The efficient recognition of circulating
tumor cells (CTCs) with
an aptamer probe confers numerous benefits; however, the stability
and binding affinity of aptamers are significantly hampered in real
biological sample matrices. Inspired by the efficient preying mechanism
by multiplex tubing feet and endoskeletons of sea urchins, we engineered
a superefficient biomimetic single-CTC recognition platform by conjugating
dual-multivalent-aptamers (DMAs) Sgc8 and SYL3C onto AuNPs to form
a sea urchin-like nanoprobe (sea urchin-DMA-AuNPs). Aptamers Sgc8
and SYL3C selectively bind with the biomarker proteins PTK7 and EpCAM
expressed on the surface of CTCs. CTCs were captured with 100% efficiency,
followed by sorting on a specially designed multifunctional microfluidic
configuration, integrating a single-CTC separation unit and a hydrodynamic
filtrating purification unit. After sorting, background-free analysis
of biomarker proteins in single CTCs was undertaken with inductively
coupled plasma mass spectrometry by measuring the amount of 197Au isotope in sea urchin-DMA-AuNPs. With respect to a single-aptamer
nanoprobe/-interface, the dual-aptamer nanoprobe improves the binding
efficiency by more than 200% (K
d <
0.35 nM). The microchip facilitates the recognition of single CTCs
with a sorting separation rate of 93.6% at a flow rate of 60 μL
min–1, and it exhibits 73.8 ± 5.0% measurement
efficiency for single CTCs. The present strategy ensures the manipulation
and detection of a single CTC in 100 μL of whole blood within
1 h.
Single-cell
analysis facilitates perception into the most essential
processes in life’s mysteries. While it is highly challenging
to quantify them at the single-cell level, where precise single-cell
sampling is the prerequisite. Herein, a real-time single-cell quantitative
platform was established for high-throughput droplet-free single-cell
sampling into time-resolved (TRA) ICP-MS and real-time quantification
of intracellular target elements. The concentrated cells (2 ×
106 cells mL–1) were spontaneously and
orderly aligned in a spiral microchannel with 104 periodic dimensional
confined micropillars. The quantification is conducted simultaneously
by internal standard inducing from another branch channel in the chip.
The flow-rate-independent feature of single-cell focusing into an
aligned stream within a wide range of fluidic velocities (100–800
μL min–1) facilitates high-throughput, oil-free,
single-cell introduction into TRA-ICP-MS. The system was used for
real-time exploration of intracellular antagonism of Cu2+ against Cd2+. an obvious antagonistic effect was observed
for the MCF-7 cell by culturing for 3, 6, 9, and 12 h with 100 μg
L–1 Cd2+ and 100 μg L–1 Cu2+, and a rivalry rate of 12.8% was achieved at 12
h. At identical experimental conditions, however, limited antagonistic
effect was encountered for a bEnd3 cell within the same incubation
time period, with a rivalry rate of 4.81%. On the contrary, an antagonistic
effect was not observed for the HepG2 cell by culturing for 6 h, while
an obvious antagonistic effect was found by further culturing to 12
h, with a rivalry rate of 10.43%. For all three cell lines, significant
heterogeneity was observed among individual cells.
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