Fluorescence and Circular Dichroism Dual-Mode Probe for Chiral Recognition of Tyrosine and Its Applications in Bioimaging
Foroozan Feizi,
No information about this author
Mojtaba Shamsipur,
No information about this author
Mohamad-Bagher Gholivand
No information about this author
et al.
ACS Applied Materials & Interfaces,
Journal Year:
2024,
Volume and Issue:
16(36), P. 48058 - 48072
Published: Sept. 2, 2024
Chiral
amino
acids
(AAs)
are
essential
in
metabolism
and
understanding
physiological
processes,
they
could
be
used
as
biomarkers
for
the
diagnosis
of
different
diseases.
In
this
study,
chiral
Cdots@Van
were
prepared
by
postmodifying
an
achiral
Cdots
core
with
vancomycin
recognizing
determining
enantiomeric
excess
(ee)
tyrosine
(Tyr)
enantiomers.
The
fluorescence
response
is
based
on
"on–off"
strategy,
quenching
percentages
d-
l-tyrosine.
Interestingly,
circular
dichroism
(CD)
spectrum
responded
to
only
one
form
Tyr
enantiomer,
specifically
d-Tyr,
remained
nearly
unchanged
upon
addition
l-Tyr.
Quantum
mechanical
(QM)
calculations
excellent
agreement
experimental
results,
confirming
stronger
binding
affinity
d-Tyr
compared
We
further
investigated
recognition
ability
interconnected
particles,
which
was
synthesized
using
EDC/NHS
coupling
reaction
between
molecules
without
a
core.
Surprisingly,
unlike
free
molecules,
displayed
CD
spectroscopy,
similar
what
observed
Cdots@Van.
Crucially,
probe
has
been
successfully
utilized
cell
imaging
applications.
Language: Английский
Chiral Lead Halide Perovskites in Action: Unlocking Enantiomer Separation Puzzle
Pallavi Singh,
No information about this author
Rudra Mukherjee,
No information about this author
Anil Kumar
No information about this author
et al.
Biomedical Chromatography,
Journal Year:
2025,
Volume and Issue:
39(3)
Published: Feb. 7, 2025
Effective
enantiomer
separation
is
vital
in
many
important
sectors
like
pharmaceuticals,
agrochemicals,
food
safety,
and
biomedical
imaging,
yet
conventional
methods
are
costly,
slow,
chemical
intensive.
This
has
sparked
interest
exploring
novel
materials
chiral
lead
halide
perovskite
nanocrystals
to
address
these
challenges.
newly
emerging
material
combines
the
superior
properties
of
traditional
perovskites
with
unique
attributes
chirality,
resulting
distinct
optoelectronic
behaviors.
perspective
provides
a
discussion
on
future
research
opportunities
usage
LHP
NCs
for
enantiomeric
recognition
separation.
LHPs
exhibit
extraordinary
photophysical
properties,
easier
surface
functionalization,
range
bonding
interactions,
high
area
volume
ratio
that
can
be
used
detecting
enantiomers.
To
best
our
knowledge,
use
discrimination
enantiomers
been
scarcely
reported,
presenting
opportunity
explore
their
potential
Language: Английский
A lead-free red fluorescent cesium rubidium europium perovskite for the detection of tetracycline by antenna effect
Cheng‐Kang Yang,
No information about this author
Hai-Chi Zhang,
No information about this author
Jing Cheng
No information about this author
et al.
Spectrochimica Acta Part A Molecular and Biomolecular Spectroscopy,
Journal Year:
2025,
Volume and Issue:
unknown, P. 126128 - 126128
Published: March 1, 2025
Language: Английский
Aggregation-disaggregation regulated fluorescence resonance energy transfer of perovskite nanocrystals for the detection of ascorbic acid
Qian-Wei Yin,
No information about this author
Ji Wang,
No information about this author
Jinzhou Liu
No information about this author
et al.
Microchemical Journal,
Journal Year:
2024,
Volume and Issue:
unknown, P. 111725 - 111725
Published: Sept. 1, 2024
Language: Английский
High-efficiency detection of primary amine-based chiral molecules by a facile aldimine condensation reaction
Yang Yu,
No information about this author
Aiyan Shi,
No information about this author
Tongtong Wang
No information about this author
et al.
RSC Advances,
Journal Year:
2024,
Volume and Issue:
14(43), P. 31820 - 31824
Published: Jan. 1, 2024
A
pH-sensitive
fluorane
dye
was
developed
to
be
reacted
with
chiral
molecules
through
an
aldimine
condensation
reaction.
After
the
mixing
operation,
features
of
detected
could
facilely
determined
by
spectral
analysis.
Language: Английский
Enantioseparation and enantiorecognition
Biomedical Chromatography,
Journal Year:
2024,
Volume and Issue:
39(1)
Published: Nov. 10, 2024
Biomedical
ChromatographyVolume
0,
Issue
0
e6041
EDITORIAL
Enantioseparation
and
enantiorecognition
Ravi
Bhushan,
Corresponding
Author
Bhushan
[email
protected]
orcid.org/0000-0001-5098-9759
Department
of
Chemistry,
Indian
Institute
Technology
Roorkee,
India
Correspondence
Roorkee
247667,
India.
Email:
protected];
protected]Search
for
more
papers
by
this
author
First
published:
10
November
2024
https://doi.org/10.1002/bmc.6041Read
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REFERENCES
R.
(2023).
Enantioselective
chemoselective
optical
detection
chiral
organic
compounds
without
resorting
chromatography.
Chemistry-An
Asian
Journal,
18(24),
e202300825.
https://doi.org/10.1002/asia.202300825
10.1002/asia.202300825
CASPubMedGoogle
Scholar
(2024).
Sustainable
solutions
direct
TLC
enantioseparation
in-home,
thought-out,
prepared/modified
stationary
phases.
Chromatography,
e6000.
https://doi.org/10.1002/bmc.6000
10.1002/bmc.6000
PubMedGoogle
Han,
Y.,
Kou,
M.,
Zhang,
H.,
Qiu,
&
Shi,
Y.-P.
(2025).
Chiral
fluorescent
carbon
dots
tyrosine
enantiomers:
Discrimination,
mechanism
cell
imaging.
Sensors
Actuators
B:
Chemical,
422,
136677.
https://doi.org/10.1016/j.snb.2024.136677
10.1016/j.snb.2024.136677
CASGoogle
Liu,
J.-Z.,
Chai,
X.-Y.,
Huang,
J.,
Li,
S.,
C.
Ling,
Cao,
Q.-E.,
Z.
assembly
perovskite
nanocrystals:
Sensitive
discrimination
amino
acid
enantiomers.
Analytical
96(10),
4282–4289.
https://doi.org/10.1021/acs.analchem.3c05941
10.1021/acs.analchem.3c05941
Malik,
P.,
(2018).
Development
bovine
serum
albumin
bonded
silica
as
phase
its
application
in
quantitative
enantiomeric
resolution.
ACS
Organic
Process
Research
Development,
22(7),
789–795.
https://doi.org/10.1021/acs.oprd.8b00065
10.1021/acs.oprd.8b00065
CASWeb
Science®Google
Martens,
(2014).
Purification
mixtures
enantioselective
synthesis:
Overlooked
errors
scientific
basis
separation
achiral
environment.
Helvetica
Chimica
Acta,
97,
161–187.
https://doi.org/10.1002/ijch.201600086
10.1002/hlca.201300392
Wang,
X.,
Xiang,
Qi,
C.,
Chen,
Su,
Yang,
J.-C.,
Tian,
Feng,
H.-T.,
Tang,
B.
(2022).
Visualization
resolution
AIEgens.
Nano,
16(5),
8223–8232.
https://doi.org/10.1021/acsnano.2c01981
10.1021/acsnano.2c01981
CASPubMedWeb
J.-K.,
Xiong,
L.-X.,
B.-J.,
Xie,
S.-M.,
J.-H.,
Yuan,
L.-M.
Preparation
novel
phases
based
on
porous
cage
thiol-ene
click
chemistry
HPLC.
94,
4961–4969.
https://doi.org/10.1021/acs.analchem.1c03626
10.1021/acs.analchem.1c03626
Z.,
W.,
Lai,
Fu,
Dong,
Duan,
A.,
Hou,
L.-M.,
Cui,
Y.
Cyclodextrin
incorporation
into
covalent
frameworks
enables
extensive
liquid
gas
chromatographic
enantioseparations.
Journal
American
Chemical
Society,
145(34),
18956–18967.
https://doi.org/10.1021/jacs.3c05973
10.1021/jacs.3c05973
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Language: Английский