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53


Digitally designed ultrathin metasurfaces for multi-wavelength optics in the visible [Meeting Abstract]

Cai, Haogang; Czaplewski, David; Ogando, Karim; Martinson, Alex; Gosztola, David; Stan, Liliana; Lopez, Daniel
ISI:000454732000005
ISSN: 2160-5033
CID: 4261212

Optical fiber-based Laser Confocal Microscope with a Metalens [Meeting Abstract]

Zhen, Qiu; Lopez, Daniel; Cai, Haogang; Piyawattanametha, Wibool
ISI:000454732000041
ISSN: 2160-5033
CID: 4261222

Full control of ligand positioning reveals spatial thresholds for T cell receptor triggering

Cai, Haogang; Muller, James; Depoil, David; Mayya, Viveka; Sheetz, Michael P; Dustin, Michael L; Wind, Shalom J
Elucidating the rules for receptor triggering in cell-cell and cell-matrix contacts requires precise control of ligand positioning in three dimensions. Here, we use the T cell receptor (TCR) as a model and subject T cells to different geometric arrangements of ligands, using a nanofabricated single-molecule array platform. This comprises monovalent TCR ligands anchored to lithographically patterned nanoparticle clusters surrounded by mobile adhesion molecules on a supported lipid bilayer. The TCR ligand could be co-planar with the supported lipid bilayer (2D), excluding the CD45 transmembrane tyrosine phosphatase, or elevated by 10 nm on solid nanopedestals (3D), allowing closer access of CD45 to engaged TCR. The two configurations resulted in different T cell responses, depending on the lateral spacing between the ligands. These results identify the important contributions of lateral and axial components of ligand positioning and create a more complete foundation for receptor engineering for immunotherapy.
PMCID:6035778
PMID: 29713075
ISSN: 1748-3395
CID: 3056522

High-efficiency, low-aspect-ratio planar lens based on Huygens resonators [Meeting Abstract]

Cai, Haogang; Czaplewski, David A.; Stan, Liliana; Lopez, Daniel
ISI:000426984000025
ISSN: 2160-5033
CID: 4261202

Phase control through Huygens' metasurfaces [Meeting Abstract]

Czaplewski, David A.; Cai, Haogang; Roy, Tapashree; Ogando, Karim; Stan, Liliana; Lopez, Daniel
ISI:000426984000024
ISSN: 2160-5033
CID: 4261192

Controlling nanoscale optical transmission with dielectric metasurfaces at visible wavelengths

Chapter by: Roy, Tapashree; Cai, Haogang; Mitra, Subrata; Czaplewski, David; Lopez, Daniel
in: HIGH CONTRAST METASTRUCTURES VI by ChangHasnain, CJ; Faraon, A; Koyama, F; Zhou, W [Eds]
pp. -
ISBN: 978-1-5106-0667-8
CID: 4261042

Spatial Control of Biological Ligands on Surfaces Applied to T Cell Activation

Cai, Haogang; Depoil, David; Muller, James; Sheetz, Michael P; Dustin, Michael L; Wind, Shalom J
In this chapter, we present techniques, based on molecular-scale nanofabrication and selective self-assembly, for the presentation of biomolecules of interest (ligands, receptors, etc.) on a surface with precise spatial control and arbitrary geometry at the single-molecule level. Metallic nanodot arrays are created on glass coverslips and are then used as anchors for the immobilization of biological ligands via thiol linking chemistry. The nanodot size is controlled by both lithography and metallization. The reagent concentration in self-assembly can be adjusted to ensure single-molecule occupancy for a given dot size. The surrounding glass is backfilled by a protein-repellent layer to prevent nonspecific adsorption. Moreover, bifunctional surfaces are created, whereby a second ligand is presented on the background, which is frequently a requirement for simulating complex cellular functions involving more than one key ligand. This platform serves as a novel and powerful tool for molecular and cellular biology, e.g., to study the fundamental mechanisms of receptor-mediated signaling.
PMID: 28255709
ISSN: 1940-6029
CID: 2471612

Thick-film MEMS thermoelectric sensor fabricated using a thermally assisted lift-off process

Jia, Yuan; Cai, Haogang; Lin, Qiao
ISI:000378141300036
ISSN: 1932-5150
CID: 4261182

Improved Glass Surface Passivation for Single-Molecule Nanoarrays

Cai, Haogang; Wind, Shalom J
Single-molecule fluorescence techniques provide a critical tool for probing biomolecular and cellular interactions with unprecedented resolution and precision. Unfortunately, many of these techniques are hindered by a common problem, namely, the nonspecific adsorption of target biomolecules. This issue is mostly addressed by passivating the glass surfaces with a poly(ethylene glycol) (PEG) brush. This is effective only at low concentrations of the probe molecule because there are defects inherent to polymer brushes formed on glass coverslips due to the presence of surface impurities. Tween-20, a detergent, is a promising alternative that can improve surface passivation, but it is incompatible with living cells, and it also possesses limited selectivity for glass background over metallic nanoparticles, which are frequently used as anchors for the probe molecules. To address these issues, we have developed a more versatile method to improve the PEG passivation. A thin film of hydrogen silsesquioxane (HSQ) is spin-coated and thermally cured on glass coverslips in order to cover the surface impurities. This minimizes the formation of PEG defects and reduces nonspecific adsorption, resulting in an improvement comparable to Tween-20 treatment. This approach was applied to single-molecule nanoarrays of streptavidin bound to AuPd nanodots patterned by e-beam lithography (EBL). The fluorescence signal to background ratio (SBR) on HSQ-coated glass was improved by ∼4-fold as compared to PEG directly on glass. This improvement enables direct imaging of ordered arrays of single molecules anchored to lithographically patterned arrays of metallic nanodots.
PMCID:5050166
PMID: 27622455
ISSN: 1520-5827
CID: 4261012

Molecular Occupancy of Nanodot Arrays

Cai, Haogang; Wolfenson, Haguy; Depoil, David; Dustin, Michael L; Sheetz, Michael P; Wind, Shalom J
Single-molecule nanodot arrays, in which a biomolecule of choice (protein, nucleic acid, etc.) is bound to a metallic nanoparticle on a solid substrate, are becoming an increasingly important tool in the study of biomolecular and cellular interactions. We have developed an on-chip measurement protocol to monitor and control the molecular occupancy of nanodots. Arrays of widely spaced nanodots and nanodot clusters were fabricated on glass surfaces by nanolithography and functionalized with fluorescently labeled proteins. The molecular occupancy was determined by monitoring individual fluorophore bleaching events, while accounting for fluorescence quenching effects. We found that the occupancy can be interpreted as a packing problem, and depends on nanodot size and binding ligand concentration, where the latter is easily adjusted to compensate the flexibility of dimension control in nanofabrication. The results are scalable with nanodot cluster size, extending to large area close packed arrays. As an example, the nanoarray platform was used to probe the geometric requirement of T-cell activation at the single-molecule level.
PMCID:5337305
PMID: 26966946
ISSN: 1936-086x
CID: 2046882