4 research outputs found
Automatically Aligned and Environment-Friendly Twisted Stacking Terahertz Chiral Metasurface with Giant Circular Dichroism for Rapid Biosensing
Chiral metasurfaces are capable of generating a huge
superchiral
field, which has great potential in optoelectronics and biosensing.
However, the conventional fabrication process suffers greatly from
time consumption, high cost, and difficult multilayer alignment, which
hinder its commercial application. Herein, we propose a twisted stacking
carbon-based terahertz (THz) chiral metasurface (TCM) based on laser-induced
graphene (LIG) technology. By repeating a two-step process of sticking
a polyimide film, followed by laser direct writing, the two layers
of the TCM are aligned automatically in the fabrication. Laser manufacturing
also brings such high processing speed that a TCM with a size of 15
× 15 mm can be prepared in 60 s. In addition, due to the greater
dissipation of LIG than that of metals in the THz band, a giant circular
dichroism (CD) of +99.5 to −99.6% is experimentally realized.
The THz biosensing of bovine serum albumin enhanced by the proposed
TCMs is then demonstrated. A wide sensing range (0.5–50 mg
mL–1) and a good sensitivity [ΔCD: 2.09% (mg
mL–1)−1, Δf: 0.0034 THz (mg mL–1)−1] are
proved. This LIG-based TCM provides an environment-friendly platform
for chiral research and has great application potential in rapid and
low-cost commercial biosensing
Automatically Aligned and Environment-Friendly Twisted Stacking Terahertz Chiral Metasurface with Giant Circular Dichroism for Rapid Biosensing
Chiral metasurfaces are capable of generating a huge
superchiral
field, which has great potential in optoelectronics and biosensing.
However, the conventional fabrication process suffers greatly from
time consumption, high cost, and difficult multilayer alignment, which
hinder its commercial application. Herein, we propose a twisted stacking
carbon-based terahertz (THz) chiral metasurface (TCM) based on laser-induced
graphene (LIG) technology. By repeating a two-step process of sticking
a polyimide film, followed by laser direct writing, the two layers
of the TCM are aligned automatically in the fabrication. Laser manufacturing
also brings such high processing speed that a TCM with a size of 15
× 15 mm can be prepared in 60 s. In addition, due to the greater
dissipation of LIG than that of metals in the THz band, a giant circular
dichroism (CD) of +99.5 to −99.6% is experimentally realized.
The THz biosensing of bovine serum albumin enhanced by the proposed
TCMs is then demonstrated. A wide sensing range (0.5–50 mg
mL–1) and a good sensitivity [ΔCD: 2.09% (mg
mL–1)−1, Δf: 0.0034 THz (mg mL–1)−1] are
proved. This LIG-based TCM provides an environment-friendly platform
for chiral research and has great application potential in rapid and
low-cost commercial biosensing
Automatically Aligned and Environment-Friendly Twisted Stacking Terahertz Chiral Metasurface with Giant Circular Dichroism for Rapid Biosensing
Chiral metasurfaces are capable of generating a huge
superchiral
field, which has great potential in optoelectronics and biosensing.
However, the conventional fabrication process suffers greatly from
time consumption, high cost, and difficult multilayer alignment, which
hinder its commercial application. Herein, we propose a twisted stacking
carbon-based terahertz (THz) chiral metasurface (TCM) based on laser-induced
graphene (LIG) technology. By repeating a two-step process of sticking
a polyimide film, followed by laser direct writing, the two layers
of the TCM are aligned automatically in the fabrication. Laser manufacturing
also brings such high processing speed that a TCM with a size of 15
× 15 mm can be prepared in 60 s. In addition, due to the greater
dissipation of LIG than that of metals in the THz band, a giant circular
dichroism (CD) of +99.5 to −99.6% is experimentally realized.
The THz biosensing of bovine serum albumin enhanced by the proposed
TCMs is then demonstrated. A wide sensing range (0.5–50 mg
mL–1) and a good sensitivity [ΔCD: 2.09% (mg
mL–1)−1, Δf: 0.0034 THz (mg mL–1)−1] are
proved. This LIG-based TCM provides an environment-friendly platform
for chiral research and has great application potential in rapid and
low-cost commercial biosensing
3‑((<i>R</i>)‑4-(((<i>R</i>)‑6-(2-Bromo-4-fluorophenyl)-5-(ethoxycarbonyl)-2-(thiazol-2-yl)-3,6-dihydropyrimidin-4-yl)methyl)morpholin-2-yl)propanoic Acid (HEC72702), a Novel Hepatitis B Virus Capsid Inhibitor Based on Clinical Candidate GLS4
The inhibition of
hepatitis B virus (HBV) capsid assembly is a
novel strategy for the development of chronic hepatitis B (CHB) therapeutics.
On the basis of the preclinical properties and clinical results of
GLS4, we carried out further investigation to seek a better candidate
compound with appropriate anti-HBV potency, reduced hERG activity,
decreased CYP enzyme induction, and improved pharmacokinetic (PK)
properties. To this end, we have successfully found that morpholine
carboxyl analogues with comparable anti-HBV activities to that of
GLS4 showed decreased hERG activities, but they displayed strong CYP3A4
induction in a concentration-dependent manner, except for morpholine
propionic acid analogues. After several rounds of modification, compound <b>58</b> (HEC72702), which had an (<i>R</i>)-morpholine-2-propionic
acid at the C6 position of its dihydropyrimidine core ring, was found
to display no induction of the CYP1A2, CYP3A4, or CYP2B6 enzyme at
the high concentration of 10 μM. In particular, it demonstrated
a good systemic exposure and high oral bioavailability and achieved
a viral-load reduction greater than 2 log in a hydrodynamic-injected
(HDI) HBV mouse model and has now been selected for further development