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1.
Adv Nanobiomed Res ; 3(3): 2200106, 2023 Mar.
Article in English | MEDLINE | ID: mdl-37266328

ABSTRACT

Diseases of the pulmonary alveolus, such as pulmonary fibrosis, are leading causes of morbidity and mortality, but exceedingly few drugs are developed for them. A major reason for this gap is that after inhalation, drugs are quickly whisked away from alveoli due to their high perfusion. To solve this problem, the mechanisms by which nano-scale drug carriers dramatically improve lung pharmacokinetics using an inhalable liposome formulation containing nintedanib, an antifibrotic for pulmonary fibrosis, are studied. Direct instillation of liposomes in murine lung increases nintedanib's total lung delivery over time by 8000-fold and lung half life by tenfold, compared to oral nintedanib. Counterintuitively, it is shown that pulmonary surfactant neither lyses nor aggregates the liposomes. Instead, each lung compartment (alveolar fluid, alveolar leukocytes, and parenchyma) elutes liposomes over 24 h, likely serving as "drug depots." After deposition in the surfactant layer, liposomes are transferred over 3-6 h to alveolar leukocytes (which take up a surprisingly minor 1-5% of total lung dose instilled) in a nonsaturable fashion. Further, all cell layers of the lung parenchyma take up liposomes. These and other mechanisms elucidated here should guide engineering of future inhaled nanomedicine for alveolar diseases.

2.
Bioconjug Chem ; 33(7): 1286-1294, 2022 07 20.
Article in English | MEDLINE | ID: mdl-35710322

ABSTRACT

Engineering drug delivery systems for prolonged pharmacokinetics (PK) has been an ongoing pursuit for nearly 50 years. The gold standard for PK enhancement is the coating of nanoparticles with polymers, namely polyethylene glycol (PEGylation), which has been applied in several clinically used products. In the present work, we utilize the longest circulating and most abundant component of blood─the erythrocyte─to improve the PK behavior of liposomes. Antibody-mediated coupling of liposomes to erythrocytes was tested in vitro to identify a loading dose that did not adversely impact the carrier cells. Injection of erythrocyte targeting liposomes into mice resulted in a ∼2-fold improvement in the area under the blood concentration versus time profile versus PEGylated liposomes and a redistribution from the plasma into the cellular fraction of blood. These results suggest that in vivo targeting of erythrocytes is a viable strategy to improve liposome PK relative to current, clinically viable strategies.


Subject(s)
Liposomes , Polyethylene Glycols , Animals , Drug Delivery Systems , Erythrocytes , Liposomes/pharmacokinetics , Mice , Polyethylene Glycols/pharmacokinetics , Polymers
3.
ACS Nano ; 16(3): 4666-4683, 2022 03 22.
Article in English | MEDLINE | ID: mdl-35266686

ABSTRACT

A long-standing goal of nanomedicine is to improve a drug's benefit by loading it into a nanocarrier that homes solely to a specific target cell and organ. Unfortunately, nanocarriers usually end up with only a small percentage of the injected dose (% ID) in the target organ, due largely to clearance by the liver and spleen. Further, cell-type-specific targeting is rarely achieved without reducing target organ accumulation. To solve these problems, we introduce DART (dual affinity to RBCs and target cells), in which nanocarriers are conjugated to two affinity ligands, one binding red blood cells and one binding a target cell (here, pulmonary endothelial cells). DART nanocarriers first bind red blood cells and then transfer to the target organ's endothelial cells as the bound red blood cells squeeze through capillaries. We show that within minutes after intravascular injection in mice nearly 70% ID of DART nanocarriers accumulate in the target organ (lungs), more than doubling the % ID ceiling achieved by a multitude of prior technologies, finally achieving a majority % ID in a target organ. Humanized DART nanocarriers in ex vivo perfused human lungs recapitulate this phenomenon. Furthermore, DART enhances the selectivity of delivery to target endothelial cells over local phagocytes within the target organ by 6-fold. DART's marked improvement in both organ- and cell-type targeting may thus be helpful in localizing drugs for a multitude of medical applications.


Subject(s)
Drug Delivery Systems , Nanoparticles , Animals , Drug Carriers/metabolism , Endothelial Cells/metabolism , Erythrocytes , Lung/metabolism , Mice , Pharmaceutical Preparations
4.
Nat Nanotechnol ; 17(1): 86-97, 2022 01.
Article in English | MEDLINE | ID: mdl-34795440

ABSTRACT

This study shows that the supramolecular arrangement of proteins in nanoparticle structures predicts nanoparticle accumulation in neutrophils in acute lung inflammation (ALI). We observed homing to inflamed lungs for a variety of nanoparticles with agglutinated protein (NAPs), defined by arrangement of protein in or on the nanoparticles via hydrophobic interactions, crosslinking and electrostatic interactions. Nanoparticles with symmetric protein arrangement (for example, viral capsids) had no selectivity for inflamed lungs. Flow cytometry and immunohistochemistry showed NAPs have tropism for pulmonary neutrophils. Protein-conjugated liposomes were engineered to recapitulate NAP tropism for pulmonary neutrophils. NAP uptake in neutrophils was shown to depend on complement opsonization. We demonstrate diagnostic imaging of ALI with NAPs; show NAP tropism for inflamed human donor lungs; and show that NAPs can remediate pulmonary oedema in ALI. This work demonstrates that structure-dependent tropism for neutrophils drives NAPs to inflamed lungs and shows NAPs can detect and treat ALI.


Subject(s)
Inflammation/pathology , Lung/pathology , Nanoparticles/chemistry , Neutrophils/pathology , Proteins/chemistry , Acute Disease , Agglutination/drug effects , Animals , Antibodies/pharmacology , Cross-Linking Reagents/chemistry , Dextrans/chemistry , Humans , Lipopolysaccharides , Liposomes , Lung/diagnostic imaging , Male , Mice, Inbred C57BL , Muramidase/metabolism , Neutrophils/drug effects , Opsonin Proteins/metabolism , Static Electricity , Tissue Distribution/drug effects , Tomography, Emission-Computed, Single-Photon , Tomography, X-Ray Computed
5.
Adv Mater ; 34(8): e2107070, 2022 Feb.
Article in English | MEDLINE | ID: mdl-34910334

ABSTRACT

Complement opsonization is among the biggest challenges facing nanomedicine. Nearly instantly after injection into blood, nanoparticles are opsonized by the complement protein C3, leading to clearance by phagocytes, fouling of targeting moieties, and release of anaphylatoxins. While surface polymers such as poly(ethylene glycol) (PEG) partially decrease complement opsonization, most nanoparticles still suffer from extensive complement opsonization, especially when linked to targeting moieties. To ameliorate the deleterious effects of complement, two of mammals' natural regulators of complement activation (RCAs), Factors H and I, are here conjugated to the surface of nanoparticles. In vitro, Factor H or I conjugation to PEG-coated nanoparticles decrease their C3 opsonization, and markedly reduce nanoparticle uptake by phagocytes. In an in vivo mouse model of sepsis-induced lung injury, Factor I conjugation abrogates nanoparticle uptake by intravascular phagocytes in the lungs, allowing the blood concentration of the nanoparticle to remain elevated much longer. For nanoparticles targeted to the lung's endothelium by conjugation to anti-ICAM antibodies, Factor I conjugation shifts the cell-type distribution away from phagocytes and toward endothelial cells. Finally, Factor I conjugation abrogates the severe anaphylactoid responses common to many nanoparticles, preventing systemic capillary leak and preserving blood flow to visceral organs and the brain. Thus, conjugation of RCAs, like Factor I, to nanoparticles is likely to help in nanomedicine's long battle against complement, improving several key parameters critical for clinical success.


Subject(s)
Complement C3 , Nanomedicine , Nanoparticles , Animals , Complement Activation , Complement C3/metabolism , Complement C3/pharmacology , Complement Factor H/therapeutic use , Endothelial Cells/metabolism , Fibrinogen/therapeutic use , Mammals/metabolism , Mice , Nanomedicine/methods , Nanoparticles/adverse effects , Nanoparticles/therapeutic use , Opsonization
6.
Adv Drug Deliv Rev ; 178: 113992, 2021 11.
Article in English | MEDLINE | ID: mdl-34597748

ABSTRACT

Drug delivery research pursues many types of carriers including proteins and other macromolecules, natural and synthetic polymeric structures, nanocarriers of diverse compositions and cells. In particular, liposomes and lipid nanoparticles represent arguably the most advanced and popular human-made nanocarriers, already in multiple clinical applications. On the other hand, red blood cells (RBCs) represent attractive natural carriers for the vascular route, featuring at least two distinct compartments for loading pharmacological cargoes, namely inner space enclosed by the plasma membrane and the outer surface of this membrane. Historically, studies of liposomal drug delivery systems (DDS) astronomically outnumbered and surpassed the RBC-based DDS. Nevertheless, these two types of carriers have different profile of advantages and disadvantages. Recent studies showed that RBC-based drug carriers indeed may feature unique pharmacokinetic and biodistribution characteristics favorably changing benefit/risk ratio of some cargo agents. Furthermore, RBC carriage cardinally alters behavior and effect of nanocarriers in the bloodstream, so called RBC hitchhiking (RBC-HH). This article represents an attempt for the comparative analysis of liposomal vs RBC drug delivery, culminating with design of hybrid DDSs enabling mutual collaborative advantages such as RBC-HH and camouflaging nanoparticles by RBC membrane. Finally, we discuss the key current challenges faced by these and other RBC-based DDSs including the issue of potential unintended and adverse effect and contingency measures to ameliorate this and other concerns.


Subject(s)
Erythrocytes/chemistry , Nanoparticles/chemistry , Drug Carriers/chemistry , Drug Delivery Systems , Humans , Lipids/chemistry , Liposomes/chemistry
7.
Bioconjug Chem ; 31(4): 1144-1155, 2020 04 15.
Article in English | MEDLINE | ID: mdl-32167754

ABSTRACT

The use of single-domain antibody fragments, or nanobodies, has gained popularity in recent years as an alternative to traditional monoclonal antibody-based approaches. Relatively little is known, however, about the utility of nanobodies as targeting agents for delivery of therapeutic cargoes, particularly to vascular epitopes or in the setting of acute inflammatory conditions. We used a nanobody (VCAMelid) directed against mouse vascular cell adhesion molecule 1 (VCAM-1) and techniques for site-specific radiolabeling and bioconjugation to measure targeting to sites of constitutive and inducible antigen expression and investigate the impact of various characteristics (affinity, valence, circulation time) on nanobody biodistribution and pharmacokinetics. Engineering of VCAMelid for bivalent binding (BiVCAMelid) increased affinity by an order of magnitude and provided 2.8- and 3.6-fold enhancements in splenic and brain targeting in naive mice, with a further 2.6-fold increase in brain uptake in the setting of focal CNS inflammation. In contrast, introduction of an albumin-binding arm (VCAM/ALB8) did not affect binding affinity, but its prolonged circulation time resulted in 3.5-fold and 17.4-fold increases in splenic and brain uptake at 20 min post-dose and remarkable 40-, 25-, and 15-fold enhancements in overall exposure of blood, spleen, and brain, respectively, relative to both VCAMelid and BiVCAMelid. Both therapeutic protein (superoxide dismutase, SOD-1) and nanocarrier (liposome) delivery were enhanced by conjugation to VCAM-1 targeted nanobodies. The bispecific VCAM/ALB8 maintained its superiority over VCAMelid in enhancing both circulation time and organ targeting of SOD-1, but its advantages were largely blunted by conjugation to liposomes.


Subject(s)
Drug Carriers/pharmacokinetics , Protein Engineering , Single-Domain Antibodies/genetics , Single-Domain Antibodies/metabolism , Animals , Biological Transport , Brain/metabolism , Drug Carriers/metabolism , Isotope Labeling , Mice , Single-Domain Antibodies/immunology , Spleen/metabolism , Tissue Distribution , Vascular Cell Adhesion Molecule-1/immunology
8.
Proc Natl Acad Sci U S A ; 117(7): 3405-3414, 2020 02 18.
Article in English | MEDLINE | ID: mdl-32005712

ABSTRACT

Drug targeting to inflammatory brain pathologies such as stroke and traumatic brain injury remains an elusive goal. Using a mouse model of acute brain inflammation induced by local tumor necrosis factor alpha (TNFα), we found that uptake of intravenously injected antibody to vascular cell adhesion molecule 1 (anti-VCAM) in the inflamed brain is >10-fold greater than antibodies to transferrin receptor-1 and intercellular adhesion molecule 1 (TfR-1 and ICAM-1). Furthermore, uptake of anti-VCAM/liposomes exceeded that of anti-TfR and anti-ICAM counterparts by ∼27- and ∼8-fold, respectively, achieving brain/blood ratio >300-fold higher than that of immunoglobulin G/liposomes. Single-photon emission computed tomography imaging affirmed specific anti-VCAM/liposome targeting to inflamed brain in mice. Intravital microscopy via cranial window and flow cytometry showed that in the inflamed brain anti-VCAM/liposomes bind to endothelium, not to leukocytes. Anti-VCAM/LNP selectively accumulated in the inflamed brain, providing de novo expression of proteins encoded by cargo messenger RNA (mRNA). Anti-VCAM/LNP-mRNA mediated expression of thrombomodulin (a natural endothelial inhibitor of thrombosis, inflammation, and vascular leakage) and alleviated TNFα-induced brain edema. Thus VCAM-directed nanocarriers provide a platform for cerebrovascular targeting to inflamed brain, with the goal of normalizing the integrity of the blood-brain barrier, thus benefiting numerous brain pathologies.


Subject(s)
Antibodies/administration & dosage , Blood-Brain Barrier/drug effects , Encephalitis/drug therapy , Endothelium, Vascular/drug effects , Nanomedicine/methods , Animals , Blood-Brain Barrier/immunology , Encephalitis/genetics , Encephalitis/immunology , Endothelium, Vascular/immunology , Humans , Intercellular Adhesion Molecule-1/genetics , Intercellular Adhesion Molecule-1/immunology , Mice , Receptors, Transferrin/genetics , Receptors, Transferrin/immunology , Thrombomodulin/genetics , Thrombomodulin/immunology , Tumor Necrosis Factor-alpha/genetics , Tumor Necrosis Factor-alpha/immunology , Vascular Cell Adhesion Molecule-1/genetics , Vascular Cell Adhesion Molecule-1/immunology
9.
ACS Nano ; 13(7): 7627-7643, 2019 07 23.
Article in English | MEDLINE | ID: mdl-31194909

ABSTRACT

The vasculature is an essential component of the circulatory system that plays a vital role in the development, homeostasis, and disease of various organs in the human body. The ability to emulate the architecture and transport function of blood vessels in the integrated context of their associated organs represents an important requirement for studying a wide range of physiological processes. Traditional in vitro models of the vasculature, however, largely fail to offer such capabilities. Here we combine microfluidic three-dimensional (3D) cell culture with the principle of vasculogenic self-assembly to engineer perfusable 3D microvascular beds in vitro. Our system is created in a micropatterned hydrogel construct housed in an elastomeric microdevice that enables coculture of primary human vascular endothelial cells and fibroblasts to achieve de novo formation, anastomosis, and controlled perfusion of 3D vascular networks. An open-top chamber design adopted in this hybrid platform also makes it possible to integrate the microengineered 3D vasculature with other cell types to recapitulate organ-specific cellular heterogeneity and structural organization of vascularized human tissues. Using these capabilities, we developed stem cell-derived microphysiological models of vascularized human adipose tissue and the blood-retinal barrier. Our approach was also leveraged to construct a 3D organotypic model of vascularized human lung adenocarcinoma as a high-content drug screening platform to simulate intravascular delivery, tumor-killing effects, and vascular toxicity of a clinical chemotherapeutic agent. Furthermore, we demonstrated the potential of our platform for applications in nanomedicine by creating microengineered models of vascular inflammation to evaluate a nanoengineered drug delivery system based on active targeting liposomal nanocarriers. These results represent a significant improvement in our ability to model the complexity of native human tissues and may provide a basis for developing predictive preclinical models for biopharmaceutical applications.


Subject(s)
Adenocarcinoma of Lung/pathology , Cell Culture Techniques , Cell Engineering , Endothelial Cells/cytology , Fibroblasts/cytology , Microfluidic Analytical Techniques , Adenocarcinoma of Lung/blood supply , Humans , Hydrogels/chemistry , Microcirculation
10.
J Control Release ; 301: 54-61, 2019 05 10.
Article in English | MEDLINE | ID: mdl-30871995

ABSTRACT

New advances in intra-arterial (IA) catheters offer clinically proven local interventions in the brain. Here we tested the effect of combining local IA delivery and vascular immunotargeting. Microinjection of tumor necrosis factor alpha (TNFα) in the brain parenchyma causes cerebral overexpression of Inter-Cellular Adhesion Molecule-1 (ICAM-1) in mice. Systemic intravenous injection of ICAM-1 antibody (anti-ICAM-1) and anti-ICAM-1/liposomes provided nearly an order of magnitude higher uptake in the inflamed vs normal brain (from ~0.1 to 0.8%ID/g for liposomes). Local injection of anti-ICAM-1 and anti-ICAM-1/liposomes via carotid artery catheter provided an additional respective 2-fold and 5-fold elevation of uptake in the inflamed brain vs levels attained by IV injection. The uptake in the inflamed brain of respective untargeted IgG counterparts was markedly lower (e.g., uptake of anti-ICAM-1/liposomes was 100-fold higher vs IgG/liposomes). These data affirm the specificity of the combined effect of the first pass and immunotargeting. Intravital real-time microscopy via cranial window revealed that anti-ICAM-1/liposomes, but not IgG/liposomes bind to the lumen of blood vessels in the inflamed brain within minutes after injection. This straightforward framework provides the basis for translational efforts towards local vascular drug targeting to the brain.


Subject(s)
Antibodies, Monoclonal/administration & dosage , Brain/metabolism , Encephalitis/metabolism , Intercellular Adhesion Molecule-1/immunology , Animals , Antibodies, Monoclonal/pharmacokinetics , Biological Transport , Brain/blood supply , Encephalitis/chemically induced , Liposomes , Lung/metabolism , Male , Mice, Inbred C57BL , Nanostructures/administration & dosage , Polystyrenes/administration & dosage , Polystyrenes/pharmacokinetics , Tumor Necrosis Factor-alpha
11.
Bioconjug Chem ; 29(11): 3626-3637, 2018 11 21.
Article in English | MEDLINE | ID: mdl-30240185

ABSTRACT

Liposomes are a proven, versatile, and clinically viable technology platform for vascular delivery of drugs and imaging probes. Although targeted liposomes have the potential to advance these applications, complex formulations and the need for optimal affinity ligands and conjugation strategies challenge their translation. Herein, we employed copper-free click chemistry functionalized liposomes to target platelet-endothelial cell adhesion molecule (PECAM-1) and intracellular adhesion molecule (ICAM-1) by conjugating clickable monoclonal antibodies (Ab) or their single chain variable fragments (scFv). For direct, quantitative tracing, liposomes were surface chelated with 111In to a >90% radiochemical yield and purity. Particle size and distribution, stability, ligand surface density, and specific binding to target cells were characterized in vitro. Biodistribution of liposomes after IV injection was characterized in mice using isotope detection in organs and by noninvasive imaging (single-photon emission computed tomography/computed tomography, SPECT/CT). As much as 20-25% of injected dose of liposomes carrying PECAM and ICAM ligands, but not control IgG accumulated in the pulmonary vasculature. The immunospecificity of pulmonary targeting of scFv/liposomes to PECAM-1 and ICAM-1, respectively, was 10-fold and 2.5-fold higher than of Ab/liposomes. Therefore, the combination of optimal ligands, benign conjugation, and labeling yields liposomal formulations that may be used for highly effective and specific vascular targeting.


Subject(s)
Antibody Specificity , Liposomes , Radiopharmaceuticals/metabolism , Single-Chain Antibodies/immunology , Animals , Antibodies, Monoclonal/metabolism , Chelating Agents/chemistry , Click Chemistry , Copper/chemistry , Humans , Intercellular Adhesion Molecule-1/metabolism , Ligands , Mice , Pentetic Acid/chemistry , Platelet Endothelial Cell Adhesion Molecule-1/metabolism , Tomography, Emission-Computed, Single-Photon , Tomography, X-Ray Computed
12.
Nat Commun ; 9(1): 2684, 2018 07 11.
Article in English | MEDLINE | ID: mdl-29992966

ABSTRACT

Drug delivery by nanocarriers (NCs) has long been stymied by dominant liver uptake and limited target organ deposition, even when NCs are targeted using affinity moieties. Here we report a universal solution: red blood cell (RBC)-hitchhiking (RH), in which NCs adsorbed onto the RBCs transfer from RBCs to the first organ downstream of the intravascular injection. RH improves delivery for a wide range of NCs and even viral vectors. For example, RH injected intravenously increases liposome uptake in the first downstream organ, lungs, by ~40-fold compared with free NCs. Intra-carotid artery injection of RH NCs delivers >10% of the injected NC dose to the brain, ~10× higher than that achieved with affinity moieties. Further, RH works in mice, pigs, and ex vivo human lungs without causing RBC or end-organ toxicities. Thus, RH is a clinically translatable platform technology poised to augment drug delivery in acute lung disease, stroke, and several other diseases.


Subject(s)
Drug Carriers/chemistry , Drug Delivery Systems/methods , Erythrocytes/chemistry , Nanoparticles/chemistry , Adsorption , Animals , Drug Carriers/administration & dosage , Drug Carriers/pharmacokinetics , Humans , Lung/metabolism , Lung Diseases/metabolism , Lung Diseases/therapy , Mice, Inbred C57BL , Nanoparticles/administration & dosage , Rats , Swine
13.
Blood Adv ; 2(3): 165-176, 2018 02 13.
Article in English | MEDLINE | ID: mdl-29365311

ABSTRACT

Carriage of drugs by red blood cells (RBCs) modulates pharmacokinetics, pharmacodynamics, and immunogenicity. However, optimal targets for attaching therapeutics to human RBCs and adverse effects have not been studied. We engineered nonhuman-primate single-chain antibody fragments (scFvs) directed to human RBCs and fused scFvs with human thrombomodulin (hTM) as a representative biotherapeutic cargo (hTM-scFv). Binding fusions to RBCs on band 3/glycophorin A (GPA; Wright b [Wrb] epitope) and RhCE (Rh17/Hr0 epitope) similarly endowed RBCs with hTM activity, but differed in their effects on RBC physiology. scFv and hTM-scFv targeted to band 3/GPA increased membrane rigidity and sensitized RBCs to hemolysis induced by mechanical stress, while reducing sensitivity to hypo-osmotic hemolysis. Similar properties were seen for other ligands bound to GPA and band 3 on human and murine RBCs. In contrast, binding of scFv or hTM-scFv to RhCE did not alter deformability or sensitivity to mechanical and osmotic stress at similar copy numbers bound per RBCs. Contrasting responses were also seen for immunoglobulin G antibodies against band 3, GPA, and RhCE. RBC-bound hTM-scFv generated activated protein C (APC) in the presence of thrombin, but RhCE-targeted hTM-scFv demonstrated greater APC generation per bound copy. Both Wrb- and RhCE-targeted fusion proteins inhibited fibrin deposition induced by tumor necrosis factor-α in an endothelialized microfluidic model using human whole blood. RhCE-bound hTM-scFv more effectively reduced platelet and leukocyte adhesion, whereas anti-Wrb scFv appeared to promote platelet adhesion. These data provide a translational framework for the development of engineered affinity ligands to safely couple therapeutics to human RBCs.


Subject(s)
Drug Delivery Systems/methods , Erythrocytes/immunology , Recombinant Fusion Proteins/administration & dosage , Thrombosis/drug therapy , Animals , Anion Exchange Protein 1, Erythrocyte/immunology , Humans , Inflammation/drug therapy , Macaca , Mice , Recombinant Fusion Proteins/immunology , Recombinant Fusion Proteins/therapeutic use , Rh-Hr Blood-Group System/immunology , Single-Chain Antibodies/administration & dosage , Single-Chain Antibodies/genetics , Single-Chain Antibodies/immunology , Thrombomodulin/administration & dosage , Thrombomodulin/genetics , Thrombosis/pathology
14.
Drug Deliv Transl Res ; 8(4): 883-902, 2018 Aug.
Article in English | MEDLINE | ID: mdl-29282646

ABSTRACT

Vascular endothelial cells represent an important therapeutic target in many pathologies, including inflammation, oxidative stress, and thrombosis; however, delivery of drugs to this site is often limited by the lack of specific affinity of therapeutics for these cells. Selective delivery of both small molecule drugs and therapeutic proteins to the endothelium has been achieved through the use of targeting ligands, such as monoclonal antibodies, directed against endothelial cell surface markers, particularly cell adhesion molecules (CAMs). Careful selection of target molecules and targeting agents allows for precise delivery to sites of inflammation, thereby maximizing therapeutic drug concentrations at the site of injury. A good understanding of the physiological and pathological determinants of drug and drug carrier pharmacokinetics and biodistribution may allow for a priori identification of optimal properties of drug carrier and targeting agent. Targeted delivery of therapeutics such as antioxidants and antithrombotic agents to the injured endothelium has shown efficacy in preclinical models, suggesting the potential for translation into clinical practice. As with all therapeutics, demonstration of both efficacy and safety are required for successful clinical implementation, which must be considered not only for the individual components (drug, targeting agent, etc.) but also for the sum of the parts (e.g., the drug delivery system), as unexpected toxicities may arise with complex delivery systems. While the use of endothelial targeting has not been translated into the clinic to date, the preclinical results summarized here suggest that there is hope for successful implementation of these agents in the years to come.


Subject(s)
Drug Delivery Systems , Endothelium/metabolism , Animals , Antioxidants/administration & dosage , Biological Products/pharmacokinetics , Humans
15.
Pulm Circ ; 8(1): 2045893217752329, 2018.
Article in English | MEDLINE | ID: mdl-29261028

ABSTRACT

The pulmonary vasculature plays an important role in many lung pathologies, such as pulmonary arterial hypertension, primary graft dysfunction of lung transplant, and acute respiratory distress syndrome. Therapy for these diseases is quite limited, largely due to dose-limiting side effects of numerous drugs that have been trialed or approved. High doses of drugs targeting the pulmonary vasculature are needed due to the lack of specific affinity of therapeutic compounds to the vasculature. To overcome this problem, the field of targeted drug delivery aims to target drugs to the pulmonary endothelial cells, especially those in pathological regions. The field uses a variety of drug delivery systems (DDSs), ranging from nano-scale drug carriers, such as liposomes, to methods of conjugating drugs to affinity moieites, such as antibodies. These DDSs can deliver small molecule drugs, protein therapeutics, and imaging agents. Here we review targeted drug delivery to the pulmonary endothelium for the treatment of pulmonary diseases. Cautionary notes are made of the risk-benefit ratio and safety-parameters one should keep in mind when developing a translational therapeutic.

16.
Bioconjug Chem ; 29(1): 56-66, 2018 01 17.
Article in English | MEDLINE | ID: mdl-29200285

ABSTRACT

The conjugation of antibodies to drugs and drug carriers improves delivery to target tissues. Widespread implementation and effective translation of this pharmacologic strategy awaits the development of affinity ligands capable of a defined degree of modification and highly efficient bioconjugation without loss of affinity. To date, such ligands are lacking for the targeting of therapeutics to vascular endothelial cells. To enable site-specific, click-chemistry conjugation to therapeutic cargo, we used the bacterial transpeptidase, sortase A, to attach short azidolysine containing peptides to three endothelial-specific single chain antibody fragments (scFv). While direct fusion of a recognition motif (sortag) to the scFv C-terminus generally resulted in low levels of sortase-mediated modification, improved reaction efficiency was observed for one protein, in which two amino acids had been introduced during cloning. This prompted insertion of a short, semi-rigid linker between scFv and sortag. The linker significantly enhanced modification of all three proteins, to the extent that unmodified scFv could no longer be detected. As proof of principle, purified, azide-modified scFv was conjugated to the antioxidant enzyme, catalase, resulting in robust endothelial targeting of functional cargo in vitro and in vivo.


Subject(s)
Click Chemistry/methods , Single-Chain Antibodies/chemistry , Single-Chain Antibodies/pharmacokinetics , Amino Acid Sequence , Aminoacyltransferases/metabolism , Animals , Bacterial Proteins/metabolism , Catalase/metabolism , Cell Line , Cysteine Endopeptidases/metabolism , Humans , Intercellular Adhesion Molecule-1/administration & dosage , Intercellular Adhesion Molecule-1/chemistry , Intercellular Adhesion Molecule-1/metabolism , Mice , Mice, Inbred C57BL , Models, Molecular , Platelet Endothelial Cell Adhesion Molecule-1/administration & dosage , Platelet Endothelial Cell Adhesion Molecule-1/chemistry , Platelet Endothelial Cell Adhesion Molecule-1/metabolism , Platelet Endothelial Cell Adhesion Molecule-1/pharmacokinetics , Single-Chain Antibodies/administration & dosage , Single-Chain Antibodies/metabolism , Tissue Distribution
17.
PLoS One ; 12(1): e0169537, 2017.
Article in English | MEDLINE | ID: mdl-28085903

ABSTRACT

Monoclonal antibodies (mAbs) directed to extracellular epitopes of human and mouse Platelet Endothelial Cell Adhesion Molecule-1 (CD31 or PECAM-1) stimulate binding of other mAbs to distinct adjacent PECAM-1 epitopes. This effect, dubbed Collaborative Enhancement of Paired Affinity Ligands, or CEPAL, has been shown to enhance delivery of mAb-targeted drugs and nanoparticles to the vascular endothelium. Here we report new insights into the mechanism underlying this effect, which demonstrates equivalent amplitude in the following models: i) cells expressing a full length PECAM-1 and mutant form of PECAM-1 unable to form homodimers; ii) isolated fractions of cellular membranes; and, iii) immobilized recombinant PECAM-1. These results indicate that CEPAL is mediated not by interference in cellular functions or homophilic PECAM-1 interactions, but rather by conformational changes within the cell adhesion molecule induced by ligand binding. This mechanism, mediated by exposure of partially occult epitopes, is likely to occur in molecules other than PECAM-1 and may represent a generalizable phenomenon with valuable practical applications.


Subject(s)
Antibodies, Monoclonal/immunology , Cell Adhesion/immunology , Cell Membrane/immunology , Endothelium, Vascular/metabolism , Epitopes/immunology , Lung Neoplasms/metabolism , Mesothelioma/metabolism , Platelet Endothelial Cell Adhesion Molecule-1/immunology , Animals , Antibodies, Monoclonal/metabolism , Cells, Cultured , Endothelium, Vascular/immunology , Humans , Lung Neoplasms/immunology , Lung Neoplasms/pathology , Mesothelioma/immunology , Mesothelioma/pathology , Mesothelioma, Malignant , Mice , Platelet Endothelial Cell Adhesion Molecule-1/metabolism
18.
Nanomedicine ; 13(4): 1495-1506, 2017 05.
Article in English | MEDLINE | ID: mdl-28065731

ABSTRACT

Inflamed organs display marked spatial heterogeneity of inflammation, with patches of inflamed tissue adjacent to healthy tissue. To investigate how nanocarriers (NCs) distribute between such patches, we created a mouse model that recapitulates the spatial heterogeneity of the inflammatory lung disease ARDS. NCs targeting the epitope PECAM strongly accumulated in the lungs, but were shunted away from inflamed lung regions due to hypoxic vasoconstriction (HVC). In contrast, ICAM-targeted NCs, which had lower whole-lung uptake than PECAM/NCs in inflamed lungs, displayed markedly higher NC levels in inflamed regions than PECAM/NCs, due to increased regional ICAM. Regional HVC, epitope expression, and capillary leak were sufficient to predict intra-organ of distribution of NCs, antibodies, and drugs. Importantly, these effects were not observable with traditional spatially-uniform models of ARDS, nor when examining only whole-organ uptake. This study underscores how examining NCs' intra-organ distribution in spatially heterogeneous animal models can guide rational NC design.


Subject(s)
Drug Carriers/pharmacokinetics , Epitopes/immunology , Inflammation/pathology , Lung/pathology , Nanoparticles/chemistry , Animals , Antibodies/chemistry , Drug Carriers/chemistry , Epitopes/chemistry , Hypoxia/physiopathology , Inflammation/metabolism , Intercellular Adhesion Molecule-1/immunology , Lung/metabolism , Mice , Mice, Inbred C57BL , Platelet Endothelial Cell Adhesion Molecule-1/immunology , Respiratory Distress Syndrome/metabolism , Respiratory Distress Syndrome/pathology , Vasoconstriction
19.
J Control Release ; 226: 229-37, 2016 Mar 28.
Article in English | MEDLINE | ID: mdl-26855052

ABSTRACT

Endothelial cells (EC) represent an important target for pharmacologic intervention, given their central role in a wide variety of human pathophysiologic processes. Studies in lab animal species have established that conjugation of drugs and carriers with antibodies directed to surface targets like the Platelet Endothelial Cell Adhesion Molecule-1 (PECAM-1, a highly expressed endothelial transmembrane protein) help to achieve specific therapeutic interventions in ECs. To translate such "vascular immunotargeting" to clinical practice, it is necessary to replace antibodies by advanced ligands that are more amenable to use in humans. We report the molecular design of a single chain variable antibody fragment (scFv) that binds with high affinity to human PECAM-1 and cross-reacts with its counterpart in rats and other animal species, allowing parallel testing in vivo and in human endothelial cells in microfluidic model. Site-specific modification of the scFv allows conjugation of protein cargo and liposomes, enabling their endothelial targeting in these models. This study provides a template for molecular engineering of ligands, enabling studies of drug targeting in animal species and subsequent use in humans.


Subject(s)
Drug Delivery Systems , Endothelium/immunology , Liposomes/immunology , Platelet Endothelial Cell Adhesion Molecule-1/immunology , Single-Chain Antibodies/immunology , Amino Acid Sequence , Animals , Antibody Affinity , Cell Line , Endothelial Cells/immunology , Human Umbilical Vein Endothelial Cells , Humans , Liposomes/administration & dosage , Liposomes/chemistry , Liposomes/pharmacokinetics , Rats , Single-Chain Antibodies/administration & dosage , Single-Chain Antibodies/chemistry , Single-Chain Antibodies/pharmacokinetics
20.
Bioconjug Chem ; 27(3): 628-37, 2016 Mar 16.
Article in English | MEDLINE | ID: mdl-26718023

ABSTRACT

Targeting nanocarriers to the endothelium, using affinity ligands to cell adhesion molecules such as ICAM-1 and PECAM-1, holds promise to improve the pharmacotherapy of many disease conditions. This approach capitalizes on the observation that antibody-targeted carriers of 100 nm and above accumulate in the pulmonary vasculature more effectively than free antibodies. Targeting of prospective nanocarriers in the 10-50 nm range, however, has not been studied. To address this intriguing issue, we conjugated monoclonal antibodies (Ab) to ICAM-1 and PECAM-1 or their single chain antigen-binding fragments (scFv) to ferritin nanoparticles (FNPs, size 12 nm), thereby producing Ab/FNPs and scFv/FNPs. Targeted FNPs retained their typical symmetric core-shell structure with sizes of 20-25 nm and ∼4-5 Ab (or ∼7-9 scFv) per particle. Ab/FNPs and scFv/FNPs, but not control IgG/FNPs, bound specifically to cells expressing target molecules and accumulated in the lungs after intravenous injection, with pulmonary targeting an order of magnitude higher than free Ab. Most intriguing, the targeting of Ab/FNPs to ICAM-1, but not PECAM-1, surpassed that of larger Ab/carriers targeted by the same ligand. These results indicate that (i) FNPs may provide a platform for targeting endothelial adhesion molecules with carriers in the 20 nm size range, which has not been previously reported; and (ii) ICAM-1 and PECAM-1 (known to localize in different domains of endothelial plasmalemma) differ in their accessibility to circulating objects of this size, common for blood components and nanocarriers.


Subject(s)
Endothelium, Vascular/metabolism , Ferritins/chemistry , Nanoparticles , Animals , Microscopy, Electron, Transmission
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