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1.
Drug Deliv Transl Res ; 12(1): 294-305, 2022 01.
Article in English | MEDLINE | ID: mdl-33604838

ABSTRACT

Biotherapeutics are highly efficacious, but the pain and inconvenience of chronic injections lead to poor patient compliance and compromise effective disease management. Despite innumerable attempts, oral delivery of biotherapeutics remains unsuccessful due to their degradation in the gastrointestinal (GI) environment and poor intestinal absorption. We have developed an orally ingestible robotic pill (RP) for drug delivery, which protects the biotherapeutic drug payload from digestion in the GI tract and auto-injects it into the wall of the small intestine as a safe, pain-free injection since the intestines are insensate to sharp stimuli. The payload is delivered upon inflation of a balloon folded within the RP, which deflates immediately after drug delivery. Here we present results from two clinical studies demonstrating the safety, tolerability and performance of the RP in healthy humans. In the first study, three versions of the RP (A, B and C) were evaluated, which were identical in all respects except for the diameter of the balloon. The RP successfully delivered a biotherapeutic (octreotide) in 3 out of 12 subjects in group A, 10 out of 20 subjects in group B and 16 out of 20 subjects in group C, with a mean bioavailability of 65 ± 9% (based on successful drug deliveries in groups A and B). Thus,  reliability of drug delivery with the RP ranged from 25 to 80%, with success rate directly related to balloon size. In a separate study, the deployment of the RP was unaffected by fed or fasting conditions suggesting that the RP may be taken with or without food. These promising clinical data suggest that biotherapeutics currently administered parenterally may be safely and reliably delivered via this versatile, orally ingestible drug delivery platform.


Subject(s)
Robotic Surgical Procedures , Administration, Oral , Biological Availability , Drug Delivery Systems , Healthy Volunteers , Humans , Reproducibility of Results
2.
Pharmacol Res Perspect ; 7(5): e00522, 2019 10.
Article in English | MEDLINE | ID: mdl-31584244

ABSTRACT

Biotherapeutic agents must be administered parenterally to obtain therapeutic blood concentrations, lowering patient compliance and complicating care. An oral delivery platform (ODP) was developed to deliver drugs into the small intestinal wall. This proof-of-concept study was performed in 17 anesthetized, laparotomized swine. In 8 swine weighing 17.4 ± 1.2 kg (mean ± SEM), 20 IU of recombinant human insulin (RHI) were auto-injected into the jejunal wall by placing the ODP inside the jejunum via an enterotomy. In 9 control swine weighing 17.0 ± 0.4 kg, 20 IU of RHI were injected subcutaneously. In both groups, under a 60-80 mg/dL euglycemic glucose clamp, blood glucose was measured with a handheld glucometer and serum insulin was measured using ELISA, at 10-minute intervals between -20 and +420 minutes after RHI delivery. The peak serum concentration of RHI was 517 ± 109 pmol/L in the ODP and 342 ± 50 pmol/L in the subcutaneous group (ns). The areas under the insulin concentration curves (83 ± 18 and 81 ± 10 nmol/L·min) were also similar in both groups. The mean time to peak serum concentration of insulin was 139 ± 42 minutes in the ODP and 227 ± 24 minutes in the subcutaneous group (ns). In conclusion, (a) The bioactivity of RHI was preserved after its delivery into the jejunal wall, (b) the intrajejunal route delivered insulin as rapidly and physiologically as the subcutaneous route, and (c) these pharmacokinetic and pharmacodynamic characteristics of RHI after intrajejunal delivery suggest that drugs currently administered parenterally, such as basal insulin, could be successfully delivered into the proximal intestinal wall via the ingestible capsule.


Subject(s)
Insulin/administration & dosage , Insulin/pharmacokinetics , Jejunum/chemistry , Administration, Oral , Animals , Blood Glucose/analysis , Capsules , Female , Injections, Subcutaneous , Proof of Concept Study , Swine
3.
Nature ; 505(7482): 239-43, 2014 Jan 09.
Article in English | MEDLINE | ID: mdl-24291791

ABSTRACT

The increasing demands placed on natural resources for fuel and food production require that we explore the use of efficient, sustainable feedstocks such as brown macroalgae. The full potential of brown macroalgae as feedstocks for commercial-scale fuel ethanol production, however, requires extensive re-engineering of the alginate and mannitol catabolic pathways in the standard industrial microbe Saccharomyces cerevisiae. Here we present the discovery of an alginate monomer (4-deoxy-L-erythro-5-hexoseulose uronate, or DEHU) transporter from the alginolytic eukaryote Asteromyces cruciatus. The genomic integration and overexpression of the gene encoding this transporter, together with the necessary bacterial alginate and deregulated native mannitol catabolism genes, conferred the ability of an S. cerevisiae strain to efficiently metabolize DEHU and mannitol. When this platform was further adapted to grow on mannitol and DEHU under anaerobic conditions, it was capable of ethanol fermentation from mannitol and DEHU, achieving titres of 4.6% (v/v) (36.2 g l(-1)) and yields up to 83% of the maximum theoretical yield from consumed sugars. These results show that all major sugars in brown macroalgae can be used as feedstocks for biofuels and value-added renewable chemicals in a manner that is comparable to traditional arable-land-based feedstocks.


Subject(s)
Biofuels/supply & distribution , Carbohydrate Metabolism , Ethanol/metabolism , Genetic Engineering , Phaeophyceae/metabolism , Saccharomyces cerevisiae/metabolism , Alginates/metabolism , Anaerobiosis , Ascomycota/genetics , Ascomycota/metabolism , Biotechnology , Carrier Proteins/genetics , Carrier Proteins/metabolism , Evolution, Molecular , Fermentation , Genetic Complementation Test , Glucuronic Acid/metabolism , Hexuronic Acids/metabolism , Mannitol/metabolism , Phaeophyceae/genetics , Quinic Acid/metabolism , Reproducibility of Results , Saccharomyces cerevisiae/genetics , Seaweed/genetics , Seaweed/metabolism , Uronic Acids/metabolism
4.
PLoS One ; 7(11): e49387, 2012.
Article in English | MEDLINE | ID: mdl-23185324

ABSTRACT

Rab monomeric GTPases regulate specific aspects of vesicle transport in eukaryotes including coat recruitment, uncoating, fission, motility, target selection and fusion. Moreover, individual Rab proteins function at specific sites within the cell, for example the ER, golgi and early endosome. Importantly, the localization and function of individual Rab subfamily members are often conserved underscoring the significant contributions that model organisms such as Caenorhabditis elegans can make towards a better understanding of human disease caused by Rab and vesicle trafficking malfunction. With this in mind, a bioinformatics approach was first taken to identify and classify the complete C. elegans Rab family placing individual Rabs into specific subfamilies based on molecular phylogenetics. For genes that were difficult to classify by sequence similarity alone, we did a comparative analysis of intron position among specific subfamilies from yeast to humans. This two-pronged approach allowed the classification of 30 out of 31 C. elegans Rab proteins identified here including Rab31/Rab50, a likely member of the last eukaryotic common ancestor (LECA). Second, a molecular toolset was created to facilitate research on biological processes that involve Rab proteins. Specifically, we used Gateway-compatible C. elegans ORFeome clones as starting material to create 44 full-length, sequence-verified, dominant-negative (DN) and constitutive active (CA) rab open reading frames (ORFs). Development of this toolset provided independent research projects for students enrolled in a research-based molecular techniques course at California State University, East Bay (CSUEB).


Subject(s)
Caenorhabditis elegans Proteins/classification , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/enzymology , Computational Biology/methods , Multigene Family , rab GTP-Binding Proteins/classification , rab GTP-Binding Proteins/metabolism , Amino Acid Sequence , Animals , Caenorhabditis elegans Proteins/chemistry , Clone Cells , Conserved Sequence/genetics , Humans , Introns/genetics , Molecular Sequence Data , Open Reading Frames/genetics , Phylogeny , RNA Splicing/genetics , Reproducibility of Results , Sequence Alignment , rab GTP-Binding Proteins/chemistry
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