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1.
J Nanobiotechnology ; 22(1): 289, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802863

ABSTRACT

By integrating magnetic resonance-visible components with scaffold materials, hydrogel microspheres (HMs) become visible under magnetic resonance imaging(MRI), allowing for non-invasive, continuous, and dynamic monitoring of the distribution, degradation, and relationship of the HMs with local tissues. However, when these visualization components are physically blended into the HMs, it reduces their relaxation rate and specificity under MRI, weakening the efficacy of real-time dynamic monitoring. To achieve MRI-guided in vivo monitoring of HMs with tissue repair functionality, we utilized airflow control and photo-crosslinking methods to prepare alginate-gelatin-based dual-network hydrogel microspheres (G-AlgMA HMs) using gadolinium ions (Gd (III)), a paramagnetic MRI contrast agent, as the crosslinker. When the network of G-AlgMA HMs degrades, the cleavage of covalent bonds causes the release of Gd (III), continuously altering the arrangement and movement characteristics of surrounding water molecules. This change in local transverse and longitudinal relaxation times results in variations in MRI signal values, thus enabling MRI-guided in vivo monitoring of the HMs. Additionally, in vivo data show that the degradation and release of polypeptide (K2 (SL)6 K2 (KK)) from G-AlgMA HMs promote local vascular regeneration and soft tissue repair. Overall, G-AlgMA HMs enable non-invasive, dynamic in vivo monitoring of biomaterial degradation and tissue regeneration through MRI, which is significant for understanding material degradation mechanisms, evaluating biocompatibility, and optimizing material design.


Subject(s)
Alginates , Contrast Media , Gadolinium , Hydrogels , Magnetic Resonance Imaging , Microspheres , Magnetic Resonance Imaging/methods , Gadolinium/chemistry , Animals , Alginates/chemistry , Hydrogels/chemistry , Contrast Media/chemistry , Wound Healing/drug effects , Cross-Linking Reagents/chemistry , Gelatin/chemistry , Mice , Tissue Scaffolds/chemistry
2.
Int J Nanomedicine ; 19: 4121-4136, 2024.
Article in English | MEDLINE | ID: mdl-38736655

ABSTRACT

Purpose: This study aims to broaden the application of nano-contrast agents (NCAs) within the realm of the musculoskeletal system. It aims to introduce novel methods, strategies, and insights for the clinical management of ischemic muscle disorders, encompassing diagnosis, monitoring, evaluation, and therapeutic intervention. Methods: We developed a composite encapsulation technique employing O-carboxymethyl chitosan (OCMC) and liposome to encapsulate NCA-containing gold nanorods (GNRs) and perfluoropentane (PFP). This nanoscale contrast agent was thoroughly characterized for its basic physicochemical properties and performance. Its capabilities for in vivo and in vitro ultrasound imaging and photothermal imaging were authenticated, alongside a comprehensive biocompatibility assessment to ascertain its effects on microcirculatory perfusion in skeletal muscle using a murine model of hindlimb ischemia, and its potential to augment blood flow and facilitate recovery. Results: The engineered GNR@OCMC-liposome/PFP nanostructure exhibited an average size of 203.18±1.49 nm, characterized by size uniformity, regular morphology, and a good biocompatibility profile. In vitro assessments revealed NCA's potent photothermal response and its transformation into microbubbles (MBs) under near-infrared (NIR) irradiation, thereby enhancing ultrasonographic visibility. Animal studies demonstrated the nanostructure's efficacy in photothermal imaging at ischemic loci in mouse hindlimbs, where NIR irradiation induced rapid temperature increases and significantly increased blood circulation. Conclusion: The dual-modal ultrasound/photothermal NCA, encapsulating GNR and PFP within a composite shell-core architecture, was synthesized successfully. It demonstrated exceptional stability, biocompatibility, and phase transition efficiency. Importantly, it facilitates the encapsulation of PFP, enabling both enhanced ultrasound imaging and photothermal imaging following NIR light exposure. This advancement provides a critical step towards the integrated diagnosis and treatment of ischemic muscle diseases, signifying a pivotal development in nanomedicine for musculoskeletal therapeutics.


Subject(s)
Contrast Media , Gold , Ischemia , Muscle, Skeletal , Nanotubes , Ultrasonography , Animals , Gold/chemistry , Nanotubes/chemistry , Contrast Media/chemistry , Contrast Media/pharmacology , Mice , Ischemia/diagnostic imaging , Ischemia/therapy , Muscle, Skeletal/diagnostic imaging , Ultrasonography/methods , Hindlimb/blood supply , Fluorocarbons/chemistry , Fluorocarbons/pharmacology , Liposomes/chemistry , Chitosan/chemistry , Chitosan/pharmacology , Muscular Diseases/diagnostic imaging , Muscular Diseases/therapy , Photothermal Therapy/methods , Disease Models, Animal , Humans , Pentanes
3.
ACS Sens ; 9(5): 2356-2363, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38752383

ABSTRACT

Activatable microbubble contrast agents for contrast-enhanced ultrasound have a potential role for measuring physiologic and pathologic states in deep tissues, including tumor acidosis. In this study, we describe a novel observation of increased harmonic oscillation of phosphatidylcholine microbubbles (PC-MBs) in response to lower ambient pH using a clinical ultrasound scanner. MB echogenicity and nonlinear echoes were monitored at neutral and acidic pH using B-mode and Cadence contrast pulse sequencing (CPS), a harmonic imaging technique at 7.0 and 1.5 MHz. A 3-fold increase in harmonic signal intensity was observed when the pH of PC-MB suspensions was decreased from 7.4 to 5.5 to mimic normal and pathophysiological levels that can be encountered in vivo. This pH-mediated activation is tunable based on the chemical structure and length of phospholipids composing the MB shell. It is also reliant on the presence of phosphate groups, as the use of lipids without phosphate instead of phospholipids completely abrogated this phenomenon. The increased harmonic signal likely is the result of increased MB oscillation caused by a decrease of the interfacial tension induced at a lower pH, altering the lipid conformation. While relative signal changes are interpreted clinically as mostly related to blood flow, pH effects could be significant contributors, particularly when imaging tumors. While our observation can be used clinically, it requires further research to isolate the effect of pH from other variables. These findings could pave the way toward for the development of new smart ultrasound contrast agents that expand the clinical utility of contrast-enhanced ultrasound.


Subject(s)
Contrast Media , Microbubbles , Phospholipids , Ultrasonography , Hydrogen-Ion Concentration , Ultrasonography/methods , Phospholipids/chemistry , Contrast Media/chemistry , Acoustics , Humans
4.
Bioconjug Chem ; 35(5): 703-714, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38708860

ABSTRACT

Manganese(II)-based contrast agents (MBCAs) are potential candidates for gadolinium-free enhanced magnetic resonance imaging (MRI). In this work, a rigid binuclear MBCA (Mn2-PhDTA2) with a zero-length linker was developed via facile synthetic routes, while the other dimer (Mn2-TPA-PhDTA2) with a longer rigid linker was also synthesized via more complex steps. Although the molecular weight of Mn2-PhDTA2 is lower than that of Mn2-TPA-PhDTA2, their T1 relaxivities are similar, being increased by over 71% compared to the mononuclear Mn-PhDTA. In the presence of serum albumin, the relaxivity of Mn2-PhDTA2 was slightly lower than that of Mn2-TPA-PhDTA2, possibly due to the lower affinity constant. The transmetalation reaction with copper(II) ions confirmed that Mn2-PhDTA2 has an ideal kinetic inertness with a dissociation half-life of approximately 10.4 h under physiological conditions. In the variable-temperature 17O NMR study, both Mn-PhDTA and Mn2-PhDTA2 demonstrated a similar estimated q close to 1, indicating the formation of monohydrated complexes with each manganese(II) ion. In addition, Mn2-PhDTA2 demonstrated a superior contrast enhancement to Mn-PhDTA in in vivo vascular and hepatic MRI and can be rapidly cleared through a dual hepatic and renal excretion pattern. The hepatic uptake mechanism of Mn2-PhDTA2 mediated by SLC39A14 was validated in cellular uptake studies.


Subject(s)
Contrast Media , Liver , Magnetic Resonance Imaging , Manganese , Manganese/chemistry , Liver/diagnostic imaging , Liver/metabolism , Magnetic Resonance Imaging/methods , Animals , Contrast Media/chemistry , Contrast Media/chemical synthesis , Humans , Cation Transport Proteins/metabolism , Cation Transport Proteins/chemistry , Mice , Coordination Complexes/chemistry , Coordination Complexes/chemical synthesis
5.
J Nanobiotechnology ; 22(1): 245, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38735921

ABSTRACT

BACKGROUND: The general sluggish clearance kinetics of functional inorganic nanoparticles tend to raise potential biosafety concerns for in vivo applications. Renal clearance is a possible elimination pathway for functional inorganic nanoparticles delivered through intravenous injection, but largely depending on the surface physical chemical properties of a given particle apart from its size and shape. RESULTS: In this study, three small-molecule ligands that bear a diphosphonate (DP) group, but different terminal groups on the other side, i.e., anionic, cationic, and zwitterionic groups, were synthesized and used to modify ultrasmall Fe3O4 nanoparticles for evaluating the surface structure-dependent renal clearance behaviors. Systematic studies suggested that the variation of the surface ligands did not significantly increase the hydrodynamic diameter of ultrasmall Fe3O4 nanoparticles, nor influence their magnetic resonance imaging (MRI) contrast enhancement effects. Among the three particle samples, Fe3O4 nanoparticle coated with zwitterionic ligands, i.e., Fe3O4@DMSA, exhibited optimal renal clearance efficiency and reduced reticuloendothelial uptake. Therefore, this sample was further labeled with 99mTc through the DP moieties to achieve a renal-clearable MRI/single-photon emission computed tomography (SPECT) dual-modality imaging nanoprobe. The resulting nanoprobe showed satisfactory imaging capacities in a 4T1 xenograft tumor mouse model. Furthermore, the biocompatibility of Fe3O4@DMSA was evaluated both in vitro and in vivo through safety assessment experiments. CONCLUSIONS: We believe that the current investigations offer a simple and effective strategy for constructing renal-clearable nanoparticles for precise disease diagnosis.


Subject(s)
Kidney , Magnetic Resonance Imaging , Tomography, Emission-Computed, Single-Photon , Animals , Magnetic Resonance Imaging/methods , Mice , Tomography, Emission-Computed, Single-Photon/methods , Ligands , Kidney/diagnostic imaging , Kidney/metabolism , Cell Line, Tumor , Contrast Media/chemistry , Female , Mice, Inbred BALB C , Humans , Tissue Distribution , Neoplasms/diagnostic imaging , Magnetite Nanoparticles/chemistry , Nanoparticles/chemistry
6.
Biomacromolecules ; 25(5): 3153-3162, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38693895

ABSTRACT

A photoacoustic (PA) imaging technique using the second near-infrared (NIR-II) window has attracted more and more attention because of its merits of deeper penetration depth and higher signal-to-noise (S/N) ratio than that using the first near-infrared (NIR-I) one. However, the design and development of high-performance PA imaging contrast agents in the NIR-II window is still a challenge. A semiconducting polymer, constructed by asymmetric units, exhibits regiorandom characteristics that effectively increase the distortion of the backbone. This increase in the degree of twist can regulate the twisted intramolecular charge transfer (TICT) effect, resulting in an enhancement of the PA signal. In this paper, an asymmetric structural acceptor strategy is developed to improve the PA signals of the resulting semiconducting polymer (PATQ-MP) in the NIR-II window with improved brightness, higher S/N ratio, and better photothermal conversion efficiency compared to polymers with the same main-chain structure containing a symmetric acceptor. DFT analysis showed that PATQ-MP containing an asymmetric acceptor monomer had a larger dihedral angle, which effectively improved the PA signal intensity by enhancing the TICT effect. The PEG-encapsulated PATQ-MP nanoparticles exhibit promising performance in the PA imaging of mouse tumors in vivo, demonstrating the clear identification of microvessels as small as 100 µm along with rapid metabolism within a span of 5 h. Therefore, this work provides a unique molecular design strategy for improving the signal intensity of PA imaging in the NIR-II window.


Subject(s)
Photoacoustic Techniques , Polymers , Semiconductors , Photoacoustic Techniques/methods , Animals , Mice , Polymers/chemistry , Quinoxalines/chemistry , Female , Humans , Thiadiazoles/chemistry , Infrared Rays , Mice, Nude , Mice, Inbred BALB C , Contrast Media/chemistry
7.
ACS Appl Mater Interfaces ; 16(20): 25909-25922, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38716677

ABSTRACT

Indocyanine green (ICG), as the sole near-infrared dye FDA-approved, is limited in biomedical applications because of its poor photostability, lack of targeting, and rapid removal in vivo. Herein, we presented a nanoformulation of poly-l-lysine-indocyanine green-hyaluronic acid (PIH) and demonstrated that it can image orthodox endometriosis (EM) lesions with a negative contrast. The PIH nanocluster, with an average diameter of approximately 200 nm, exhibited improved fluorescence photostability and antioxidant ability compared to free ICG. In the in vivo imaging, EM lesions were visualized, featuring apparent voids and clear boundaries. After colocalizing with the green fluorescent protein, we concluded that the contrast provided by PIH peaked at 4 h postinjection and was observable for at least 8 h. The negative contrast, clear boundaries, and enhanced observable time might be due to the low permeation of PIH to lesions and the enhanced retention on the surfaces of lesions. Thus, our findings suggest an ICG-based nanoprobe with the potential to diagnose abdominal diseases.


Subject(s)
Endometriosis , Hyaluronic Acid , Indocyanine Green , Indocyanine Green/chemistry , Endometriosis/diagnostic imaging , Female , Animals , Hyaluronic Acid/chemistry , Humans , Mice , Polylysine/chemistry , Contrast Media/chemistry , Nanoparticles/chemistry , Optical Imaging , Fluorescent Dyes/chemistry
8.
J Colloid Interface Sci ; 670: 499-508, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38776685

ABSTRACT

Manganese oxide nanoparticles (MONs)-based contrast agents have attracted increasing attention for magnetic resonance imaging (MRI), attributed to their good biocompatibility and advantageous paramagnetism. However, conventional MONs have poor imaging performance due to low T1 relaxivity. Additionally, their lack of tumor-targeting theranostics capabilities and complex synthesis pathways have impeded clinical applications. Rutin (Ru) is an ideal tumor-targeted ligand that targets glucose transporters (GLUTs) overexpressed in various malignant tumors, and exhibits photothermal effects upon chelation with metal ions. Herein, a series of Ru-coated MONs (Ru/MnO2) were synthesized using a straightforward, rapid one-step process. Specifically, Ru/MnO2-5, with the smallest crystal size of approximately 4 nm, exhibits the highest T1 relaxivity (33.3 mM-1s-1 at 1.5 T, surpassing prior MONs) along with notable stability, photothermal efficacy, and tumor-targeting ability. Furthermore, Ru/MnO2-5 shows promise in MRI and photothermal therapy of H22 tumors owing to its superior GLUTs-mediated tumor-targeting capability.


Subject(s)
Magnetic Resonance Imaging , Manganese Compounds , Nanoparticles , Oxides , Photothermal Therapy , Rutin , Manganese Compounds/chemistry , Manganese Compounds/pharmacology , Oxides/chemistry , Oxides/pharmacology , Animals , Nanoparticles/chemistry , Rutin/chemistry , Rutin/pharmacology , Mice , Humans , Particle Size , Surface Properties , Contrast Media/chemistry , Cell Survival/drug effects , Cell Line, Tumor , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacology , Neoplasms/diagnostic imaging , Neoplasms/therapy , Neoplasms/drug therapy
9.
Inorg Chem ; 63(21): 9877-9887, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38748735

ABSTRACT

19F parashift probes with paramagnetically shifted reporter nuclei provide attractive platforms to develop molecular imaging probes. These probes enable ratiometric detection of molecular disease markers using a direct detection technique. Here, we describe a series of trivalent lanthanide (Ln(III)) complexes that are structural analogues of the clinically approved MR contrast agent (CA) ProHance to obtain LnL 19F parashift probes. We evaluated trans-gadolinium paramagnetic lanthanides compared to diamagnetic YL for 19F chemical shift and relaxation rate enhancement. The paramagnetic contribution to chemical shift (δPCS) for paramagnetic LnL exhibited either shifts to lower frequency (δPCS < 0 for TbL, DyL, and HoL) or shifts to higher frequency (δPCS > 0 for ErL, TmL, and YbL) compared to YL 19F spectroscopic signal. Zero-echo time pulse sequences achieved 56-fold sensitivity enhancement for DyL over YL, while developing probe-specific pulse sequences with fast delay times and acquisition times achieved 0.6-fold enhancement in limit of detection for DyL. DyL provides an attractive platform to develop 19F parashift probes for ratiometric detection of enzymatic activity.


Subject(s)
Lanthanoid Series Elements , Lanthanoid Series Elements/chemistry , Molecular Structure , Coordination Complexes/chemistry , Coordination Complexes/chemical synthesis , Magnetic Resonance Imaging , Contrast Media/chemistry , Fluorine/chemistry , Humans
10.
PLoS Comput Biol ; 20(5): e1012106, 2024 May.
Article in English | MEDLINE | ID: mdl-38748755

ABSTRACT

Contrast transport models are widely used to quantify blood flow and transport in dynamic contrast-enhanced magnetic resonance imaging. These models analyze the time course of the contrast agent concentration, providing diagnostic and prognostic value for many biological systems. Thus, ensuring accuracy and repeatability of the model parameter estimation is a fundamental concern. In this work, we analyze the structural and practical identifiability of a class of nested compartment models pervasively used in analysis of MRI data. We combine artificial and real data to study the role of noise in model parameter estimation. We observe that although all the models are structurally identifiable, practical identifiability strongly depends on the data characteristics. We analyze the impact of increasing data noise on parameter identifiability and show how the latter can be recovered with increased data quality. To complete the analysis, we show that the results do not depend on specific tissue characteristics or the type of enhancement patterns of contrast agent signal.


Subject(s)
Contrast Media , Magnetic Resonance Imaging , Contrast Media/chemistry , Contrast Media/pharmacokinetics , Magnetic Resonance Imaging/methods , Humans , Models, Biological , Computational Biology , Computer Simulation
11.
Artif Cells Nanomed Biotechnol ; 52(1): 321-333, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38795050

ABSTRACT

Polydopamine (PDA) stands as a versatile material explored in cancer nanomedicine for its unique properties, offering opportunities for multifunctional drug delivery platforms. This study explores the potential of utilizing a one-pot synthesis to concurrently integrate Fe, Gd and Mn ions into porous PDA-based theranostic drug delivery platforms called Ferritis, Gadolinis and Manganis, respectively. Our investigation spans the morphology, magnetic properties, photothermal characteristics and cytotoxicity profiles of those potent nanoformulations. The obtained structures showcase a spherical morphology, robust magnetic response and promising photothermal behaviour. All of the presented nanoparticles (NPs) display pronounced paramagnetism, revealing contrasting potential for MRI imaging. Relaxivity values, a key determinant of contrast efficacy, demonstrated competitive or superior performance compared to established, used contrasting agents. These nanoformulations also exhibited robust photothermal properties under near infra-red irradiation, showcasing their possible application for photothermal therapy of cancer. Our findings provide insights into the potential of metal-doped PDA NPs for cancer theranostics.


Subject(s)
Indoles , Magnetic Resonance Imaging , Polymers , Indoles/chemistry , Humans , Polymers/chemistry , Contrast Media/chemistry , Nanoparticles/chemistry , Nanoparticles/therapeutic use , Manganese/chemistry , Theranostic Nanomedicine/methods
12.
Int J Nanomedicine ; 19: 4589-4605, 2024.
Article in English | MEDLINE | ID: mdl-38799695

ABSTRACT

Background: Medical imaging modalities, such as magnetic resonance imaging (MRI), ultrasound, and fluorescence imaging, have gained widespread acceptance in clinical practice for tumor diagnosis. Each imaging modality has its own unique principles, advantages, and limitations, thus necessitating a multimodal approach for a comprehensive disease understanding of the disease process. To enhance diagnostic precision, physicians frequently integrate data from multiple imaging modalities, driving research advancements in multimodal imaging technology research. Methods: In this study, hematoporphyrin-poly (lactic acid) (HP-PLLA) polymer was prepared via ring-opening polymerization and thoroughly characterized using FT-IR, 1H-NMR, XRD, and TGA. HP-PLLA based nanoparticles encapsulating perfluoropentane (PFP) and salicylic acid were prepared via emulsion-solvent evaporation. Zeta potential and mean diameter were assessed using DLS and TEM. Biocompatibility was evaluated via cell migration, hemolysis, and cytotoxicity assays. Ultrasonic imaging was performed with a dedicated apparatus, while CEST MRI was conducted using a 7.0 T animal scanner. Results: We designed and prepared a novel dual-mode nanoimaging probe SA/PFP@HP-PLLA NPs. PFP enhanced US imaging, while salicylic acid bolstered CEST imaging. With an average size of 74.43 ± 1.12 nm, a polydispersity index of 0.175 ± 0.015, and a surface zeta potential of -64.1 ± 2.11 mV. These NPs exhibit excellent biocompatibility and stability. Both in vitro and in vivo experiments confirmed the SA/PFP@HP-PLLA NP's ability to improve tumor characterization and diagnostic precision. Conclusion: The SA/PFP@HP-PLLA NPs demonstrate promising dual-modality imaging capabilities, indicating their potential for preclinical and clinical use as a contrast agent.


Subject(s)
Fluorocarbons , Hematoporphyrins , Magnetic Resonance Imaging , Nanoparticles , Polyesters , Salicylic Acid , Fluorocarbons/chemistry , Magnetic Resonance Imaging/methods , Animals , Polyesters/chemistry , Nanoparticles/chemistry , Humans , Salicylic Acid/chemistry , Salicylic Acid/pharmacokinetics , Salicylic Acid/administration & dosage , Hematoporphyrins/chemistry , Hematoporphyrins/pharmacokinetics , Hematoporphyrins/pharmacology , Mice , Ultrasonography/methods , Contrast Media/chemistry , Contrast Media/pharmacokinetics , Cell Line, Tumor , Multimodal Imaging/methods , Pentanes
13.
Int J Nanomedicine ; 19: 4651-4665, 2024.
Article in English | MEDLINE | ID: mdl-38799698

ABSTRACT

Introduction: Recently, nanobubbles (NBs) have gained significant traction in the field of tumor diagnosis and treatment owing to their distinctive advantages. However, the application of NBs is limited due to their restricted size and singular reflection section, resulting in low ultrasonic reflection. Methods: We synthesized a nano-scale ultrasound contrast agent (IR783-SiO2NPs@NB) by encapsulating SiO2 nanoparticles in an IR783-labeled lipid shell using an improved film hydration method. We characterized its physicochemical properties, examined its microscopic morphology, evaluated its stability and cytotoxicity, and assessed its contrast-enhanced ultrasound imaging capability both in vitro and in vivo. Results: The results show that IR783-SiO2NPs@NB had a "donut-type" composite microstructure, exhibited uniform particle size distribution (637.2 ± 86.4 nm), demonstrated excellent stability (30 min), high biocompatibility, remarkable tumor specific binding efficiency (99.78%), and an exceptional contrast-enhanced ultrasound imaging capability. Conclusion: Our newly developed multiple scattering NBs with tumor targeting capacity have excellent contrast-enhanced imaging capability, and they show relatively long contrast enhancement duration in solid tumors, thus providing a new approach to the structural design of NBs.


Subject(s)
Contrast Media , Nanoparticles , Particle Size , Silicon Dioxide , Ultrasonography , Contrast Media/chemistry , Ultrasonography/methods , Animals , Nanoparticles/chemistry , Silicon Dioxide/chemistry , Humans , Cell Line, Tumor , Mice , Neoplasms/diagnostic imaging , Microbubbles , Mice, Nude , Mice, Inbred BALB C , Indoles
14.
J Phys Chem Lett ; 15(20): 5382-5389, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38738984

ABSTRACT

Metronidazole is a prospective hyperpolarized MRI contrast agent with potential hypoxia sensing utility for applications in cancer, stroke, neurodegenerative diseases, etc. We demonstrate a pilot procedure for production of ∼30 mM hyperpolarized [15N3]metronidazole in aqueous media by using a phase-separated SABRE-SHEATH hyperpolarization method, with nitrogen-15 polarization exceeding 2.2% on all three 15N sites achieved in less than 2 min. The 15N polarization T1 of ∼12 min is reported for the 15NO2 group at the clinically relevant field of 1.4 T in the aqueous phase, demonstrating a remarkably long lifetime of the hyperpolarized state. The produced aqueous solution of [15N3]metronidazole that contained only ∼100 µM of residual Ir was deemed biocompatible via validation through the MTT colorimetric test for assessing cell metabolic activity using human embryotic kidney HEK293T cells. This low-cost and ultrafast hyperpolarization procedure represents a major advance for the production of a biocompatible HP [15N3]metronidazole (and potentially other hyperpolarized drugs) formulation for MRI sensing applications.


Subject(s)
Metronidazole , Water , Humans , Metronidazole/chemistry , Metronidazole/pharmacology , HEK293 Cells , Water/chemistry , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacology , Hydrogen/chemistry , Nitrogen Isotopes/chemistry , Magnetic Resonance Imaging/methods , Contrast Media/chemistry
15.
Nano Lett ; 24(22): 6696-6705, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38796774

ABSTRACT

Ultra-high-field (UHF) magnetic resonance imaging (MRI) stands as a pivotal cornerstone in biomedical imaging, yet the challenge of false imaging persists, constraining its full potential. Despite the development of dual-mode contrast agents improving conventional MRI, their effectiveness in UHF remains suboptimal due to the high magnetic moment, resulting in diminished T1 relaxivity and excessively enhanced T2 relaxivity. Herein, we report a DNA-mediated magnetic-dimer assembly (DMA) of iron oxide nanoparticles that harnesses UHF-tailored nanomagnetism for fault-free UHF-MRI. DMA exhibits a dually enhanced longitudinal relaxivity of 4.42 mM-1·s-1 and transverse relaxivity of 26.23 mM-1·s-1 at 9 T, demonstrating a typical T1-T2 dual-mode UHF-MRI contrast agent. Importantly, DMA leverages T1-T2 dual-modality image fusion to achieve artifact-free breast cancer visualization, effectively filtering interference from hundred-micrometer-level false-positive signals with unprecedented precision. The UHF-tailored T1-T2 dual-mode DMA contrast agents hold promise for elevating the accuracy of MR imaging in disease diagnosis.


Subject(s)
Contrast Media , DNA , Magnetic Resonance Imaging , Magnetic Resonance Imaging/methods , Contrast Media/chemistry , Humans , DNA/chemistry , Mice , Magnetic Iron Oxide Nanoparticles/chemistry , Female , Animals , Breast Neoplasms/diagnostic imaging , Magnetite Nanoparticles/chemistry , Cell Line, Tumor
16.
Anal Chem ; 96(22): 9132-9140, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38764163

ABSTRACT

Gold nanorods (AuNRs) have been considered highly compelling materials for early cancer diagnosis and have aroused a burgeoning fascination among the biomedical sectors. By leveraging the versatile tunable optical properties of AuNRs, herein, we have developed a novel tumor-targeted dual-modal nanoprobe (FFA) that exhibits excellent bioluminescence and photoacoustic imaging performance for early tumor diagnosis. FFA has been synthesized by anchoring the recombinant bioluminescent firefly luciferase protein (Fluc) on the folate-conjugated AuNRs via the PEG linker. TEM images and UV-vis studies confirm the nanorod morphology and successful conjugation of the biomolecules to AuNRs. The nanoprobe FFA relies on the ability of the folate module to target the folate receptor-positive tumor cells actively, and simultaneously, the Fluc module facilitates excellent bioluminescent properties in physiological conditions. The success of chemical engineering in the present study enables stronger bioluminescent signals in the folate receptor-positive cells (Skov3, Hela, and MCF-7) than in folate receptor-negative cells (A549, 293T, MCF-10A, and HepG2). Additionally, the AuNRs induced strong photoacoustic conversion performance, enhancing the resolution of tumor imaging. No apparent toxicity was detected at the cellular and mouse tissue levels, manifesting the biocompatibility nature of the nanoprobe. Prompted by the positive merits of FFA, the in vivo animal studies were performed, and a notable enhancement was observed in the bioluminescent/photoacoustic intensity of the nanoprobe in the tumor region compared to that in the folate-blocking region. Therefore, this synergistic dual-modal bioluminescent and photoacoustic imaging platform holds great potential as a tumor-targeted contrast agent for early tumor diagnosis with high-performance imaging information.


Subject(s)
Contrast Media , Gold , Luminescent Measurements , Nanotubes , Photoacoustic Techniques , Photoacoustic Techniques/methods , Humans , Nanotubes/chemistry , Gold/chemistry , Animals , Contrast Media/chemistry , Mice , Mice, Nude , Optical Imaging , Neoplasms/diagnostic imaging , Female , Luciferases/chemistry , Luciferases/metabolism
17.
Biomed Mater ; 19(4)2024 May 22.
Article in English | MEDLINE | ID: mdl-38729172

ABSTRACT

The sensitivity and diagnostic accuracy of magnetic resonance imaging mainly depend on the relaxation capacity of contrast agents (CAs) and their accumulated amount at the pathological region. Due to the better biocompatibility and high-spin capacity, Fe-complexes have been studied widely as an alternative to replace popular Gd-based CAs associated with potential biotoxicity. Compared with a variety of Fe complex-based CAs, such as small molecular, macrocyclic, multinuclear complexes, the form of nanoparticle exhibits outstanding longitudinal relaxation, but the clinical transformation was still limited by the inconspicuous difference of contrast between tumor and normal tissue. The enhanced effect of contrast is a positive relation as relaxation of CAs and their concentration in desired region. To specifically improve the amount of CAs accumulated in the tumor, pH-responsive polymer poly(2-ethyl-2-oxazoline) (PEOz) was modified on melanin, a ubiquitous natural pigment providing much active sites for chelating with Fe(III). The Fe(III)-Mel-PEOz we prepared could raise the tumor cell endocytosis efficiency via switching surface charge from anion to cation with the stimuli of the decreasing pH of tumor microenvironment. The change of pH has negligible effect on ther1of Fe(III)-Mel-PEOz, which is always maintained at around 1.0 mM-1s-1at 0.5 T. Moreover, Fe(III)-Mel-PEOz exhibited low cytotoxicity, and satisfactory enhancement of positive contrast effectin vivo. The excellent biocompatibility and stable relaxation demonstrate the high potential of Fe(III)-Mel-PEOz in the diagnosis of tumor.


Subject(s)
Biocompatible Materials , Contrast Media , Iron , Magnetic Resonance Imaging , Melanins , Melanins/chemistry , Hydrogen-Ion Concentration , Magnetic Resonance Imaging/methods , Contrast Media/chemistry , Animals , Biocompatible Materials/chemistry , Humans , Iron/chemistry , Mice , Cell Line, Tumor , Polyamines/chemistry , Nanoparticles/chemistry , Tumor Microenvironment
18.
Int J Pharm ; 658: 124203, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38705249

ABSTRACT

Most nanomedicines with suitable sizes (normally 100-200 nm) exhibit favorable accumulation in the periphery of tumors but hardly penetrate into deep tumors. Effective penetration of nanomedicines requires smaller sizes (less than 30 nm) to overcome the elevated tumor interstitial fluid pressure. Moreover, integrating an efficient diagnostic agent in the nanomedicines is in high demand for precision theranostics of tumors. To this end, a near-infrared light (NIR) -triggered size-shrinkable micelle system (Fe3O4@AuNFs/DOX-M) coloaded antitumor drug doxorubicin (DOX) and biomodal imaging agent magnetic gold nanoflower (Fe3O4@AuNFs) was developed to achieve efficient theranostic of tumors. Upon the accumulation of Fe3O4@AuNFs/DOX-M in the tumor periphery, a NIR laser was irradiated near the tumor sites, and the loaded Fe3O4@Au NFs could convert the light energy to heat, which triggered the cleavage of DOX-M to the ultra-small micelles (∼5 nm), thus realizing the deep penetration of micelles and on-demand drug release. Moreover, Fe3O4@AuNFs in the micelles could also be used as CT/MRI dual-modal contrast agent to "visualize" the tumor. Up to 92.6 % of tumor inhibition was achieved for the developed Fe3O4@AuNFs/DOX-M under NIR irradiation. This versatile micelle system provided a promising drug carrier platform realizing efficient tumor dual-modal diagnosis and photothermal-chemotherapy integration.


Subject(s)
Doxorubicin , Gold , Infrared Rays , Micelles , Theranostic Nanomedicine , Doxorubicin/administration & dosage , Doxorubicin/chemistry , Animals , Gold/chemistry , Gold/administration & dosage , Theranostic Nanomedicine/methods , Humans , Cell Line, Tumor , Neoplasms/drug therapy , Neoplasms/diagnostic imaging , Drug Liberation , Mice , Antibiotics, Antineoplastic/administration & dosage , Magnetic Resonance Imaging/methods , Mice, Inbred BALB C , Drug Delivery Systems/methods , Contrast Media/chemistry , Contrast Media/administration & dosage , Drug Carriers/chemistry , Particle Size , Female , Mice, Nude
19.
Artif Cells Nanomed Biotechnol ; 52(1): 218-228, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38646876

ABSTRACT

This study prepared and evaluated polymeric polybutylcyanoacrylate (PBCA) nanoparticles (NPs) that can be used as a new agent for contrast-enhanced intravascular ultrasound (IVUS) imaging with drug delivery capacity. The nanoformulation was successfully developed using suspension polymerisation and characterised in terms of size, size distribution, zeta potential, morphology, stability, toxicity effects, imaging effects and drug release study. The results showed that the nanoparticles were round and hollow, with a particle diameter of 215.8 ± 25.3 nm and a zeta potential of -22.2 ± 4.1 mV. In vitro experiments, the nanoparticles were safe, non-toxic, and stable in nature with the capacity to carry and release drug (ant-miR-126). Moreover, the nanoparticles can match the high-frequency probe of commercially IVUS as a contrast agent to improve the resolution of imaging (the mean echo intensity ratio in the vascular wall increased significantly from 10.89 ± 1.10 at baseline, to 24.51 ± 1.91 during injection and 43.70 ± 0.88 after injection, respectively p < .0001). Overall, a new nano agent with drug-carrying capacity was prepared, which can be used in combination with IVUS for simultaneous diagnosis and targeted therapy of coronary atherosclerosis.


Subject(s)
Contrast Media , Drug Carriers , Enbucrilate , Nanoparticles , Nanoparticles/chemistry , Contrast Media/chemistry , Enbucrilate/chemistry , Drug Carriers/chemistry , Animals , Ultrasonography, Interventional/methods , Humans , Drug Liberation
20.
J Nanobiotechnology ; 22(1): 162, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38594700

ABSTRACT

To overcome the problems of commercial magnetic resonance imaging (MRI) contrast agents (CAs) (i.e., small molecule Gd chelates), we have proposed a new concept of Gd macrochelates based on the coordination of Gd3+ and macromolecules, e.g., poly(acrylic acid) (PAA). To further decrease the r2/r1 ratio of the reported Gd macrochelates that is an important factor for T1 imaging, in this study, a superior macromolecule hydrolyzed polymaleic anhydride (HPMA) was found to coordinate Gd3+. The synthesis conditions were optimized and the generated Gd-HPMA macrochelate was systematically characterized. The obtained Gd-HPMA29 synthesized in a 100 L of reactor has a r1 value of 16.35 mM-1 s-1 and r2/r1 ratio of 2.05 at 7.0 T, a high Gd yield of 92.7% and a high product weight (1074 g), which demonstrates the feasibility of kilogram scale facile synthesis. After optimization of excipients and sterilization at a high temperature, the obtained Gd-HPMA30 formulation has a pH value of 7.97, osmolality of 691 mOsmol/kg water, density of 1.145 g/mL, and viscosity of 2.2 cP at 20 â„ƒ or 1.8 cP at 37 â„ƒ, which meet all specifications and physicochemical criteria for clinical injections indicating the immense potential for clinical applications.


Subject(s)
Contrast Media , Maleic Anhydrides , Methacrylates , Polymers , Contrast Media/chemistry , Magnetic Resonance Imaging/methods
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