outbreaks, antiviral drugs are crucial resources in the global battle against viral diseases. Unfortunately, most antiviral drugs are characterized by a plethora of side effects and low efficiency/poor bioavailability owing to their insolubility. This also applies to the arylnaphthalide lignin family member, diphyllin (Diph). Diph acts as a vacuolar ATPase inhibitor and has been previously identified as a promising candidate with broad-spectrum antiviral activity. However, its physicochemical properties preclude its efficient administration in vivo, complicating preclinical testing. Methods: We produced human recombinant H- ferritin (HsaFtH) and used it as a delivery vehicle for Diph encapsulation through pH-mediated reversible reassembly of HsaFtH. Diph nanoformulation was subsequently thoroughly characterized and tested for its non-target cytotoxicity and antiviral efficiency using a panel of pathogenic viral strain. Results: We revealed that loading into HsaFtH decreased the undesired cytotoxicity of Diph in mammalian host cells. We also confirmed that encapsulated Diph exhibited slightly lower antiviral activity than free Diph, which may be due to the differential uptake mechanism and kinetics of free Diph and Diph@HsaFtH. Furthermore, we confirmed that the antiviral effect was mediated solely by Diph with no contribution from HsaFtH. Conclusion: It was confirmed that HsaFtH is a suitable vehicle that allows easy loading of Diph and production of highly homogeneous nanoparticles dispersion with promising broad-spectrum antiviral activity.


Antiviral Agents , Lignans , Recombinant Proteins , Humans , Antiviral Agents/pharmacology , Antiviral Agents/chemistry , Antiviral Agents/pharmacokinetics , Recombinant Proteins/chemistry , Vacuolar Proton-Translocating ATPases/antagonists & inhibitors , Vacuolar Proton-Translocating ATPases/metabolism , Hydrophobic and Hydrophilic Interactions , Animals , Nanoparticles/chemistry
8.
Int J Nanomedicine ; 19: 3943-3956, 2024.
Article En | MEDLINE | ID: mdl-38708179

Autoimmune diseases refer to a group of conditions where the immune system produces an immune response against self-antigens, resulting in tissue damage. These diseases have profound impacts on the health of patients. In recent years, with the rapid development in the field of biomedicine, engineered exosomes have emerged as a noteworthy class of biogenic nanoparticles. By precisely manipulating the cargo and surface markers of exosomes, engineered exosomes have gained enhanced anti-inflammatory, immunomodulatory, and tissue reparative abilities, providing new prospects for the treatment of autoimmune diseases. Engineered exosomes not only facilitate the efficient delivery of bioactive molecules including nucleic acids, proteins, and cytokines, but also possess the capability to modulate immune cell functions, suppress inflammation, and restore immune homeostasis. This review mainly focuses on the applications of engineered exosomes in several typical autoimmune diseases. Additionally, this article comprehensively summarizes the current approaches for modification and engineering of exosomes and outlines their prospects in clinical applications. In conclusion, engineered exosomes, as an innovative therapeutic approach, hold promise for the management of autoimmune diseases. However, while significant progress has been made, further rigorous research is still needed to address the challenges that engineered exosomes may encounter in the therapeutic intervention process, in order to facilitate their successful translation into clinical practice and ultimately benefit a broader population of patients.


Autoimmune Diseases , Exosomes , Exosomes/immunology , Humans , Autoimmune Diseases/therapy , Autoimmune Diseases/immunology , Animals , Nanoparticles/chemistry
9.
Int J Nanomedicine ; 19: 3827-3846, 2024.
Article En | MEDLINE | ID: mdl-38708180

Background: New treatment modalities for hepatocellular carcinoma (HCC) are desperately critically needed, given the lack of specificity, severe side effects, and drug resistance with single chemotherapy. Engineered bacteria can target and accumulate in tumor tissues, induce an immune response, and act as drug delivery vehicles. However, conventional bacterial therapy has limitations, such as drug loading capacity and difficult cargo release, resulting in inadequate therapeutic outcomes. Synthetic biotechnology can enhance the precision and efficacy of bacteria-based delivery systems. This enables the selective release of therapeutic payloads in vivo. Methods: In this study, we constructed a non-pathogenic Escherichia coli (E. coli) with a synchronized lysis circuit as both a drug/gene delivery vehicle and an in-situ (hepatitis B surface antigen) Ag (ASEc) producer. Polyethylene glycol (CHO-PEG2000-CHO)-poly(ethyleneimine) (PEI25k)-citraconic anhydride (CA)-doxorubicin (DOX) nanoparticles loaded with plasmid encoded human sulfatase 1 (hsulf-1) enzyme (PNPs) were anchored on the surface of ASEc (ASEc@PNPs). The composites were synthesized and characterized. The in vitro and in vivo anti-tumor effect of ASEc@PNPs was tested in HepG2 cell lines and a mouse subcutaneous tumor model. Results: The results demonstrated that upon intravenous injection into tumor-bearing mice, ASEc can actively target and colonise tumor sites. The lytic genes to achieve blast and concentrated release of Ag significantly increased cytokine secretion and the intratumoral infiltration of CD4/CD8+T cells, initiated a specific immune response. Simultaneously, the PNPs system releases hsulf-1 and DOX into the tumor cell resulting in rapid tumor regression and metastasis prevention. Conclusion: The novel drug delivery system significantly suppressed HCC in vivo with reduced side effects, indicating a potential strategy for clinical HCC therapy.


Carcinoma, Hepatocellular , Doxorubicin , Escherichia coli , Liver Neoplasms , Animals , Carcinoma, Hepatocellular/drug therapy , Carcinoma, Hepatocellular/therapy , Liver Neoplasms/drug therapy , Liver Neoplasms/therapy , Humans , Doxorubicin/pharmacology , Doxorubicin/chemistry , Doxorubicin/administration & dosage , Hep G2 Cells , Mice , Escherichia coli/drug effects , Hepatitis B Surface Antigens , Sulfotransferases/genetics , Nanoparticles/chemistry , Mice, Inbred BALB C , Drug Delivery Systems/methods , Xenograft Model Antitumor Assays
10.
Carbohydr Polym ; 337: 122118, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38710546

Chrysin and rutin are natural polyphenols with multifaceted biological activities but their applications face challenges in bioavailability. Encapsulation using starch nanoparticles (SNPs) presents a promising approach to overcome the limitations. In this study, chrysin and rutin were encapsulated into self-assembled SNPs derived from quinoa (Q), maize (M), and waxy maize (WM) starches using enzyme-hydrolysis. Encapsulation efficiencies ranged from 74.3 % to 79.1 %, with QSNPs showing superior performance. Simulated in vitro digestion revealed sustained release and higher antioxidant activity in QSNPs compared to MSNPs and WMSNPs. Variations in encapsulation properties among SNPs from different sources were attributed to the differences in the structural properties of the starches. The encapsulated SNPs exhibited excellent stability, retaining over 90 % of chrysin and 85 % of rutin after 15 days of storage. These findings underscore the potential of SNP encapsulation to enhance the functionalities of chrysin and rutin, facilitating the development of fortified functional foods with enhanced bioavailability and health benefits.


Antioxidants , Chenopodium quinoa , Flavonoids , Nanoparticles , Rutin , Starch , Zea mays , Flavonoids/chemistry , Rutin/chemistry , Zea mays/chemistry , Nanoparticles/chemistry , Chenopodium quinoa/chemistry , Starch/chemistry , Antioxidants/chemistry , Antioxidants/pharmacology , Biological Availability , Hydrolysis
11.
Carbohydr Polym ; 337: 122145, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38710553

Hyaluronic acid (HA) has emerged as a promising biopolymer for various biomedical applications due to its biocompatibility, biodegradability, and intrinsic ability to interact with cell surface receptors, making it an attractive candidate for drug delivery systems and tissue engineering. Chemical modification of HA has opened up versatile possibilities to tailor its properties, enabling the development of advanced drug delivery systems and biomaterials with enhanced functionalities and targeted applications. This review analyzes the strategies and applications of chemically modified HA in the field of drug delivery and biomaterial development. The first part of the review focuses on the different methods and functional groups used for the chemical modification of HA, highlighting the impact of these modifications on its physicochemical properties, degradation behavior and interactions with drugs. The second part of the review evaluates the use of chemically modified HA in the development of advanced biomedical materials including nano- and microparticles, hydrogels and mucoadhesive materials with tailored drug release profiles, site-specific targeting and stimuli-responsive behavior. Thus, the review consolidates the current advances and future perspectives in the field of chemical modification of HA, underscoring its immense potential to drive the development of advanced drug delivery systems and biomaterials with diverse biomedical applications.


Biocompatible Materials , Drug Delivery Systems , Hyaluronic Acid , Hydrogels , Hyaluronic Acid/chemistry , Humans , Drug Delivery Systems/methods , Biocompatible Materials/chemistry , Hydrogels/chemistry , Animals , Drug Liberation , Drug Carriers/chemistry , Tissue Engineering/methods , Nanoparticles/chemistry
12.
AAPS PharmSciTech ; 25(5): 97, 2024 May 06.
Article En | MEDLINE | ID: mdl-38710894

Pancreatic ductal adenocarcinoma (PDAC) is one of the highly fatal types of cancer with high mortality/incidence. Considering the crucial role of vascular endothelial growth factor (VEGF) in PDAC progression, its inhibition can be a viable strategy for the treatment. Pazopanib, a second-generation VEGF inhibitor, is approved for the treatment of various oncological conditions. However, due to associated limitations like low oral bioavailability (14-39%), high inter/intra-subject variability, stability issues, etc., high doses (800 mg) are required, which further lead to non-specific toxicities and also contribute toward cancer resistance. Thus, to overcome these challenges, pazopanib-loaded PEGylated nanoliposomes were developed and evaluated against pancreatic cancer cell lines. The nanoliposomes were prepared by thin-film hydration method, followed by characterization and stability studies. This QbD-enabled process design successfully led to the development of a suitable pazopanib liposomal formulation with desirable properties. The % entrapment of PZP-loaded non-PEGylated and PEGylated nanoliposomes was found to be 75.2% and 84.9%, respectively, whereas their particle size was found to be 129.7 nm and 182.0 nm, respectively. The developed liposomal formulations exhibited a prolonged release and showed desirable physicochemical properties. Furthermore, these liposomal formulations were also assessed for in vitro cell lines, such as cell cytotoxicity assay and cell uptake. These studies confirm the effectiveness of developed liposomal formulations against pancreatic cancer cell lines. The outcomes of this work provide encouraging results and a way forward to thoroughly investigate its potential for PDAC treatment.


Carcinoma, Pancreatic Ductal , Indazoles , Liposomes , Nanoparticles , Pancreatic Neoplasms , Particle Size , Pyrimidines , Sulfonamides , Indazoles/administration & dosage , Indazoles/pharmacology , Humans , Sulfonamides/administration & dosage , Sulfonamides/pharmacology , Sulfonamides/chemistry , Pyrimidines/administration & dosage , Pyrimidines/pharmacology , Pyrimidines/chemistry , Pyrimidines/pharmacokinetics , Cell Line, Tumor , Pancreatic Neoplasms/drug therapy , Carcinoma, Pancreatic Ductal/drug therapy , Nanoparticles/chemistry , Polyethylene Glycols/chemistry , Antineoplastic Agents/administration & dosage , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Cell Survival/drug effects , Drug Liberation , Chemistry, Pharmaceutical/methods
13.
AAPS PharmSciTech ; 25(5): 95, 2024 May 06.
Article En | MEDLINE | ID: mdl-38710921

Verapamil hydrochloride (VRP), an antihypertensive calcium channel blocker drug has limited bioavailability and short half-life when taken orally. The present study was aimed at developing cubosomes containing VRP for enhancing its bioavailability and targeting to brain for cluster headache (CH) treatment as an off-label use. Factorial design was conducted to analyze the impact of different components on entrapment efficiency (EE%), particle size (PS), zeta potential (ZP), and percent drug release. Various in-vitro characterizations were performed followed by pharmacokinetic and brain targeting studies. The results revealed the significant impact of glyceryl monooleate (GMO) on increasing EE%, PS, and ZP of cubosomes with a negative influence on VRP release. The remarkable effect of Poloxamer 407 (P407) on decreasing EE%, PS, and ZP of cubosomes was observed besides its influence on accelerating VRP release%. The DSC thermograms indicated the successful entrapment of the amorphous state of VRP inside the cubosomes. The design suggested an optimized formulation containing GMO (50% w/w) and P407 (5.5% w/w). Such formulation showed a significant increase in drug permeation through nasal mucosa with high Er value (2.26) when compared to VRP solution. Also, the histopathological study revealed the safety of the utilized components used in the cubosomes preparation. There was a significant enhancement in the VRP bioavailability when loaded in cubosomes owing to its sustained release favored by its direct transport to brain. The I.N optimized formulation had greater BTE% and DTP% at 183.53% and 90.19%, respectively in comparison of 41.80% and 59% for the I.N VRP solution.


Administration, Intranasal , Brain , Drug Delivery Systems , Drug Liberation , Glycerides , Nasal Mucosa , Particle Size , Verapamil , Administration, Intranasal/methods , Animals , Brain/metabolism , Brain/drug effects , Drug Delivery Systems/methods , Verapamil/administration & dosage , Verapamil/pharmacokinetics , Tissue Distribution , Glycerides/chemistry , Nasal Mucosa/metabolism , Biological Availability , Rats , Calcium Channel Blockers/pharmacokinetics , Calcium Channel Blockers/administration & dosage , Poloxamer/chemistry , Male , Chemistry, Pharmaceutical/methods , Rats, Wistar , Nanoparticles/chemistry
16.
AAPS PharmSciTech ; 25(5): 104, 2024 May 09.
Article En | MEDLINE | ID: mdl-38724836

Salinomycin (Sal) has been recently discovered as a novel chemotherapeutic agent against various cancers including prostate cancer which is one of the most commonly diagnosed cancers affecting male populations worldwide. Herein we designed salinomycin nanocarrier (Sal-NPs) to extend its systemic circulation and to increase its anticancer potential. Prepared nanoform showed high encapsulation and sustained release profile for salinomycin. The present study elucidated the cytotoxicity and mechanism of apoptotic cell death of Sal-NPs against prostate cancer both in vitro and in vivo. At all measured concentrations, Sal-NPs showed more significant cytotoxicity to DU145 and PC3 cells than Sal alone. This effect was mediated by apoptosis, as confirmed by ROS generation, loss of MMP and cell cycle arrest at the G1 phase in both cells. Sal-NPs efficiently inhibited migration of PC3 and DU145 cells via effectively downregulating the epithelial mesenchymal transition. Also, the results confirmed that Sal-NPs can effectively inhibit the induction of Prostate adenocarcinoma in male Wistar rats. Sal-NPs treatment exhibited a decrease in tumour sizes, a reduction in prostate weight, and an increase in body weight, which suggests that Sal-NPs is more effective than salinomycin alone. Our results suggest that the molecular mechanism underlying the Sal-NPs anticancer effect may lead to the development of a potential therapeutic strategy for treating prostate adenocarcinoma.


Adenocarcinoma , Antineoplastic Agents , Apoptosis , Drug Carriers , Epithelial-Mesenchymal Transition , Nanoparticles , Prostatic Neoplasms , Pyrans , Rats, Wistar , Male , Prostatic Neoplasms/drug therapy , Prostatic Neoplasms/pathology , Prostatic Neoplasms/metabolism , Animals , Pyrans/pharmacology , Pyrans/administration & dosage , Apoptosis/drug effects , Humans , Rats , Cell Line, Tumor , Adenocarcinoma/drug therapy , Adenocarcinoma/pathology , Adenocarcinoma/metabolism , Drug Carriers/chemistry , Nanoparticles/chemistry , Epithelial-Mesenchymal Transition/drug effects , Antineoplastic Agents/pharmacology , Antineoplastic Agents/administration & dosage , Cell Movement/drug effects , PC-3 Cells , Drug Delivery Systems/methods , Polyether Polyketides
17.
AAPS PharmSciTech ; 25(5): 106, 2024 May 09.
Article En | MEDLINE | ID: mdl-38724834

The primary factor underlying the virulence of Candida albicans is its capacity to form biofilms, which in turn leads to recurrent complications. Over-the-counter antifungal treatments have proven ineffective in eliminating fungal biofilms and the inflammatory cytokines produced during fungal infections. Chitosan nanoparticles offer broad and versatile therapeutic potential as both antifungal agents and carriers for antifungal drugs to combat biofilm-associated Candida infections. In our study, we endeavoured to develop chitosan nanoparticles utilising chitosan and the antifungal crosslinker phytic acid targeting C. albicans. Phytic acid, known for its potent antifungal and anti-inflammatory properties, efficiently crosslinks with chitosan. The nanoparticles were synthesised using the ionic gelation technique and subjected to analyses including Fourier transform infrared spectroscopy, dynamic light scattering, and zeta potential analysis. The synthesised nanoparticles exhibited dimensions with a diameter (Dh) of 103 ± 3.9 nm, polydispersity index (PDI) of 0.33, and zeta potential (ZP) of 37 ± 2.5 mV. These nanoparticles demonstrated an antifungal effect with a minimum inhibitory concentration (MIC) of 140 ± 2.2 µg/mL, maintaining cell viability at approximately 90% of the MIC value and reducing cytokine levels. Additionally, the nanoparticles reduced ergosterol content and exhibited a 62% ± 1.2 reduction in biofilm susceptibility, as supported by colony-forming unit (CFU) and XTT assays-furthermore, treatment with nanoparticles reduced exopolysaccharide production and decreased secretion of aspartyl protease by C. albicans. Our findings suggest that the synthesised nanoparticles effectively combat Candida albicans infections. In vivo studies conducted on a mouse model of vaginal candidiasis confirmed the efficacy of the nanoparticles in combating fungal infections in vivo.


Antifungal Agents , Biofilms , Candida albicans , Chitosan , Microbial Sensitivity Tests , Nanoparticles , Phytic Acid , Chitosan/chemistry , Biofilms/drug effects , Nanoparticles/chemistry , Antifungal Agents/pharmacology , Antifungal Agents/administration & dosage , Animals , Candida albicans/drug effects , Mice , Microbial Sensitivity Tests/methods , Phytic Acid/pharmacology , Phytic Acid/administration & dosage , Phytic Acid/chemistry , Female , Candidiasis/drug therapy , Particle Size , Drug Carriers/chemistry , Cross-Linking Reagents/chemistry , Cytokines/metabolism
18.
J Biosci ; 492024.
Article En | MEDLINE | ID: mdl-38726825

Bacterial species referred to as magnetotactic bacteria (MTB) biomineralize iron oxides and iron sulphides inside the cell. Bacteria can arrange themselves passively along geomagnetic field lines with the aid of these iron components known as magnetosomes. In this study, magnetosome nanoparticles, which were obtained from the taxonomically identified MTB isolate Providencia sp. PRB-1, were characterized and their antibacterial activity was evaluated. An in vitro test showed that magnetosome nanoparticles significantly inhibited the growth of Staphylococcus sp., Pseudomonas aeruginosa, and Klebsiella pneumoniae. Magnetosomes were found to contain cuboidal iron crystals with an average size of 42 nm measured by particle size analysis and scanning electron microscope analysis. The energy dispersive X-ray examination revealed that Fe and O were present in the extracted magnetosomes. The extracted magnetosome nanoparticles displayed maximum absorption at 260 nm in the UV-Vis spectrum. The distinct magnetite peak in the Fourier transform infrared (FTIR) spectroscopy spectra was observed at 574.75 cm-1. More research is needed into the intriguing prospect of biogenic magnetosome nanoparticles for antibacterial applications.


Anti-Bacterial Agents , Magnetosomes , Providencia , Pseudomonas aeruginosa , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/isolation & purification , Pseudomonas aeruginosa/drug effects , Magnetosomes/chemistry , Magnetosomes/metabolism , Providencia/chemistry , Providencia/drug effects , Spectroscopy, Fourier Transform Infrared , Klebsiella pneumoniae/drug effects , Klebsiella pneumoniae/growth & development , Nanoparticles/chemistry , Microbial Sensitivity Tests , Staphylococcus/drug effects , Staphylococcus/growth & development , Particle Size , Iron/chemistry , Iron/metabolism , Magnetite Nanoparticles/chemistry
19.
Int J Nanomedicine ; 19: 3957-3972, 2024.
Article En | MEDLINE | ID: mdl-38711614

Purpose: Current treatment approaches for Prostate cancer (PCa) often come with debilitating side effects and limited therapeutic outcomes. There is urgent need for an alternative effective and safe treatment for PCa. Methods: We developed a nanoplatform to target prostate cancer cells based on graphdiyne (GDY) and a copper-based metal-organic framework (GDY-CuMOF), that carries the chemotherapy drug doxorubicin (DOX) for cancer treatment. Moreover, to provide GDY-CuMOF@DOX with homotypic targeting capability, we coated the PCa cell membrane (DU145 cell membrane, DCM) onto the surface of GDY-CuMOF@DOX, thus obtaining a biomimetic nanoplatform (DCM@GDY-CuMOF@DOX). The nanoplatform was characterized by using transmission electron microscope, atomic force microscope, X-ray diffraction, etc. Drug release behavior, antitumor effects in vivo and in vitro, and biosafety of the nanoplatform were evaluated. Results: We found that GDY-CuMOF exhibited a remarkable capability to load DOX mainly through π-conjugation and pore adsorption, and it responsively released DOX and generated Cu+ in the presence of glutathione (GSH). In vivo experiments demonstrated that this nanoplatform exhibits remarkable cell-killing efficiency by generating lethal reactive oxygen species (ROS) and mediating cuproptosis. In addition, DCM@GDY-CuMOF@DOX effectively suppresses tumor growth in vivo without causing any apparent side effects. Conclusion: The constructed DCM@GDY-CuMOF@DOX nanoplatform integrates tumor targeting, drug-responsive release and combination with cuproptosis and chemodynamic therapy, offering insights for further biomedical research on efficient PCa treatment.


Copper , Doxorubicin , Graphite , Metal-Organic Frameworks , Prostatic Neoplasms , Male , Prostatic Neoplasms/drug therapy , Prostatic Neoplasms/pathology , Doxorubicin/pharmacology , Doxorubicin/chemistry , Animals , Humans , Cell Line, Tumor , Copper/chemistry , Copper/pharmacology , Graphite/chemistry , Graphite/pharmacology , Metal-Organic Frameworks/chemistry , Metal-Organic Frameworks/pharmacology , Mice , Drug Liberation , Reactive Oxygen Species/metabolism , Biomimetic Materials/chemistry , Biomimetic Materials/pharmacology , Mice, Nude , Nanoparticles/chemistry , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Drug Carriers/chemistry , Xenograft Model Antitumor Assays
20.
J Nanobiotechnology ; 22(1): 229, 2024 May 08.
Article En | MEDLINE | ID: mdl-38720321

Efficiently removing excess reactive oxygen species (ROS) generated by various factors on the ocular surface is a promising strategy for preventing the development of dry eye disease (DED). The currently available eye drops for DED treatment are palliative, short-lived and frequently administered due to the short precorneal residence time. Here, we developed nanozyme-based eye drops for DED by exploiting borate-mediated dynamic covalent complexation between n-FeZIF-8 nanozymes (n-Z(Fe)) and poly(vinyl alcohol) (PVA) to overcome these problems. The resultant formulation (PBnZ), which has dual-ROS scavenging abilities and prolonged corneal retention can effectively reduce oxidative stress, thereby providing an excellent preventive effect to alleviate DED. In vitro and in vivo experiments revealed that PBnZ could eliminate excess ROS through both its multienzyme-like activity and the ROS-scavenging activity of borate bonds. The positively charged nanozyme-based eye drops displayed a longer precorneal residence time due to physical adhesion and the dynamic borate bonds between phenyboronic acid and PVA or o-diol with mucin. The in vivo results showed that eye drops could effectively alleviate DED. These dual-function PBnZ nanozyme-based eye drops can provide insights into the development of novel treatment strategies for DED and other ROS-mediated inflammatory diseases and a rationale for the application of nanomaterials in clinical settings.


Dry Eye Syndromes , Ophthalmic Solutions , Reactive Oxygen Species , Ophthalmic Solutions/chemistry , Ophthalmic Solutions/pharmacology , Dry Eye Syndromes/drug therapy , Animals , Reactive Oxygen Species/metabolism , Mice , Oxidative Stress/drug effects , Cornea/drug effects , Cornea/metabolism , Polyvinyl Alcohol/chemistry , Humans , Free Radical Scavengers/chemistry , Free Radical Scavengers/pharmacology , Borates/chemistry , Nanoparticles/chemistry , Male
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