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1.
Int J Pharm ; 660: 124289, 2024 Jul 20.
Article in English | MEDLINE | ID: mdl-38825171

ABSTRACT

The transdermal delivery of naloxone for opioid overdose emergency purposes is a challenge due to its poor rate of diffusion through the layers of skin. This results in delayed delivery of an insufficient amount of the drug within minimal time as is desired to save lives. The ability of dissolving polymeric microneedles to shorten the lag time significantly has been explored and shown to have prospects in terms of the transdermal delivery of naloxone. This is an option that offers critical advantages to the ongoing opioid crisis, including ease of distribution and easy administration, with little to no need for intervention by clinicians. Nonetheless, this approach by itself needs augmentation to meet pharmacokinetic delivery attributes desired for a viable clinical alternative to existing market dosage forms. In this study, we report the success of an optimized iontophoresis-coupled naloxone loaded dissolving microneedle patch which had facilitated a 12- fold increase in average cumulative permeation and a 6-fold increase in drug flux over a conventional dissolving microneedle patch within 60 min of application (p < 0.05). This translates to a 30 % decrease in dose requirement in a mechanistically predicted microneedle patch established to be able to achieve the desired early plasma concentration time profile needed in an opioid overdose emergency. Applying a predictive mathematical model, we describe an iontophoresis-coupled microneedle patch design capable of meeting the desired pharmacokinetic profile for a viable naloxone delivery form through skin.


Subject(s)
Administration, Cutaneous , Iontophoresis , Naloxone , Narcotic Antagonists , Needles , Skin Absorption , Transdermal Patch , Naloxone/administration & dosage , Naloxone/pharmacokinetics , Iontophoresis/methods , Narcotic Antagonists/administration & dosage , Narcotic Antagonists/pharmacokinetics , Animals , Drug Delivery Systems , Polymers/chemistry , Microinjections/methods , Male , Skin/metabolism , Analgesics, Opioid/administration & dosage , Analgesics, Opioid/pharmacokinetics
2.
Int J Pharm ; 660: 124347, 2024 Jul 20.
Article in English | MEDLINE | ID: mdl-38885777

ABSTRACT

Ropivacaine hydrochloride (RPL) is a local anesthetic agent that has been widely used for the treatment of pain during or after surgery. However, this drug is only available in parenteral dosage form and may contribute to the infiltration of RPL into the plasma, causing some undesirable side effects. Intradermal delivery of RPL using dissolving microneedles may become a promising strategy to deliver such drugs into the skin. This research aimed to develop RPL-loaded dissolving microneedles (DMN-RPLs) as a proof of the concept of intradermal delivery of a local anesthetic. The DMN-RPLs were fabricated using either centrifugation or air-pressurized chamber methods. Several polymers, such as poly(vinyl pyrrolidone) (PVP), poly(vinyl alcohol) (PVA), and sodium hyaluronate (SH), were utilized for manufacturing the DMN-RPLs. The prepared DMN-RPLs were assessed for their thermal properties, chemical bonds, mechanical strength, insertion ability, skin-dissolution study, and drug content. Furthermore, in-skin deposition and dermatokinetic studies were also performed. The results showed that F9 (30 % w/w PVP-4 % w/w SH) and F10 (30 % w/w PVP-5 % w/w PVA) containing 5 % w/w of RPL were the most promising formulations, as shown by their needle height reduction (<10 %) and insertion depth (∼400 µm). Both formulations were also able to deliver more than 60 % of the RPL contained in the DMNs into the epidermis, dermis, and receiver compartment. This study, for the first time, has provided a proof concept to deliver RPL as a local anesthetic using DMNs and the intradermal route, aiming to minimize pain and discomfort during administration and improve the patient's experience.


Subject(s)
Anesthetics, Local , Drug Delivery Systems , Needles , Ropivacaine , Skin , Ropivacaine/administration & dosage , Ropivacaine/pharmacokinetics , Anesthetics, Local/administration & dosage , Anesthetics, Local/pharmacokinetics , Anesthetics, Local/chemistry , Animals , Skin/metabolism , Administration, Cutaneous , Drug Liberation , Skin Absorption , Povidone/chemistry , Proof of Concept Study , Solubility , Hyaluronic Acid/chemistry , Hyaluronic Acid/administration & dosage , Microinjections/methods , Male , Rats, Sprague-Dawley , Polyvinyl Alcohol/chemistry
3.
J Vis Exp ; (208)2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38912770

ABSTRACT

Transgenesis in Drosophila is an essential approach to studying gene function at the organism level. Embryo microinjection is a crucial step for the construction of transgenic flies. Microinjection requires some types of equipment, including a microinjector, a micromanipulator, an inverted microscope, and a stereo microscope. Plasmids isolated with a plasmid miniprep kit are qualified for microinjection. Embryos at the pre-blastoderm or syncytial blastoderm stage, where nuclei share a common cytoplasm, are subjected to microinjection. A cell strainer eases the process of dechorionating embryos. The optimal time for dechorionation and desiccation of embryos needs to be determined experimentally. To increase the efficiency of embryo microinjection, needles prepared by a puller need to be beveled by a needle grinder. In the process of grinding needles, we utilize a foot air pump with a pressure gauge to avoid the capillary effect of the needle tip. We routinely inject 120-140 embryos for each plasmid and obtain at least one transgenic line for around 85% of plasmids. This article takes the phiC31 integrase-mediated transgenesis in Drosophila as an example and presents a detailed protocol for embryo microinjection for transgenesis in Drosophila.


Subject(s)
Drosophila , Gene Transfer Techniques , Microinjections , Animals , Microinjections/methods , Gene Transfer Techniques/instrumentation , Drosophila/genetics , Drosophila/embryology , Plasmids/genetics , Plasmids/administration & dosage , Embryo, Nonmammalian , Animals, Genetically Modified , Integrases/genetics
4.
Mol Biol Rep ; 51(1): 706, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824203

ABSTRACT

BACKGROUND: Microinjection is a direct procedure for delivering various compounds via micropipette into individual cells. Combined with the CRISPR/Cas9 editing technology, it has been used to produce genetically engineered animal cells. However, genetic micromanipulation of intact plant cells has been a relatively unexplored area of research, partly due to the cytological characteristics of these cells. This study aimed to gain insight into the genetic micromanipulation of wheat microspores using microinjection procedures combined with the CRISPR/Cas9 editing system targeting the Ms2 gene. METHODS AND RESULTS: Microspores were first reprogrammed by starvation and heat shock treatment to make them structurally suitable for microinjection. The large central vacuole was fragmented and the nucleus with cytoplasm was positioned in the center of the cell. This step and an additional maltose gradient provided an adequate source of intact single cells in the three wheat genotypes. The microcapillary was inserted into the cell through the germ pore to deliver a working solution with a fluorescent marker. This procedure was much more efficient and less harmful to the microspore than inserting the microcapillary through the cell wall. The CRISPR/Cas9 binary vectors injected into reprogrammed microspores induced mutations in the target Ms2 gene with deletions ranging from 1 to 16 bp. CONCLUSIONS: This is the first report of successful genome editing in an intact microspore/wheat cell using the microinjection technique and the CRISPR/Cas9 editing system. The study presented offers a range of molecular and cellular biology tools that can aid in genetic micromanipulation and single-cell analysis.


Subject(s)
CRISPR-Cas Systems , Gene Editing , Microinjections , Mutation , Triticum , Triticum/genetics , CRISPR-Cas Systems/genetics , Gene Editing/methods , Microinjections/methods , Mutation/genetics , Pollen/genetics
5.
Drug Discov Today ; 29(7): 104030, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38762087

ABSTRACT

In recent years, microneedles (MNs) have been transformed to serve a wide range of applications in the biomedical field. Their role as sensors in wearable devices has provided an alternative to blood-based monitoring of health and diagnostic methods. Hence, they have become a topic of research interest for several scientists working in the biomedical field. These MNs as sensors offer the continuous monitoring of biomarkers like glucose, nucleic acids, proteins, polysaccharides and electrolyte ions, which can therefore screen for and diagnose disease conditions in humans. The present review focuses on types of MN sensors and their applications. Various clinical trials and bottlenecks of MN R&D are also discussed.


Subject(s)
Biosensing Techniques , Needles , Humans , Biosensing Techniques/methods , Animals , Microinjections/methods , Wearable Electronic Devices , Biomarkers/metabolism , Biomarkers/analysis
6.
J Control Release ; 371: 43-66, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38735395

ABSTRACT

Microneedles (MNs) are micron-sized needles, typically <2 mm in length, arranged either as an array or as single needle. These MNs offer a minimally invasive approach to ocular drug delivery due to their micron size (reducing tissue damage compared to that of hypodermic needles) and overcoming significant barriers in drug administration. While various types of MNs have been extensively researched, significant progress has been made in the use of hollow MNs (HMNs) for ocular drug delivery, specifically through suprachoroidal injections. The suprachoroidal space, situated between the sclera and choroid, has been targeted using optical coherence tomography-guided injections of HMNs for the treatment of uveitis. Unlike other MNs, HMNs can deliver larger volumes of formulations to the eye. This review primarily focuses on the use of HMNs in ocular drug delivery and explores their ocular anatomy and the distribution of formulations following potential HMN administration routes. Additionally, this review focuses on the influence of formulation characteristics (e.g., solution viscosity, particle size), HMN properties (e.g., bore or lumen diameter, MN length), and routes of administration (e.g., periocular transscleral, suprachoroidal, intravitreal) on the ocular distribution of drugs. Overall, this paper highlights the distinctive properties of HMNs, which make them a promising technology for improving drug delivery efficiency, precision, and patient outcomes in the treatment of ocular diseases.


Subject(s)
Administration, Ophthalmic , Drug Delivery Systems , Eye , Needles , Humans , Animals , Eye/metabolism , Pharmaceutical Preparations/administration & dosage , Microinjections/methods , Microinjections/instrumentation
7.
J Control Release ; 371: 193-203, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38782066

ABSTRACT

Microneedle patches have been developed as favorable platforms for delivery systems, such as the locoregional application of therapeutic drugs, and implantation systems, such as electronic devices on visceral tissue surfaces. However, the challenge lies in finding materials that can achieve both biocompatibility and stable fixation on the target tissue. To address this issue, utilizing a biocompatible adhesive biomaterial allows the flat part of the patch to adhere as well, enabling double-sided adhesion for greater versatility. In this work, we propose an adhesive microneedle patch based on mussel adhesive protein (MAP) with enhanced mechanical strength via ultraviolet-induced polyacrylate crosslinking and Coomassie brilliant blue molecules. The strong wet tissue adhesive and biocompatible nature of engineered acrylated-MAP resulted in the development of a versatile wet adhesive microneedle patch system for in vivo usage. In a mouse tumor model, this microneedle patch effectively delivered anticancer drugs while simultaneously sealing the skin wound. Additionally, in an application of rat subcutaneous implantation, an electronic circuit was stably anchored using a double-sided wet adhesive microneedle patch, and its signal location underneath the skin did not change over time. Thus, the proposed acrylated-MAP-based wet adhesive microneedle patch system holds great promise for biomedical applications, paving the way for advancements in drug delivery therapeutics, tissue engineering, and implantable electronic medical devices.


Subject(s)
Drug Delivery Systems , Needles , Proteins , Animals , Proteins/administration & dosage , Microinjections/methods , Rats, Sprague-Dawley , Transdermal Patch , Tissue Adhesives/administration & dosage , Mice , Humans , Antineoplastic Agents/administration & dosage , Male , Cell Line, Tumor , Rats , Female , Mice, Inbred BALB C , Skin/metabolism , Adhesives/administration & dosage , Acrylates/chemistry , Acrylates/administration & dosage
8.
Int J Pharm ; 660: 124220, 2024 Jul 20.
Article in English | MEDLINE | ID: mdl-38734274

ABSTRACT

Porous Microneedles (PMNs) have been widely used in drug delivery and medical diagnosis owing to their abundant interconnected pores. However, the mechanical strength, the use of organic solvent, and drug loading capacity have long been challenging. Herein, a novel strategy of PMNs fabrication based on the Ice Templating Method is proposed that is suitable for insoluble, soluble, and nanosystem drug loading. The preparation process simplifies the traditional microneedle preparation process with a shorter preparation time. It endows the highly tunable porous morphology, enhanced mechanical strength, and rapid dissolution performance. Micro-CT three-dimensional reconstruction was used to better quantify the internal structures of PMNs, and we further established the equivalent pore network model to statistically analyze the internal pore structure parameters of PMNs. In particular, the mechanical strength is mainly negatively correlated with the surface porosity, while the dissolution velocity is mainly positively correlated with the permeability coefficient by the correlation heatmap. The poorly water-soluble Asiatic acid was encapsulated in PMNs in nanostructured lipid carriers, showing prominent hypertrophic scar healing trends. This work offers a quick and easy way of preparation that may be used to expand PMNs function and be introduced in industrial manufacturing development.


Subject(s)
Drug Delivery Systems , Needles , Solubility , Porosity , Ice , Drug Liberation , Animals , Microinjections/methods , Microinjections/instrumentation , X-Ray Microtomography , Drug Carriers/chemistry , Lipids/chemistry
9.
Adv Drug Deliv Rev ; 210: 115341, 2024 07.
Article in English | MEDLINE | ID: mdl-38797317

ABSTRACT

Microneedles (MNs) offer minimally-invasive access to interstitial fluid (ISF) - a potent alternative to blood in terms of monitoring physiological analytes. This property is particularly advantageous for the painless detection and monitoring of drugs and biomolecules. However, the complexity of the skin environment, coupled with the inherent nature of the analytes being detected and the inherent physical properties of MNs, pose challenges when conducting physiological monitoring using this fluid. In this review, we discuss different sensing mechanisms and highlight advancements in monitoring different targets, with a particular focus on drug monitoring. We further list the current challenges facing the field and conclude by discussing aspects of MN design which serve to enhance their performance when monitoring different classes of analytes.


Subject(s)
Microinjections , Needles , Animals , Humans , Biosensing Techniques/methods , Drug Monitoring/methods , Extracellular Fluid/metabolism , Microinjections/instrumentation , Microinjections/methods , Skin/metabolism
10.
STAR Protoc ; 5(2): 103086, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38795351

ABSTRACT

During development, the zebrafish embryo relies on its yolk sac as a nutrient source. Here, we present a protocol for modifying the free fatty acid (FFA) and triacylglycerol (TAG) content of the zebrafish yolk sac by microinjection. We describe steps for needle and injection mold preparation, FFA and TAG solution preparation, and microinjection. This protocol can elucidate how excesses of FFA and TAG affect development and modify the transcriptome of zebrafish embryos. For complete details on the use and execution of this protocol, please refer to Konadu et al. 1.


Subject(s)
Embryo, Nonmammalian , Fatty Acids, Nonesterified , Microinjections , Triglycerides , Zebrafish , Animals , Zebrafish/embryology , Microinjections/methods , Triglycerides/metabolism , Fatty Acids, Nonesterified/metabolism , Embryo, Nonmammalian/metabolism , Yolk Sac/metabolism
11.
Int J Pharm ; 659: 124247, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38782153

ABSTRACT

There is a growing and urgent need for developing novel biomaterials and therapeutic approaches for efficient wound healing. Microneedles (MNs), which can penetrate necrotic tissues and biofilm barriers at the wound and deliver active ingredients to the deeper layers in a minimally invasive and painless manner, have stimulated the interests of many researchers in the wound-healing filed. Among various materials, polymeric MNs have received widespread attention due to their abundant material sources, simple and inexpensive manufacturing methods, excellent biocompatibility and adjustable mechanical strength. Meanwhile, due to the unique properties of nanomaterials, the incorporation of nanomaterials can further extend the application range of polymeric MNs to facilitate on-demand drug release and activate specific therapeutic effects in combination with other therapies. In this review, we firstly introduce the current status and challenges of wound healing, and then outline the advantages and classification of MNs. Next, we focus on the manufacturing methods of polymeric MNs and the different raw materials used for their production. Furthermore, we give a summary of polymeric MNs incorporated with several common nanomaterials for chronic wounds healing. Finally, we discuss the several challenges and future prospects of transdermal drug delivery systems using nanomaterials-based polymeric MNs in wound treatment application.


Subject(s)
Drug Delivery Systems , Nanostructures , Needles , Polymers , Wound Healing , Wound Healing/drug effects , Humans , Polymers/chemistry , Animals , Nanostructures/administration & dosage , Administration, Cutaneous , Microinjections/methods
12.
Methods Cell Biol ; 187: 139-174, 2024.
Article in English | MEDLINE | ID: mdl-38705623

ABSTRACT

Array tomography (AT) allows one to localize sub-cellular components within the structural context of cells in 3D through the imaging of serial sections. Using this technique, the z-resolution can be improved physically by cutting ultra-thin sections. Nevertheless, conventional immunofluorescence staining of those sections is time consuming and requires relatively large amounts of costly antibody solutions. Moreover, epitopes are only readily accessible at the section's surface, leaving the volume of the serial sections unlabeled. Localization of receptors at neuronal synapses in 3D in their native cellular ultrastructural context is important for understanding signaling processes. Here, we present in vivo labeling of receptors via fluorophore-coupled tags in combination with super-resolution AT. We present two workflows where we label receptors at the plasma membrane: first, in vivo labeling via microinjection with a setup consisting of readily available components and self-manufactured microscope table equipment and second, live receptor labeling by using a cell-permeable tag. To take advantage of a near-to-native preservation of tissues for subsequent scanning electron microscopy (SEM), we also apply high-pressure freezing and freeze substitution. The advantages and disadvantages of our workflows are discussed.


Subject(s)
Synapses , Tomography , Animals , Synapses/metabolism , Synapses/ultrastructure , Tomography/methods , Imaging, Three-Dimensional/methods , Staining and Labeling/methods , Mice , Microscopy, Electron, Scanning/methods , Fluorescent Dyes/chemistry , Microinjections/methods , Neurons/metabolism , Rats
13.
Int J Nanomedicine ; 19: 4061-4079, 2024.
Article in English | MEDLINE | ID: mdl-38736651

ABSTRACT

Purpose: Transdermal Drug Delivery System (TDDS) offers a promising alternative for delivering poorly soluble drugs, challenged by the stratum corneum's barrier effect, which restricts the pool of drug candidates suitable for TDDS. This study aims to establish a delivery platform specifically for highly lipophilic drugs requiring high doses (log P > 5, dose > 10 mg/kg/d), to improve their intradermal delivery and enhance solubility. Methods: Cannabidiol (CBD, log P = 5.91) served as the model drug. A CBD nanosuspension (CBD-NS) was prepared using a bottom-up method. The particle size, polydispersity index (PDI), zeta potential, and concentration of the CBD-NS were characterized. Subsequently, CBD-NS was incorporated into dissolving microneedles (DMNs) through a one-step manufacturing process. The intradermal dissolution abilities, physicochemical properties, mechanical strength, insertion depth, and release behavior of the DMNs were evaluated. Sprague-Dawley (SD) rats were utilized to assess the efficacy of the DMN patch in treating knee synovitis and to analyze its skin permeation kinetics and pharmacokinetic performance. Results: The CBD-NS, stabilized with Tween 80, exhibited a particle size of 166.83 ± 3.33 nm, a PDI of 0.21 ± 0.07, and a concentration of 46.11 ± 0.52 mg/mL. The DMN loaded with CBD-NS demonstrated favorable intradermal dissolution and mechanical properties. It effectively increased the delivery of CBD into the skin, extended the action's duration in vivo, and enhanced bioavailability. CBD-NS DMN exhibited superior therapeutic efficacy and safety in a rat model of knee synovitis, significantly inhibiting TNF-α and IL-1ß compared with the methotrexate subcutaneous injection method. Conclusion: NS technology effectively enhances the solubility of the poorly soluble drug CBD, while DMN facilitates penetration, extends the duration of action in vivo, and improves bioavailability. Furthermore, CBD has shown promising therapeutic outcomes in treating knee synovitis. This innovative drug delivery system is expected to offer a more efficient solution for the administration of highly lipophilic drugs akin to CBD, thereby facilitating high-dose administration.


Subject(s)
Administration, Cutaneous , Cannabidiol , Needles , Particle Size , Rats, Sprague-Dawley , Skin Absorption , Suspensions , Animals , Cannabidiol/pharmacokinetics , Cannabidiol/administration & dosage , Cannabidiol/chemistry , Skin Absorption/drug effects , Rats , Suspensions/chemistry , Male , Skin/metabolism , Skin/drug effects , Solubility , Drug Delivery Systems/methods , Transdermal Patch , Nanoparticles/chemistry , Microinjections/methods , Microinjections/instrumentation
14.
Int J Pharm ; 658: 124195, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38703935

ABSTRACT

Microneedles (MN) have emerged as an innovative technology for drug delivery, offering a minimally invasive approach to administer therapeutic agents. Recent applications have included ocular drug delivery, requiring the manufacture of sub-millimeter needle arrays in a reproducible and reliable manner. The development of 3D printing technologies has facilitated the fabrication of MN via mold production, although there is a paucity of information available regarding how the printing parameters may influence crucial issues such as sharpness and penetration efficacy. In this study, we have developed and optimized a 3D-printed MN micro-mold using stereolithography (SLA) 3D printing to prepare a dissolving ocular MN patch. The effects of a range of parameters including aspect ratio, layer thickness, length, mold shape and printing orientation have been examined with regard to both architecture and printing accuracy of the MN micro-mold, while the effects of printing angle on needle fidelity was also examined for a range of basic shapes (conical, pyramidal and triangular pyramidal). Mechanical strength and in vitro penetration of the polymeric (PVP/PVA) MN patch produced from reverse molds fabricated using MN with a range of shapes and height, and aspect ratios were assessed, followed by ex vivo studies of penetration into excised scleral and corneal tissues. The optimization process identified the parameters required to produce MN with the sharpest tips and highest dimensional fidelity, while the ex vivo studies indicated that these optimized systems would penetrate the ocular tissue with minimal applied pressure, thereby allowing ease of patient self-administration.


Subject(s)
Administration, Ophthalmic , Drug Delivery Systems , Needles , Printing, Three-Dimensional , Stereolithography , Animals , Microinjections/methods , Microinjections/instrumentation , Cornea/metabolism , Sclera , Swine , Technology, Pharmaceutical/methods
15.
Eur J Pharm Biopharm ; 199: 114311, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38710374

ABSTRACT

The field of machine learning (ML) is advancing to a larger extent and finding its applications across numerous fields. ML has the potential to optimize the development process of microneedle patch by predicting the drug release pattern prior to its fabrication and production. The early predictions could not only assist the in-vitro and in-vivo experimentation of drug release but also conserve materials, reduce cost, and save time. In this work, we have used a dataset gleaned from the literature to train and evaluate different ML models, such as stacking regressor, artificial neural network (ANN) model, and voting regressor model. In this study, models were developed to improve prediction accuracy of the in-vitro drug release amount from the hydrogel-type microneedle patch and the in-vitro drug permeation amount through the micropores created by solid microneedles on the skin. We compared the performance of these models using various metrics, including R-squared score (R2 score), root mean squared error (RMSE), and mean absolute error (MAE). Voting regressor model performed better with drug permeation percentage as an outcome feature having RMSE value of 3.24. In comparison, stacking regressor have a RMSE value of 16.54, and ANN model has shown a RMSE value of 14. The value of permeation amount calculated from the predicted percentage is found to be more accurate with RMSE of 654.94 than direct amount prediction, having a RMSE of 669.69. All our models have performed far better than the previously developed model before this research, which had a RMSE of 4447.23. We then optimized voting regressor model's hyperparameter and cross validated its performance. Furthermore, it was deployed in a webapp using Flask framework, showing a way to develop an application to allow other users to easily predict drug permeation amount from the microneedle patch at a particular time period. This project demonstrates the potential of ML to facilitate the development of microneedle patch and other drug delivery systems.


Subject(s)
Drug Delivery Systems , Machine Learning , Needles , Neural Networks, Computer , Permeability , Skin Absorption , Skin , Skin Absorption/physiology , Drug Delivery Systems/methods , Skin/metabolism , Administration, Cutaneous , Drug Liberation , Transdermal Patch , Animals , Microinjections/methods , Microinjections/instrumentation
16.
STAR Protoc ; 5(2): 103022, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38625797

ABSTRACT

Precise integration of DNA constructs greater than 3 kb into mouse zygotes is difficult. Here, we present a protocol for large DNA transgenesis in mice using the Cas9+Bxb1 toolbox. We describe steps for choosing mouse strains with preplaced attachment sites. We then detail procedures for microinjecting mouse zygotes with the plasmid donor DNA construct to generate transgenic mice by recombination-mediated cassette exchange. This protocol has the potential for application in exploring the functional implications of large structural variations in cancer. For complete details on the use and execution of this protocol, please refer to Low et al.1 and Hosur et al.2.


Subject(s)
DNA , Gene Transfer Techniques , Mice, Transgenic , Animals , Mice , DNA/genetics , CRISPR-Cas Systems/genetics , Zygote/metabolism , Microinjections/methods , Plasmids/genetics , Female
17.
J Pharm Pharmacol ; 76(6): 616-626, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38656627

ABSTRACT

OBJECTIVE: The objective of the present study was to enhance the bioavailability of cannabidiol (CBD) using 3D Digital Light Processing (DLP)-printed microneedle (MN) transdermal drug delivery system. METHODS: CBD MN patch was fabricated and optimized using 3D DLP printing using CBD (8% w/v), Lithium phenyl-2,4,6-trimethylbenzoylphosphinate (LAP) (0.49% w/v), distilled water (20% w/v), and poly (ethylene glycol) dimethacrylate 550 (PEGDAMA 550) (up to 100% w/v). CBD MNs were characterized for their morphology, mechanical strength, in vitro release study, ex vivo permeation study, and in vivo pharmacokinetic (PK) profile. KEY FINDINGS: Microscopic images showed that sharp CBD MNs with a height of ~800 µm, base diameter of ~250 µm, and tip with a radius of curvature (RoC) of ~15 µm were successfully printed using optimized printing parameters. Mechanical strength studies showed no significant deformation in the morphology of CBD MNs even after applying 0.5N/needle force. Ex vivo permeation study showed significant (P < .0001) permeation of CBD in the receiving media as compared to CBD patch (control). In vivo PK study showed significantly (P < .05) enhanced bioavailability in the case of CBD MN patch as compared to CBD subcutaneous inj. (control). CONCLUSION: Overall, systemic absorption of CBD was significantly enhanced using 3D-printed MN drug delivery system.


Subject(s)
Administration, Cutaneous , Biological Availability , Cannabidiol , Drug Delivery Systems , Needles , Printing, Three-Dimensional , Transdermal Patch , Animals , Cannabidiol/pharmacokinetics , Cannabidiol/administration & dosage , Rats , Male , Skin Absorption , Rats, Sprague-Dawley , Microinjections/methods , Drug Liberation
18.
ACS Sens ; 9(5): 2294-2309, 2024 05 24.
Article in English | MEDLINE | ID: mdl-38654679

ABSTRACT

Bioanalyte collection by blood draw is a painful process, prone to needle phobia and injuries. Microneedles can be engineered to penetrate the epidermal skin barrier and collect analytes from the interstitial fluid, arising as a safe, painless, and effective alternative to hypodermic needles. Although there are plenty of reviews on the various types of microneedles and their use as drug delivery systems, there is a lack of systematization on the application of polymeric microneedles for diagnosis. In this review, we focus on the current state of the art of this field, while providing information on safety, preclinical and clinical trials, and market distribution, to outline what we believe will be the future of health monitoring.


Subject(s)
Needles , Polymers , Humans , Polymers/chemistry , Drug Delivery Systems/instrumentation , Animals , Microinjections/instrumentation , Microinjections/methods , Monitoring, Physiologic/instrumentation , Monitoring, Physiologic/methods
19.
Adv Sci (Weinh) ; 11(23): e2309622, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38582511

ABSTRACT

Bacterial skin infections are highly prevalent and pose a significant public health threat. Current strategies are primarily focused on the inhibition of bacterial activation while disregarding the excessive inflammation induced by dead bacteria remaining in the body and the effect of the acidic microenvironment during therapy. In this study, a novel dual-functional MgB2 microparticles integrated microneedle (MgB2 MN) patch is presented to kill bacteria and eliminate dead bacteria for skin infection management. The MgB2 microparticles not only can produce a local alkaline microenvironment to promote the proliferation and migration of fibroblasts and keratinocytes, but also achieve >5 log bacterial inactivation. Besides, the MgB2 microparticles effectively mitigate dead bacteria-induced inflammation through interaction with lipopolysaccharide (LPS). With the incorporation of these MgB2 microparticles, the resultant MgB2 MN patches effectively kill bacteria and capture dead bacteria, thereby mitigating these bacteria-induced inflammation. Therefore, the MgB2 MN patches show good therapeutic efficacy in managing animal bacterial skin infections, including abscesses and wounds. These results indicate that reactive metal borides-integrated microneedle patches hold great promise for the treatment of clinical skin infections.


Subject(s)
Anti-Bacterial Agents , Needles , Animals , Anti-Bacterial Agents/administration & dosage , Mice , Skin Diseases, Bacterial/microbiology , Skin Diseases, Bacterial/drug therapy , Disease Models, Animal , Humans , Transdermal Patch , Microinjections/methods
20.
Mol Pharm ; 21(5): 2118-2147, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38660711

ABSTRACT

The various kinds of nanocarriers (NCs) have been explored for the delivery of therapeutics designed for the management of skin manifestations. The NCs are considered as one of the promising approaches for the skin delivery of therapeutics attributable to sustained release and enhanced skin penetration. Despite the extensive applications of the NCs, the challenges in their delivery via skin barrier (majorly stratum corneum) have persisted. To overcome all the challenges associated with the delivery of NCs, the microneedle (MN) technology has emerged as a beacon of hope. Programmable drug release, being painless, and its minimally invasive nature make it an intriguing strategy to circumvent the multiple challenges associated with the various drug delivery systems. The integration of positive traits of NCs and MNs boosts therapeutic effectiveness by evading stratum corneum, facilitating the delivery of NCs through the skin and enhancing their targeted delivery. This review discusses the barrier function of skin, the importance of MNs, the types of MNs, and the superiority of NC-loaded MNs. We highlighted the applications of NC-integrated MNs for the management of various skin ailments, combinational drug delivery, active targeting, in vivo imaging, and as theranostics. The clinical trials, patent portfolio, and marketed products of drug/NC-integrated MNs are covered. Finally, regulatory hurdles toward benchtop-to-bedside translation, along with promising prospects needed to scale up NC-integrated MN technology, have been deliberated. The current review is anticipated to deliver thoughtful visions to researchers, clinicians, and formulation scientists for the successful development of the MN-technology-based product by carefully optimizing all the formulation variables.


Subject(s)
Administration, Cutaneous , Drug Delivery Systems , Needles , Skin Diseases , Skin , Humans , Drug Delivery Systems/methods , Skin Diseases/drug therapy , Skin/metabolism , Skin/drug effects , Nanoparticles/chemistry , Nanoparticles/administration & dosage , Drug Carriers/chemistry , Animals , Skin Absorption , Microinjections/methods , Microinjections/instrumentation
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