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26
result(s) for
"KAMEI Daniel T."
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Translocation of HIV TAT peptide and analogues induced by multiplexed membrane and cytoskeletal interactions
by
Cheng, Jianjun
,
Mishra, Abhijit
,
Rodriguez, April R
in
Actins
,
amino acid composition
,
Amino Acid Sequence
2011
Cell-penetrating peptides (CPPs), such as the HIV TAT peptide, are able to translocate across cellular membranes efficiently. A number of mechanisms, from direct entry to various endocytotic mechanisms (both receptor independent and receptor dependent), have been observed but how these specific amino acid sequences accomplish these effects is unknown. We show how CPP sequences can multiplex interactions with the membrane, the actin cytoskeleton, and cell-surface receptors to facilitate different translocation pathways under different conditions. Using \"nunchuck\" CPPs, we demonstrate that CPPs permeabilize membranes by generating topologically active saddle-splay (\"negative Gaussian\") membrane curvature through multidentate hydrogen bonding of lipid head groups. This requirement for negative Gaussian curvature constrains but underdetermines the amino acid content of CPPs. We observe that in most CPP sequences decreasing arginine content is offset by a simultaneous increase in lysine and hydrophobic content. Moreover, by densely organizing cationic residues while satisfying the above constraint, TAT peptide is able to combine cytoskeletal remodeling activity with membrane translocation activity. We show that the TAT peptide can induce structural changes reminiscent of macropinocytosis in actin-encapsulated giant vesicles without receptors.
Journal Article
Incorporation of multicellular spheroids into 3-D polymeric scaffolds provides an improved tumor model for screening anticancer drugs
by
KAMEI Daniel T.
,
PHAM Edward A.
,
KIM Jun W.
in
Biological and medical sciences
,
Drug Screening Assays, Antitumor - methods
,
Humans
2010
Development of cancer therapeutics requires a thorough evaluation of drug efficacy in vitro before animal testing and subsequent clinical trials. Three‐dimensional (3‐D) in vitro models have therefore been investigated for drug screening. In this study, we have developed a novel in vitro model in which multicellular aggregates, or spheroids, were incorporated into 3‐D porous scaffolds. Drug resistance assays showed that spheroid‐seeded scaffolds have much higher drug resistance than monolayer cultures, spheroids on flat substrates, or scaffolds seeded with dispersed cells. Furthermore, spheroid‐seeded scaffolds demonstrated higher lactate production leading to acidosis, and higher expression of angiogenic factors. These data suggest that the spheroid‐seeded 3‐D scaffolds might serve as a useful in vitro system for screening cancer therapeutics. (Cancer Sci 2010; 101: 2637–2643)
Journal Article
Dual Chemotherapeutic Loading in Oxalate Transferrin-Conjugated Polymersomes Incorporated into Chitosan Hydrogels for Site-Specific Targeting of Melanoma Cells
by
Kamei, Daniel T.
,
Lopes, André M.
,
Aranha, Mariana de C.
in
Cancer
,
Cancer therapies
,
Chemotherapy
2024
In this work, we developed a smart drug delivery system composed of poly (ethylene glycol)-block-poly (ε-caprolactone) (PEG-PCL)-based polymersomes (Ps) loaded with doxorubicin (DOX) and vemurafenib (VEM). To enhance targeted delivery to malignant melanoma cells, these drug-loaded nanovesicles were conjugated to the oxalate transferrin variant (oxalate Tf) and incorporated into three-dimensional chitosan hydrogels. This innovative approach represents the first application of oxalate Tf for the precision delivery of drug-loaded polymersomes within a semi-solid dosage form based on chitosan hydrogels. These resulting semi-solids exhibited a sustained release profile for both encapsulated drugs. To evaluate their potency, we compared the cytotoxicity of native Tf-Ps with oxalate Tf-Ps. Notably, the oxalate Tf-Ps demonstrated a 3-fold decrease in cell viability against melanoma cells compared to normal cells and were 1.6-fold more potent than native Tf-Ps, indicating the greater potency of this nanoformulation. These findings suggest that dual-drug delivery using an oxalate-Tf-targeting ligand significantly enhances the drug delivery efficiency of Tf-conjugated nanovesicles and offers a promising strategy to overcome the challenge of multidrug resistance in melanoma therapy.
Journal Article
An Aqueous Two-Phase System for the Concentration and Extraction of Proteins from the Interface for Detection Using the Lateral-Flow Immunoassay
2015
The paper-based immunoassay for point-of-care diagnostics is widely used due to its low cost and portability over traditional lab-based assays. Lateral-flow immunoassay (LFA) is the most well-established paper-based assay since it is rapid and easy to use. However, the disadvantage of LFA is its lack of sensitivity in some cases where a large sample volume is required, limiting its use as a diagnostic tool. To improve the sensitivity of LFA, we previously reported on the concentration of analytes into one of the two bulk phases of an aqueous two-phase system (ATPS) prior to detection. In this study, we preserved the advantages of LFA while significantly improving upon our previous proof-of-concept studies by employing a novel approach of concentrating gold nanoparticles, a common LFA colorimetric indicator. By conjugating specific antibodies and polymers to the surfaces of the particles, these gold nanoprobes (GNPs) were able to capture target proteins in the sample and subsequently be concentrated within 10 min at the interface of an ATPS solution comprised of polyethylene glycol, potassium phosphate, and phosphate-buffered saline. These GNPs were then extracted and applied directly to LFA. By combining this prior ATPS interface extraction with LFA, the detection limit of LFA for a model protein was improved by 100-fold from 1 ng/μL to 0.01 ng/μL. Additionally, we examined the behavior of the ATPS system in fetal bovine serum and synthetic urine to more closely approach real-world applications. Despite using more complex matrices, ATPS interface extraction still improved the detection limit by 100-fold within 15 to 25 min, demonstrating the system's potential to be applied to patient samples.
Journal Article
Polyarginine segments in block copolypeptides drive both vesicular assembly and intracellular delivery
by
Kamei, Daniel T.
,
Deming, Timothy J.
,
Holowka, Eric P.
in
Biochemistry
,
Biological Transport
,
Biomaterials
2007
Polymeric vesicles are a relatively new class of nanoscale self-assembled materials that show great promise as robust encapsulants. Compared with liposomes, use of polymeric building blocks for membrane formation allows increased stability, stimuli responsiveness and chemical diversity, which may prove advantageous for drug-delivery applications
1
. A major drawback of most polymeric vesicles is the lack of biofunctionality, which restricts their ability to interact with cells and tissues. We have prepared vesicles composed of polyarginine and polyleucine segments that are stable in media, can entrap water soluble species, and can be processed to different sizes and prepared in large quantities. The remarkable feature of these materials is that the polyarginine segments both direct structure for vesicle formation and provide functionality for efficient intracellular delivery of the vesicles. This unique synergy between nanoscale self-assembly and inherent peptide functionality provides a new approach for design of multifunctional materials for drug delivery.
Journal Article
Intracellular Trafficking Considerations in the Development of Natural Ligand-Drug Molecular Conjugates for Cancer
by
Liu, Christina T.
,
Kamei, Daniel T.
,
Quinlan, Devin S.
in
Antineoplastic Agents - administration & dosage
,
Antineoplastic Agents - pharmacokinetics
,
Biochemistry
2011
Overexpressed receptors, characteristic of many cancers, have been targeted by various researchers to achieve a more specific treatment for cancer. A common approach is to use the natural ligand for the overexpressed receptor as a cancer-targeting agent which can deliver a chemically or genetically conjugated toxic molecule. However, it has been found that the therapeutic efficacy of such ligand-drug molecular conjugates can be limited, since they naturally follow the intracellular trafficking pathways of the endogenous ligands. Therefore, a thorough understanding of the intracellular trafficking properties of these ligands can lead to novel design criteria for engineering ligands to be more effective drug carriers. This review presents a few commonly used ligand/receptor systems where intracellular trafficking considerations can potentially improve the therapeutic efficacy of the ligand-drug molecular conjugates.
Journal Article
Application of the aqueous two-phase system and nanozyme signal enhancement for the improved detection of Plasmodium lactate dehydrogenase in serum
2022
Malaria is an infectious disease that can cause severe sickness and death if not diagnosed and treated in a timely manner. The current gold standard technique for malaria diagnosis is microscopy, which requires a dedicated laboratory setting and trained personnel and can have a long time to result. These requirements can be alleviated using paper-based diagnostic devices that enable rapid and inexpensive diagnosis at the point of care, which can allow patients to receive treatment before their symptoms progress when used for early detection of diseases. The lateral-flow immunoassay (LFA) is one such device, but currently available LFAs are susceptible to false negative results caused by low parasite density. To improve sensitivity and detection, we utilized the aqueous two-phase system (ATPS) to concentrate and purify the sample, and nanozyme signal enhancement to increase the intensity of the visible signal on the test strip. We were able to achieve a limit of detection (LOD) of 0.01 ng/mL for the malaria biomarker Plasmodium lactate dehydrogenase (pLDH) in human serum using a multi-step assay combining the LFA format with the ATPS and nanozyme signal enhancement.
Journal Article
A one-pot, isothermal DNA sample preparation and amplification platform utilizing aqueous two-phase systems
by
Cheung, Sherine F
,
Yee, Matthew F
,
Wu, Benjamin M
in
Amplification
,
Binary systems
,
Deoxyribonucleic acid
2018
Infectious diseases remain one of the major causes of death worldwide in developing countries. While screening via conventional polymerase chain reaction (PCR) is the gold standard in laboratory testing, its limited applications at the point-of-care have prompted the development of more portable nucleic acid detection systems. These include isothermal DNA amplification techniques, which are less equipment-intensive than PCR. Unfortunately, these techniques still require extensive sample preparation, limiting user accessibility. In this study, we introduce a novel system that combines thermophilic helicase-dependent amplification (tHDA) with a Triton X-100 micellar aqueous two-phase system (ATPS) to achieve cell lysis, lysate processing, and enhanced nucleic acid amplification in a simple, one-step process. The combined one-pot system was able to amplify and detect a target gene from whole-cell samples containing as low as 102 cfu/mL, and is the first known application of ATPSs to isothermal DNA amplification. This system’s ease-of-use and sensitivity underlie its potential as a point-of-care diagnostic platform to detect for infectious diseases.
Journal Article
Improved lateral-flow immunoassays for chlamydia and immunoglobulin M by sequential rehydration of two-phase system components within a paper-based diagnostic
2017
Frequent screening of at-risk individuals using paper-based point-of-care diagnostics is a promising method for attenuating the spread of chlamydia and HIV. However, such diagnostics typically suffer from limited sensitivity. The authors describe a method to improve the sensitivity of the lateral-flow immunoassay (LFA), in which the target molecules are thermodynamically concentrated using aqueous two-phase systems (ATPSs) to improve the detection limit. The novel concept of sequential ATPS component resolubilization within paper for both a PEG-potassium phosphate and a UCON-50-HB-5100-potassium phosphate system was established to provide a diagnostic tool which only requires the sample to be added without any sample preparation steps. The automated ATPS phase separation and concentration of the target into the leading phase within the paper matrix can be visually demonstrated due to the use of gold nanoparticles. The importance of resolubilization order of the dehydrated polymers and salts is discussed. The designs presented improve the detection limit of a conventional LFA setup for
Chlamydia trachomatis
bacteria (158 μg·mL
−1
) and human immunoglobulin M (IgM) antibodies (0.31 μg·mL
−1
) to 15.8 μg·mL
−1
and 0.031 μg·mL
−1
, respectively. This is a 10-fold detection limit improvement and results are available in 15 min. Compared to other methods that improve LFA sensitivity, this particular method does not require additional equipment, reagents, or sample preparation steps as all necessary components are embedded into the initial setup. Therefore, this advancement enables a more sensitive LFA that can be operated by untrained or minimally trained personnel, significantly expanding its applicability as a point-of-care test.
Graphical abstract
We present the concept of sequential aqueous two-phase system (ATPS) component resolubilization coupled with the lateral-flow immunoassay (LFA). This concept preconcentrates biomarkers from a sample in one step, which improves the LFA detection of chlamydia and human IgM by 10-fold
Journal Article
Enhancing the lateral-flow immunoassay for viral detection using an aqueous two-phase micellar system
by
Chiu, Ricky Y. T
,
Wu, Benjamin M
,
Le, Alexander M
in
Analysis
,
Analytical Chemistry
,
Antibodies
2010
Availability of a rapid, accurate, and reliable point-of-care (POC) device for detection of infectious agents and pandemic pathogens, such as swine-origin influenza A (H1N1) virus, is crucial for effective patient management and outbreak prevention. Due to its ease of use, rapid processing, and minimal power and laboratory equipment requirements, the lateral-flow (immuno)assay (LFA) has gained much attention in recent years as a possible solution. However, since the sensitivity of LFA has been shown to be inferior to that of the gold standards of pathogen detection, namely cell culture and real-time PCR, LFA remains an ineffective POC assay for preventing pandemic outbreaks. A practical solution for increasing the sensitivity of LFA is to concentrate the target agent in a solution prior to the detection step. In this study, an aqueous two-phase micellar system comprised of the nonionic surfactant Triton X-114 was investigated for concentrating a model virus, namely bacteriophage M13 (M13), prior to LFA. The volume ratio of the two coexisting micellar phases was manipulated to concentrate M13 in the top, micelle-poor phase. The concentration step effectively improved the M13 detection limit of the assay by tenfold from 5 × 10⁸ plaque forming units (pfu)/mL to 5 × 10⁷ pfu/mL. In the future, the volume ratio can be further manipulated to yield a greater concentration of a target virus and further decrease the detection limits of the LFA. [graphic removed]
Journal Article