infrared laser diodes Search Results


90
IRIDEX Inc infrared diode laser radiation (iris medical oculight slx photocoagulator)
Infrared Diode Laser Radiation (Iris Medical Oculight Slx Photocoagulator), supplied by IRIDEX Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+diode+laser+radiation++iris+medical+oculight+slx+photocoagulator+/pmc01772486-47-27-36
Average 90 stars, based on 1 article reviews
infrared diode laser radiation (iris medical oculight slx photocoagulator) - by Bioz Stars, 2026-09
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90
Opto Engine LLC diode infrared laser module at mdl-n-808
Diode Infrared Laser Module At Mdl N 808, supplied by Opto Engine LLC, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/diode+infrared+laser+module+at+mdl+n+808/pm29127106-277-11-8
Average 90 stars, based on 1 article reviews
diode infrared laser module at mdl-n-808 - by Bioz Stars, 2026-09
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90
CNI Laser nir laser mdl-iii-808
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Nir Laser Mdl Iii 808, supplied by CNI Laser, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+diode+laser+mll+iii+808/pmc12104560-87-35-38
Average 90 stars, based on 1 article reviews
nir laser mdl-iii-808 - by Bioz Stars, 2026-09
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90
Dilas Diode Laser infrared laser diode
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Infrared Laser Diode, supplied by Dilas Diode Laser, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+laser+diode/pm26429486-126-13-16
Average 90 stars, based on 1 article reviews
infrared laser diode - by Bioz Stars, 2026-09
90/100 stars
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90
IPG Laser GmbH near-infrared diode laser dlr-100-ac
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Near Infrared Diode Laser Dlr 100 Ac, supplied by IPG Laser GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/near+infrared+diode+laser+dlr+100+ac/pm37862508-71-2-5
Average 90 stars, based on 1 article reviews
near-infrared diode laser dlr-100-ac - by Bioz Stars, 2026-09
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90
IRIDEX Inc continuous wave infrared diode laser
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Continuous Wave Infrared Diode Laser, supplied by IRIDEX Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+diode+laser/pm39397105-54-11-19
Average 90 stars, based on 1 article reviews
continuous wave infrared diode laser - by Bioz Stars, 2026-09
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90
Chattanooga Medical Supply Inc gallium–aluminum–arsenide (gaalas) infrared diode laser device
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Gallium–Aluminum–Arsenide (Gaalas) Infrared Diode Laser Device, supplied by Chattanooga Medical Supply Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/gallium+aluminum+arsenide++gaalas++infrared+diode+laser+device/pm40565943-47-8-14
Average 90 stars, based on 1 article reviews
gallium–aluminum–arsenide (gaalas) infrared diode laser device - by Bioz Stars, 2026-09
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90
Aculight Corporation pulsed, mid-infrared lasers aculight diode lasers
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Pulsed, Mid Infrared Lasers Aculight Diode Lasers, supplied by Aculight Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/pulsed++mid+infrared+lasers+aculight+diode+lasers/pmc04144413-668-6-13
Average 90 stars, based on 1 article reviews
pulsed, mid-infrared lasers aculight diode lasers - by Bioz Stars, 2026-09
90/100 stars
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90
Laserline GmbH pulsed infrared diode lasers laserline ldfpulse
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Pulsed Infrared Diode Lasers Laserline Ldfpulse, supplied by Laserline GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/pulsed+infrared+diode+lasers+laserline+ldfpulse/10__1002_slash_phvs__201900044-70-32-32
Average 90 stars, based on 1 article reviews
pulsed infrared diode lasers laserline ldfpulse - by Bioz Stars, 2026-09
90/100 stars
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90
TOPTICA Photonics diode-pumped near infrared (nir) laser excitation
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Diode Pumped Near Infrared (Nir) Laser Excitation, supplied by TOPTICA Photonics, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/diode+pumped+near+infrared++nir++laser+excitation/pm23791678-94-1-10
Average 90 stars, based on 1 article reviews
diode-pumped near infrared (nir) laser excitation - by Bioz Stars, 2026-09
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90
STMicroelectronics Pte infrared laser diode
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Infrared Laser Diode, supplied by STMicroelectronics Pte, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+laser+diode/us10959666-352-8-14
Average 90 stars, based on 1 article reviews
infrared laser diode - by Bioz Stars, 2026-09
90/100 stars
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90
OCTAX Microscience GmbH infrared diode laser laser shot system
Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the <t>NIR</t> <t>laser</t> irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.
Infrared Diode Laser Laser Shot System, supplied by OCTAX Microscience GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/infrared+laser+diodes/infrared+diode+laser/pmc09072368-268-30-33
Average 90 stars, based on 1 article reviews
infrared diode laser laser shot system - by Bioz Stars, 2026-09
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Image Search Results


Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the NIR laser irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Journal: Biomaterials Research

Article Title: Optimizing the Surface Functionalization of Peptide–MXene Nanoplatforms to Amplify Tumor-Targeting Efficiency and Photothermal Therapy

doi: 10.34133/bmr.0198

Figure Lengend Snippet: Characterization of MXene according to particle size. (A) A schematic diagram of MXene particle size control. (B) Dynamic light scattering (DLS) graph of MXene particle size distribution. (C) A schematic diagram of fabrication of tumor spheroids containing MXene particles. (D) Optical imaging of MXene spheroids for 2 d with different MXene concentrations (×200). (E) Diameter graph of tumor spheroids containing MXene. (F) Aspect ratio graph of tumor spheroids containing MXene. (G) Energy-dispersive x-ray spectroscopy (EDS) mapping and scanning electron microscopy (SEM) images of tumor spheroids with MXene (×2,000). (H) The temperature change curve of tumor spheroids with different MXene concentrations under irradiation with a laser power density (1.50 W/cm 2 ) for 10 min. (I) Temperature change curve for the laser on–off cycle of tumor spheroids containing MXene. Heating and cooling for 3 min, a total of 5 cycles (808 nm, 1.50 W/cm 2 ). (J) LIVE/DEAD staining images before and after the NIR laser irradiation of tumor spheroids for 10 min (green: live cells; red: dead cells) and (K) quantification of cell viability in each group. Scale bars: (D) 100, (G) 20, and (J) 200 μm. All data represent mean ± SD ( n = 3). * P < 0.05, *** P < 0.001, and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Article Snippet: To evaluate the photothermal performance of MXene particles, the control group without MXene particles, the group with MXene microparticles (10 and 50 μg/ml), and the group with nanoparticles (10 and 50 μg/ml) were irradiated with NIR laser (MDL-III-808, CNI Laser, China) at a power of 1.5 W/cm 2 for 10 min.

Techniques: Control, Optical Imaging, Spectroscopy, Electron Microscopy, Irradiation, Staining

Targeting ability of MXene@RGD in tumor spheroids. (A) Schematic diagram of tumor spheroid attachment and apoptosis of MXene@RGD. (B) Ti element mapping and SEM image of tumor spheroids (×800). (C) EDS elemental analysis graph of tumor spheroids. (D) Cell viability graph by (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) analysis. (E) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (F) LIVE/DEAD staining images after the NIR laser irradiation of tumor spheroids for 5 min (×200) (green: live cells; red: dead cells) and (G) quantification of cell viability in each group. (H) Immunofluorescent staining image of tumor spheroids (×630); green: Ki-67; red: annexin V; blue: 4′,6-diamidino-2-phenylindole (DAPI). (I) Quantification of immunofluorescent expression area and (J) expression intensity. Scale bars: (B) 50, (F) 100, and (H) 40 μm. All data represent mean ± SD ( n = 3 to 5). ** P < 0.01 and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Journal: Biomaterials Research

Article Title: Optimizing the Surface Functionalization of Peptide–MXene Nanoplatforms to Amplify Tumor-Targeting Efficiency and Photothermal Therapy

doi: 10.34133/bmr.0198

Figure Lengend Snippet: Targeting ability of MXene@RGD in tumor spheroids. (A) Schematic diagram of tumor spheroid attachment and apoptosis of MXene@RGD. (B) Ti element mapping and SEM image of tumor spheroids (×800). (C) EDS elemental analysis graph of tumor spheroids. (D) Cell viability graph by (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) analysis. (E) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (F) LIVE/DEAD staining images after the NIR laser irradiation of tumor spheroids for 5 min (×200) (green: live cells; red: dead cells) and (G) quantification of cell viability in each group. (H) Immunofluorescent staining image of tumor spheroids (×630); green: Ki-67; red: annexin V; blue: 4′,6-diamidino-2-phenylindole (DAPI). (I) Quantification of immunofluorescent expression area and (J) expression intensity. Scale bars: (B) 50, (F) 100, and (H) 40 μm. All data represent mean ± SD ( n = 3 to 5). ** P < 0.01 and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Article Snippet: To evaluate the photothermal performance of MXene particles, the control group without MXene particles, the group with MXene microparticles (10 and 50 μg/ml), and the group with nanoparticles (10 and 50 μg/ml) were irradiated with NIR laser (MDL-III-808, CNI Laser, China) at a power of 1.5 W/cm 2 for 10 min.

Techniques: Staining, Irradiation, Expressing, Control

Selective targeting ability of other tumor spheroids and normal cell spheroids MXene@RGD. (A) Ti element mapping and SEM image of tumor spheroids (×800). (B) EDS elemental analysis graph of tumor spheroids. (C) Cell viability graph by MTT analysis. (D) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (E) LIVE/DEAD staining images after the NIR laser irradiation of tumor spheroids for 5 min (×200) (green: live cells; red: dead cells) and (F) quantification of cell viability in each group. (G) Immunofluorescent staining image of tumor spheroids (×630); green: Ki-67; red: annexin V; blue: DAPI. (H) Quantification of immunofluorescent expression area and (I) expression intensity. Scale bars: (A) 50, (E) 100, and (G) 40 μm. All data represent mean ± SD ( n = 3 to 5). * P < 0.05, ** P < 0.01, and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Journal: Biomaterials Research

Article Title: Optimizing the Surface Functionalization of Peptide–MXene Nanoplatforms to Amplify Tumor-Targeting Efficiency and Photothermal Therapy

doi: 10.34133/bmr.0198

Figure Lengend Snippet: Selective targeting ability of other tumor spheroids and normal cell spheroids MXene@RGD. (A) Ti element mapping and SEM image of tumor spheroids (×800). (B) EDS elemental analysis graph of tumor spheroids. (C) Cell viability graph by MTT analysis. (D) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (E) LIVE/DEAD staining images after the NIR laser irradiation of tumor spheroids for 5 min (×200) (green: live cells; red: dead cells) and (F) quantification of cell viability in each group. (G) Immunofluorescent staining image of tumor spheroids (×630); green: Ki-67; red: annexin V; blue: DAPI. (H) Quantification of immunofluorescent expression area and (I) expression intensity. Scale bars: (A) 50, (E) 100, and (G) 40 μm. All data represent mean ± SD ( n = 3 to 5). * P < 0.05, ** P < 0.01, and **** P < 0.0001. The symbol * indicates comparisons with a control group.

Article Snippet: To evaluate the photothermal performance of MXene particles, the control group without MXene particles, the group with MXene microparticles (10 and 50 μg/ml), and the group with nanoparticles (10 and 50 μg/ml) were irradiated with NIR laser (MDL-III-808, CNI Laser, China) at a power of 1.5 W/cm 2 for 10 min.

Techniques: Staining, Irradiation, Expressing, Control

Tumor targeting and tumor killing of MXene@RGD in vivo. (A) Schematic diagram of in vivo injection experiments of MXene@RGD. (B) Weight change curve graph of mice. (C) NIR-irradiated thermal imaging images of mice. (D) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (E) Gross images of mouse tumor for 21 d. (F) Tumor images of mice were taken 21 d later. (G) Gross images of the mice’s kidney. (H) Graph of the change in volume of tumor. (I) Graph of the change in weight of tumor. (J) Graph of the weight of the spleen. Scale bars: (E) 1, (F) 2, and (G) 1 cm. All data represent mean ± SD ( n = 7). **** P < 0.0001. The symbol * indicates comparisons with a PBS group.

Journal: Biomaterials Research

Article Title: Optimizing the Surface Functionalization of Peptide–MXene Nanoplatforms to Amplify Tumor-Targeting Efficiency and Photothermal Therapy

doi: 10.34133/bmr.0198

Figure Lengend Snippet: Tumor targeting and tumor killing of MXene@RGD in vivo. (A) Schematic diagram of in vivo injection experiments of MXene@RGD. (B) Weight change curve graph of mice. (C) NIR-irradiated thermal imaging images of mice. (D) The temperature change curve of tumor spheroids with a laser power density (1.50 W/cm 2 ) for 5 min. (E) Gross images of mouse tumor for 21 d. (F) Tumor images of mice were taken 21 d later. (G) Gross images of the mice’s kidney. (H) Graph of the change in volume of tumor. (I) Graph of the change in weight of tumor. (J) Graph of the weight of the spleen. Scale bars: (E) 1, (F) 2, and (G) 1 cm. All data represent mean ± SD ( n = 7). **** P < 0.0001. The symbol * indicates comparisons with a PBS group.

Article Snippet: To evaluate the photothermal performance of MXene particles, the control group without MXene particles, the group with MXene microparticles (10 and 50 μg/ml), and the group with nanoparticles (10 and 50 μg/ml) were irradiated with NIR laser (MDL-III-808, CNI Laser, China) at a power of 1.5 W/cm 2 for 10 min.

Techniques: In Vivo, Injection, Irradiation, Imaging