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Tokyo Chemical Industry graphene oxide nanosheets
Schematic diagram displaying the green synthesis of <t>Graphene</t> oxide- Microplastic (GO@MP) hybrid. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Graphene Oxide Nanosheets, supplied by Tokyo Chemical Industry, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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1) Product Images from "Graphene oxide–microplastic hybrid showcase elicited discrepancy through intrinsic interaction mediated steatosis, and apoptosis in macrophages"

Article Title: Graphene oxide–microplastic hybrid showcase elicited discrepancy through intrinsic interaction mediated steatosis, and apoptosis in macrophages

Journal: Materials Today Bio

doi: 10.1016/j.mtbio.2026.102987

Schematic diagram displaying the green synthesis of Graphene oxide- Microplastic (GO@MP) hybrid. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Figure Legend Snippet: Schematic diagram displaying the green synthesis of Graphene oxide- Microplastic (GO@MP) hybrid. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

Techniques Used: Microplastic

Physicochemical characterzation of the GO, PS and GO@MP; (A) Optical microscopy image of the (a) Graphene oxide (GO) (b) Polystyrene Microplastic (MP) (c) GO@MP; (B) Scanning electron microscopy images of (a) GO (b) MP and (c) GO@MP; (C) hydrodynamic diameter of GO, MP and GO@MP determined by dynamic light scattering; (D) Zeta potential of GO, MP and GO@MP determined by dynamic light scattering; (E) FTIR spectrum of GO, MP and GO@MP.
Figure Legend Snippet: Physicochemical characterzation of the GO, PS and GO@MP; (A) Optical microscopy image of the (a) Graphene oxide (GO) (b) Polystyrene Microplastic (MP) (c) GO@MP; (B) Scanning electron microscopy images of (a) GO (b) MP and (c) GO@MP; (C) hydrodynamic diameter of GO, MP and GO@MP determined by dynamic light scattering; (D) Zeta potential of GO, MP and GO@MP determined by dynamic light scattering; (E) FTIR spectrum of GO, MP and GO@MP.

Techniques Used: Microscopy, Microplastic, Electron Microscopy, Zeta Potential Analyzer

Schematic presentation of the mechanistic cellular toxicity of Graphene oxide-Microplastic hybrid (GO@MP) with RAW264.7 cells.
Figure Legend Snippet: Schematic presentation of the mechanistic cellular toxicity of Graphene oxide-Microplastic hybrid (GO@MP) with RAW264.7 cells.

Techniques Used: Microplastic



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Image Search Results


Schematic diagram displaying the green synthesis of Graphene oxide- Microplastic (GO@MP) hybrid. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

Journal: Materials Today Bio

Article Title: Graphene oxide–microplastic hybrid showcase elicited discrepancy through intrinsic interaction mediated steatosis, and apoptosis in macrophages

doi: 10.1016/j.mtbio.2026.102987

Figure Lengend Snippet: Schematic diagram displaying the green synthesis of Graphene oxide- Microplastic (GO@MP) hybrid. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

Article Snippet: Commercial Graphene oxide nanosheets were purchased from Tokyo Chemical Industry Co., Ltd. (TCI), India.

Techniques: Microplastic

Physicochemical characterzation of the GO, PS and GO@MP; (A) Optical microscopy image of the (a) Graphene oxide (GO) (b) Polystyrene Microplastic (MP) (c) GO@MP; (B) Scanning electron microscopy images of (a) GO (b) MP and (c) GO@MP; (C) hydrodynamic diameter of GO, MP and GO@MP determined by dynamic light scattering; (D) Zeta potential of GO, MP and GO@MP determined by dynamic light scattering; (E) FTIR spectrum of GO, MP and GO@MP.

Journal: Materials Today Bio

Article Title: Graphene oxide–microplastic hybrid showcase elicited discrepancy through intrinsic interaction mediated steatosis, and apoptosis in macrophages

doi: 10.1016/j.mtbio.2026.102987

Figure Lengend Snippet: Physicochemical characterzation of the GO, PS and GO@MP; (A) Optical microscopy image of the (a) Graphene oxide (GO) (b) Polystyrene Microplastic (MP) (c) GO@MP; (B) Scanning electron microscopy images of (a) GO (b) MP and (c) GO@MP; (C) hydrodynamic diameter of GO, MP and GO@MP determined by dynamic light scattering; (D) Zeta potential of GO, MP and GO@MP determined by dynamic light scattering; (E) FTIR spectrum of GO, MP and GO@MP.

Article Snippet: Commercial Graphene oxide nanosheets were purchased from Tokyo Chemical Industry Co., Ltd. (TCI), India.

Techniques: Microscopy, Microplastic, Electron Microscopy, Zeta Potential Analyzer

Schematic presentation of the mechanistic cellular toxicity of Graphene oxide-Microplastic hybrid (GO@MP) with RAW264.7 cells.

Journal: Materials Today Bio

Article Title: Graphene oxide–microplastic hybrid showcase elicited discrepancy through intrinsic interaction mediated steatosis, and apoptosis in macrophages

doi: 10.1016/j.mtbio.2026.102987

Figure Lengend Snippet: Schematic presentation of the mechanistic cellular toxicity of Graphene oxide-Microplastic hybrid (GO@MP) with RAW264.7 cells.

Article Snippet: Commercial Graphene oxide nanosheets were purchased from Tokyo Chemical Industry Co., Ltd. (TCI), India.

Techniques: Microplastic

Frequency of nanomaterial type ( A ), nanomaterial class ( B ), surface functionalization ( C ), and anticancer agent ( D ) in the included nanotherapeutics. Note: All plots were generated based on the count of experimental entries (N = 28). (BAS: bovine serum albumin; CS: chitosan; Cys: cysteamine; DMSA: dimercaptosuccinic acid; FFYSV: L-phenylalanine-L-phenylalanine-tyroservatide; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; MMNCP: macrophage membrane-coated nanoparticle; PEG: polyethylene glycol; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX; PVP: polyvinylpyrrolidone).

Journal: Epigenomes

Article Title: Exploring the Impact of Nanotherapeutics on Histone H3 and H4 Acetylation Enrichment in Cancer Epigenome: A Systematic Scoping Synthesis

doi: 10.3390/epigenomes9040044

Figure Lengend Snippet: Frequency of nanomaterial type ( A ), nanomaterial class ( B ), surface functionalization ( C ), and anticancer agent ( D ) in the included nanotherapeutics. Note: All plots were generated based on the count of experimental entries (N = 28). (BAS: bovine serum albumin; CS: chitosan; Cys: cysteamine; DMSA: dimercaptosuccinic acid; FFYSV: L-phenylalanine-L-phenylalanine-tyroservatide; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; MMNCP: macrophage membrane-coated nanoparticle; PEG: polyethylene glycol; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX; PVP: polyvinylpyrrolidone).

Article Snippet: H3K9ac was only targeted by gold-based nanotherapeutics, while H4K16ac was exclusively targeted by graphene oxide nanosheets (GONs), and H3K27ac was studied only against HDL-like nanoparticles ( B).

Techniques: Generated, Membrane

Distribution of histone acetylation marks based on enrichment pattern ( A ), nanomaterial type ( B ), and cancer type ( C ). Note: All plots were generated based on the count of experimental entries (N = 28). (BSA: bovine serum albumin; BLCA: bladder cancer; BRCA: breast cancer; CCA: cholangiocarcinoma; CRC: colorectal cancer; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; LUAD: lung adenocarcinoma; MMCN: macrophage membrane-coated nanoparticle; OV: ovarian cancer; PDAC: pancreatic ductal adenocarcinoma; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX; PRAD: prostate adenocarcinoma; SKCM: skin cutaneous melanoma).

Journal: Epigenomes

Article Title: Exploring the Impact of Nanotherapeutics on Histone H3 and H4 Acetylation Enrichment in Cancer Epigenome: A Systematic Scoping Synthesis

doi: 10.3390/epigenomes9040044

Figure Lengend Snippet: Distribution of histone acetylation marks based on enrichment pattern ( A ), nanomaterial type ( B ), and cancer type ( C ). Note: All plots were generated based on the count of experimental entries (N = 28). (BSA: bovine serum albumin; BLCA: bladder cancer; BRCA: breast cancer; CCA: cholangiocarcinoma; CRC: colorectal cancer; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; LUAD: lung adenocarcinoma; MMCN: macrophage membrane-coated nanoparticle; OV: ovarian cancer; PDAC: pancreatic ductal adenocarcinoma; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX; PRAD: prostate adenocarcinoma; SKCM: skin cutaneous melanoma).

Article Snippet: H3K9ac was only targeted by gold-based nanotherapeutics, while H4K16ac was exclusively targeted by graphene oxide nanosheets (GONs), and H3K27ac was studied only against HDL-like nanoparticles ( B).

Techniques: Generated, Membrane

Lollipop plots of size ( A ), concentration ( B ), and cell viability ( C ) divided by nanomaterial classification. Note: Each dot represents a specific value reported for the variable. Plots are ordered to show efficiency in terms of size, dosage, and anticancer effect. (BSA: bovine serum albumin; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; MMCNP: macrophage membrane-coated nanoparticle; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX).

Journal: Epigenomes

Article Title: Exploring the Impact of Nanotherapeutics on Histone H3 and H4 Acetylation Enrichment in Cancer Epigenome: A Systematic Scoping Synthesis

doi: 10.3390/epigenomes9040044

Figure Lengend Snippet: Lollipop plots of size ( A ), concentration ( B ), and cell viability ( C ) divided by nanomaterial classification. Note: Each dot represents a specific value reported for the variable. Plots are ordered to show efficiency in terms of size, dosage, and anticancer effect. (BSA: bovine serum albumin; GON: graphene oxide nanosheet; HDL: high-density lipoprotein; MMCNP: macrophage membrane-coated nanoparticle; PLGA: poly(lactic-co-glycolic acid); PpIX: protoporphyrin IX).

Article Snippet: H3K9ac was only targeted by gold-based nanotherapeutics, while H4K16ac was exclusively targeted by graphene oxide nanosheets (GONs), and H3K27ac was studied only against HDL-like nanoparticles ( B).

Techniques: Concentration Assay, Membrane