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1.
Proc Natl Acad Sci U S A ; 119(33): e2207829119, 2022 08 16.
Article in English | MEDLINE | ID: mdl-35943988

ABSTRACT

Although patients generally prefer oral drug delivery to injections, low permeability of the gastrointestinal tract makes this method impossible for most biomacromolecules. One potential solution is codelivery of macromolecules, including therapeutic proteins or nucleic acids, with intestinal permeation enhancers; however, enhancer use has been limited clinically by modest efficacy and toxicity concerns surrounding long-term administration. Here, we hypothesized that plant-based foods, which are well tolerated by the gastrointestinal tract, may contain compounds that enable oral macromolecular absorption without causing adverse effects. Upon testing more than 100 fruits, vegetables, and herbs, we identified strawberry and its red pigment, pelargonidin, as potent, well-tolerated enhancers of intestinal permeability. In mice, an oral capsule formulation comprising pelargonidin and a 1 U/kg dose of insulin reduced blood glucose levels for over 4 h, with bioactivity exceeding 100% relative to subcutaneous injection. Effects were reversible within 2 h and associated with actin and tight junction rearrangement. Furthermore, daily dosing of mice with pelargonidin for 1 mo resulted in no detectable side effects, including weight loss, tissue damage, or inflammatory responses. These data suggest that pelargonidin is an exceptionally effective enhancer of oral protein uptake that may be safe for routine pharmaceutical use.


Subject(s)
Anthocyanins , Fragaria , Intestinal Absorption , Intestines , Proteins , Administration, Oral , Animals , Anthocyanins/chemistry , Anthocyanins/pharmacology , Fragaria/chemistry , Insulin/administration & dosage , Insulin/pharmacokinetics , Intestinal Absorption/drug effects , Intestines/drug effects , Intestines/metabolism , Mice , Permeability , Proteins/administration & dosage , Proteins/pharmacokinetics
2.
Annu Rev Genet ; 50: 595-618, 2016 Nov 23.
Article in English | MEDLINE | ID: mdl-27893966

ABSTRACT

Plastid-made biopharmaceuticals treat major metabolic or genetic disorders, including Alzheimer's, diabetes, hypertension, hemophilia, and retinopathy. Booster vaccines made in chloroplasts prevent global infectious diseases, such as tuberculosis, malaria, cholera, and polio, and biological threats, such as anthrax and plague. Recent advances in this field include commercial-scale production of human therapeutic proteins in FDA-approved cGMP facilities, development of tags to deliver protein drugs to targeted human cells or tissues, methods to deliver precise doses, and long-term stability of protein drugs at ambient temperature, maintaining their efficacy. Codon optimization utilizing valuable information from sequenced chloroplast genomes enhanced expression of eukaryotic human or viral genes in chloroplasts and offered unique insights into translation in chloroplasts. Support from major biopharmaceutical companies, development of hydroponic production systems, and evaluation by regulatory agencies, including the CDC, FDA, and USDA, augur well for advancing this novel concept to the clinic and revolutionizing affordable healthcare.


Subject(s)
Chloroplasts/genetics , Genetic Engineering/methods , Recombinant Proteins/pharmacology , Vaccines, DNA/pharmacology , Administration, Oral , Alzheimer Disease/drug therapy , Animals , Gene Expression , Glycogen Storage Disease Type II/drug therapy , Hemophilia A/drug therapy , Humans , Hypertension/drug therapy , Plants, Genetically Modified , Plastids/genetics , Recombinant Proteins/administration & dosage , Recombinant Proteins/genetics
3.
Small ; 20(13): e2304150, 2024 Mar.
Article in English | MEDLINE | ID: mdl-37964398

ABSTRACT

Rheumatoid arthritis (RA), a systemic autoimmune disease, poses a significant human health threat. Iguratimod (IGUR), a novel disease-modifying antirheumatic drug (DMARD), has attracted great attention for RA treatment. Due to IGUR's hydrophobic nature, there's a pressing need for effective pharmaceutical formulations to enhance bioavailability and therapeutic efficacy. The high-gravity nanoprecipitation technique (HGNPT) emerges as a promising approach for formulating poorly water-soluble drugs. In this study, IGUR nanodrugs (NanoIGUR) are synthesized using HGNPT, with a focus on optimizing various operational parameters. The outcomes revealed that HGNPT enabled the continuous production of NanoIGUR with smaller sizes (ranging from 300 to 1000 nm), more uniform shapes, and reduced crystallinity. In vitro drug release tests demonstrated improved dissolution rates with decreasing particle size and crystallinity. Notably, in vitro and in vivo investigations showcased NanoIGUR's efficacy in inhibiting synovial fibroblast proliferation, migration, and invasion, as well as reducing inflammation in collagen-induced arthritis. This study introduces a promising strategy to enhance and broaden the application of poorly water-soluble drugs.


Subject(s)
Antirheumatic Agents , Arthritis, Rheumatoid , Chromones , Nanoparticles , Sulfonamides , Humans , Polyvinyl Alcohol , Arthritis, Rheumatoid/drug therapy , Antirheumatic Agents/chemistry , Antirheumatic Agents/pharmacology , Antirheumatic Agents/therapeutic use , Water
4.
Mol Pharm ; 21(6): 2828-2837, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38723178

ABSTRACT

Nefecon, a targeted-release capsule formulation of budesonide approved for the reduction of proteinuria in adults with primary immunoglobulin A nephropathy, targets overproduction of galactose-deficient immunoglobulin A type 1 in the Peyer's patches at the gut mucosal level. To investigate whether the commercial formulation of Nefecon capsules reliably releases budesonide to the distal ileum, a human study was conducted with test capsules reproducing the delayed-release function of Nefecon capsules. Caffeine was included in the test capsules as a marker for capsule opening in the gut since it appears rapidly in saliva after release from orally administered dosage forms. Magnetic resonance imaging with black iron oxide was used to determine the capsule's position in the gut at the time caffeine was first measured in saliva and additionally to directly visualize dispersion of the capsule contents in the gut. In vitro dissolution results confirmed that the test capsules had the same delayed-release characteristics as Nefecon capsules. In 10 of 12 human volunteers, the capsule was demonstrated to open in the distal ileum; in the other two subjects, it opened just past the ileocecal junction. These results compared favorably with the high degree of variability seen in other published imaging studies of delayed-release formulations targeting the gut. The test capsules were shown to reliably deliver their contents to the distal ileum, the region with the highest concentration of Peyer's patches.


Subject(s)
Budesonide , Capsules , Drug Delivery Systems , Ileum , Humans , Ileum/metabolism , Ileum/drug effects , Adult , Drug Delivery Systems/methods , Male , Budesonide/administration & dosage , Budesonide/pharmacokinetics , Budesonide/chemistry , Female , Capsules/chemistry , Delayed-Action Preparations/administration & dosage , Delayed-Action Preparations/pharmacokinetics , Magnetic Resonance Imaging/methods , Administration, Oral , Middle Aged , Caffeine/chemistry , Caffeine/administration & dosage , Peyer's Patches/metabolism , Peyer's Patches/drug effects , Young Adult
5.
Mol Pharm ; 21(4): 1553-1562, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38440796

ABSTRACT

Oral dosage forms are the most widely and frequently used formulations to deliver active pharmaceutical ingredients (APIs), due to their ease of administration and noninvasiveness. Knowledge of intragastric release rates and gastric mixing is crucial for predicting the API release profile, especially for immediate release formulations. However, knowledge of the intragastric fate of oral dosage forms in vivo to date is limited, particularly for dosage forms administered when the stomach is in the fed state. An improved understanding of gastric food processing, dosage form location, disintegration times, and food effects is essential for greater understanding for effective API formulation design. In vitro standard and controlled modeling has played a significant role in predicting the behavior of dosage forms in vivo. However, discrepancies are reported between in vitro and in vivo disintegration times, with these discrepancies being greatest in the fed state. Studying the fate of a dosage form in vivo is a challenging process, usually requiring the use of invasive methods, such as intubation. Noninvasive, whole body imaging techniques can however provide unique insights into this process. A scoping review was performed systematically to identify and critically appraise published studies using MRI to visualize oral solid dosage forms in vivo in healthy human subjects. The review identifies that so far, an all-purpose robust contrast agent or dosage form type has not been established for dosage form visualization and disintegration studies in the gastrointestinal system. Opportunities have been identified for future studies, with particular focus on characterizing dosage form disintegration for development after the consumption food, as exemplified by the standard Food and Drug Administration (FDA) high fat meal.


Subject(s)
Gastrointestinal Tract , Stomach , Humans , Administration, Oral , Stomach/diagnostic imaging , Contrast Media , Magnetic Resonance Imaging/methods , Dosage Forms , Solubility , Tablets
6.
Microb Cell Fact ; 23(1): 163, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824527

ABSTRACT

BACKGROUND: Type I interferons (IFN-I)-a group of cytokines with immunomodulatory, antiproliferative, and antiviral properties-are widely used as therapeutics for various cancers and viral diseases. Since IFNs are proteins, they are highly susceptible to degradation by proteases and by hydrolysis in the strong acid environment of the stomach, and they are therefore administered parenterally. In this study, we examined whether the intestinal bacterium, enteropathogenic Escherichia coli (EPEC), can be exploited for oral delivery of IFN-Is. EPEC survives the harsh conditions of the stomach and, upon reaching the small intestine, expresses a type III secretion system (T3SS) that is used to translocate effector proteins across the bacterial envelope into the eukaryotic host cells. RESULTS: In this study, we developed an attenuated EPEC strain that cannot colonize the host but can secrete functional human IFNα2 variant through the T3SS. We found that this bacteria-secreted IFN exhibited antiproliferative and antiviral activities similar to commercially available IFN. CONCLUSION: These findings present a potential novel approach for the oral delivery of IFN via secreting bacteria.


Subject(s)
Enteropathogenic Escherichia coli , Type III Secretion Systems , Enteropathogenic Escherichia coli/metabolism , Humans , Type III Secretion Systems/metabolism , Interferon-alpha/metabolism , Antiviral Agents/pharmacology , Antiviral Agents/metabolism , Interferon alpha-2/metabolism , Cell Proliferation/drug effects
7.
Mar Drugs ; 22(3)2024 Feb 21.
Article in English | MEDLINE | ID: mdl-38535439

ABSTRACT

Drug administration by oral delivery is the preferred route, regardless of some remaining challenges, such as short resident time and toxicity issues. One strategy to overcome these barriers is utilizing mucoadhesive vectors that can increase intestinal resident time and systemic uptake. In this study, biomimetic nanoparticles (NPs) were produced from 14 types of edible algae and evaluated for usage as oral DDSs by measuring their size, surface charge, morphology, encapsulation efficiency, mucoadhesion force, and cellular uptake into Caco-2 cells. The NPs composed of algal materials (aNPs) exhibited a spherical morphology with a size range of 126-606 nm and a surface charge of -9 to -38 mV. The mucoadhesive forces tested ex vivo against mice, pigs, and sheep intestines revealed significant variation between algae and animal models. Notably, Arthospira platensis (i.e., Spirulina) NPs (126 ± 2 nm, -38 ± 3 mV) consistently exhibited the highest mucoadhesive forces (up to 3127 ± 272 µN/mm²). Moreover, a correlation was found between high mucoadhesive force and high cellular uptake into Caco-2 cells, further supporting the potential of aNPs by indicating their ability to facilitate drug absorption into the human intestinal epithelium. The results presented herein serve as a proof of concept for the possibility of aNPs as oral drug delivery vehicles.


Subject(s)
Biomimetics , Nanoparticles , Humans , Animals , Mice , Sheep , Swine , Caco-2 Cells , Biological Transport , Drug Delivery Systems
8.
Chem Pharm Bull (Tokyo) ; 72(1): 102-108, 2024 Jan 23.
Article in English | MEDLINE | ID: mdl-38123341

ABSTRACT

For taste masking of fexofenadine hydrochloride (FXD), ethylcellulose (EC) microparticles with FXD were developed. The amounts of EC, Tween 80, and polyvinyl alcohol (PVA) in the composition had little effect on initial drug release properties. Based on the results of the drug recovery and the drug release properties, FXD(EC200) was the optimal FXD microparticle formulation. From the results of Fourier transform infrared spectroscopy spectra and X-ray diffraction patterns of FXD(EC200), FXD amorphization in the microparticles and interaction between FXD and other components were suggested, and the formation of a solid dispersion of FXD was suggested. Because the possibility of the complex of PVA and FXD on the particle surface was suggested, sodium lauryl sulfate (SLS) was added to the composition. The initial drug release from FXD microparticles with SLS was further suppressed compared with FXD(EC200). From these results, FXD microparticles with SLS can be prepared as a controlled-release formulation and are expected to be useful for masking the bitter tasting particulates.


Subject(s)
Taste , Terfenadine , Terfenadine/pharmacology , Cellulose/chemistry , Spectroscopy, Fourier Transform Infrared , Particle Size , Solubility
9.
AAPS PharmSciTech ; 25(7): 228, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-39354282

ABSTRACT

The oral route stands out as the most commonly used method for drug administration, prized for its non-invasive nature, patient compliance, and easy administration. Several elements influence the absorption of oral medications, including their solubility, permeability across mucosal membranes, and stability within the gastrointestinal (GI) environment. Research has delved into comprehending physicochemical, biochemical, metabolic, and biological obstacles that impact the bioavailability of a drug. To improve oral drug absorption, several pharmaceutical technologies and delivery methods have been studied, including cyclodextrins, micelles, nanocarriers, and lipid-based carriers. This review examines both traditional and innovative drug delivery methods, as well as the physiological and pharmacological barriers influencing medication bioavailability when taken orally. Additionally, it describes the challenges and advancements in developing formulations suitable for oral use.


Subject(s)
Biological Availability , Drug Delivery Systems , Solubility , Administration, Oral , Humans , Drug Delivery Systems/methods , Pharmaceutical Preparations/administration & dosage , Pharmaceutical Preparations/chemistry , Pharmaceutical Preparations/metabolism , Drug Carriers/chemistry , Animals , Chemistry, Pharmaceutical/methods , Intestinal Absorption/physiology , Permeability , Micelles , Nanoparticles/chemistry , Lipids/chemistry
10.
Saudi Pharm J ; 32(4): 102002, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38439951

ABSTRACT

Pectin hydrogels have emerged as a highly promising medium for the controlled release of pharmaceuticals in the dynamic field of drug delivery. The present review sheds light on the broad range of applications and potential of pectin-based hydrogels in pharmaceutical formulations. Pectin, as a biopolymer, is a versatile candidate for various drug delivery systems because of its wide range of properties and characteristics. The information provided on formulation strategies and crosslinking techniques provides researchers with tools to improve drug entrapment and controlled release. Furthermore, this review provides a more in-depth understanding of the complex factors influencing drug release from pectin hydrogels, such as the impact of environmental conditions and drug-specific characteristics. Pectin hydrogels demonstrate adaptability across diverse domains, ranging from applications in oral and transdermal drug delivery to contributions in wound healing, tissue engineering, and ongoing clinical trials. While standardization and regulatory compliance remain significant challenges, the future of pectin hydrogels appears to be bright, opening up new possibilities for advanced drug delivery systems.

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