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1.
J Nanobiotechnology ; 22(1): 294, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38807127

ABSTRACT

BACKGROUND: Ulcerative colitis (UC) is one chronic and relapsing inflammatory bowel disease. Macrophage has been reputed as one trigger for UC. Recently, phosphodiesterase 4 (PDE4) inhibitors, for instance roflumilast, have been regarded as one latent approach to modulating macrophage in UC treatment. Roflumilast can decelerate cyclic adenosine monophosphate (cAMP) degradation, which impedes TNF-α synthesis in macrophage. However, roflumilast is devoid of macrophage-target and consequently causes some unavoidable adverse reactions, which restrict the utilization in UC. RESULTS: Membrane vesicles (MVs) from probiotic Escherichia coli Nissle 1917 (EcN 1917) served as a drug delivery platform for targeting macrophage. As model drugs, roflumilast and MnO2 were encapsulated in MVs (Rof&MnO2@MVs). Roflumilast inhibited cAMP degradation via PDE4 deactivation and MnO2 boosted cAMP generation by activating adenylate cyclase (AC). Compared with roflumilast, co-delivery of roflumilast and MnO2 apparently produced more cAMP and less TNF-α in macrophage. Besides, Rof&MnO2@MVs could ameliorate colitis in mouse model and regulate gut microbe such as mitigating pathogenic Escherichia-Shigella and elevating probiotic Akkermansia. CONCLUSIONS: A probiotic-based nanoparticle was prepared for precise codelivery of roflumilast and MnO2 into macrophage. This biomimetic nanoparticle could synergistically modulate cAMP in macrophage and ameliorate experimental colitis.


Subject(s)
Aminopyridines , Benzamides , Cyclic AMP , Cyclopropanes , Macrophages , Manganese Compounds , Oxides , Probiotics , Animals , Aminopyridines/pharmacology , Mice , Cyclic AMP/metabolism , Probiotics/pharmacology , Cyclopropanes/pharmacology , Cyclopropanes/chemistry , Manganese Compounds/chemistry , Manganese Compounds/pharmacology , Benzamides/pharmacology , Benzamides/chemistry , Oxides/pharmacology , Oxides/chemistry , Macrophages/drug effects , Macrophages/metabolism , Phosphodiesterase 4 Inhibitors/pharmacology , Phosphodiesterase 4 Inhibitors/chemistry , Colitis/drug therapy , Colitis/chemically induced , RAW 264.7 Cells , Escherichia coli/drug effects , Tumor Necrosis Factor-alpha/metabolism , Mice, Inbred C57BL , Male , Disease Models, Animal
2.
Biosens Bioelectron ; 259: 116387, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38754194

ABSTRACT

The incidence of esophageal cancer is positively associated with fumonisin contamination. It is necessary to develop methods for the rapid detection of fumonisins. In this work, a self-powered photoelectrochemical aptamer sensor based on ZnIn2S4/WO3 photoanode and Au@W-Co3O4 photocathode is proposed for the sensitive detection of fumonisin B1 (FB1). Among them, under visible light irradiation, the Z-type heterostructure of ZnIn2S4/WO3 acts as a photoanode to improve the electron transfer rate, which contributes to the enhancement of the photocathode signal and lays the foundation for a wider detection range. The Au@W-Co3O4 photocathode as a sensing interface reduces the probability of false positives (comparison of anode sensing platforms). The PEC sensor has a good working performance in the detection range (10 pg/mL-1000 ng/mL) with a detection limit of 2.7 pg/mL (S/N = 3). In addition, the sensor offers good selectivity, stability and excellent recoveries in real sample analysis. This work is expected to play a role in the field of analyzing environmental toxins.


Subject(s)
Aptamers, Nucleotide , Biosensing Techniques , Electrochemical Techniques , Fumonisins , Limit of Detection , Fumonisins/analysis , Fumonisins/chemistry , Aptamers, Nucleotide/chemistry , Tungsten/chemistry , Electrodes , Oxides/chemistry , Gold/chemistry , Humans , Light , Zinc/chemistry
3.
ACS Appl Mater Interfaces ; 16(20): 25879-25891, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38718301

ABSTRACT

Biological imaging-guided targeted tumor therapy has been a soughtafter goal in the field of cancer diagnosis and treatment. To this end, we proposed a strategy to modulate surface plasmon resonance and endow WO3-x nanoparticles (NPs) with enzyme-like catalytic properties by doping Fe2+ in the structure of the NPs. Doping of the Fe2+ introduced oxygen vacancies into the structure of the NPs, inducing a red shift of the maximum absorption wavelength into the near-infrared II (NIR-II) region and enhancing the photoacoustic (PA) and photothermal properties of the NPs for more effective imaging-guided cancer therapy. Under NIR-II laser irradiation, the Fe-WO3-x NPs produced very strong NIR-II PA and photothermal effects, which significantly enhanced the PA imaging and photothermal treatment effects. On the other hand, Fe2+ in Fe-WO3-x could undergo Fenton reactions with H2O2 in the tumor tissue to generate ·OH for chemodynamic therapy. In addition, Fe-WO3-x can also catalyze the above reactions to produce more reactive oxygen species (ROS) and induce the oxidation of NADH to interfere with intracellular adenosine triphosphate (ATP) synthesis, thereby further improving the efficiency of cancer therapy. Specific imaging of tumor tissue and targeted synergistic therapy was achieved after ligation of a MUC1 aptamer to the surface of the Fe-WO3-x NPs by the complexing of -COOH in MUC1 with tungsten ions on the surface of the NPs. These results demonstrated that Fe-WO3-x NPs could be a promising diagnosis and therapeutic agent for cancer. Such a study opens up new avenues into the rational design of nanodiagnosis and treatment agents for NIR-II PA imaging and cancer therapy.


Subject(s)
Photoacoustic Techniques , Surface Plasmon Resonance , Tungsten , Animals , Humans , Mice , Tungsten/chemistry , Infrared Rays , Oxides/chemistry , Neoplasms/diagnostic imaging , Neoplasms/therapy , Neoplasms/drug therapy , Nanoparticles/chemistry , Nanoparticles/therapeutic use , Cell Line, Tumor , Reactive Oxygen Species/metabolism
4.
Luminescence ; 39(5): e4768, 2024 May.
Article in English | MEDLINE | ID: mdl-38719590

ABSTRACT

In this study, we synthesize nanostructured nickel oxide (NiO) and doped cobalt (Co) by combining nickel(II) chloride hexahydrate (NiCl2.6H2O) and sodium hydroxide (NaOH) as initial substances. We analyzed the characteristics of the product nanostructures, including their structure, optical properties, and magnetic properties, using various techniques such as x-ray diffraction (XRD), scanning electron microscopy (SEM), ultraviolet absorption spectroscopy (UV-Vis), Fourier transform infrared (FTIR) spectroscopy, and vibrating sample magnetometers (VSM). The NiO nanoparticles doped with Co showed photocatalytic activity in degrading methylene blue (MB) dye in aqueous solutions. We calculated the degradation efficiencies by analyzing the UV-Vis absorption spectra at the dye's absorption wavelength of 664 nm. It was observed that the NiO-doped Co nanoparticles facilitated enhanced recombination and migration of active elements, which led to more effective degradation of organic dyes during photocatalysis. We also assessed the electrochemical properties of the materials using cyclic voltammetry (CV) and impedance spectroscopy in a 1 mol% NaOH solution. The NiO-modified electrode exhibited poor voltammogram performance due to insufficient contact between nanoparticles and the electrolyte solution. In contrast, the uncapped NiO's oxidation and reduction cyclic voltammograms displayed redox peaks at 0.36 and 0.30 V, respectively.


Subject(s)
Cobalt , Electrochemistry , Electrodes , Nanocomposites , Nickel , Nanocomposites/chemistry , Nickel/chemistry , Cobalt/chemistry , X-Ray Diffraction , Spectroscopy, Fourier Transform Infrared , Luminescence , Microscopy, Electron, Scanning , Particle Size , Magnetic Phenomena , Nanoparticles/chemistry , Light , Catalysis , Oxides/chemistry , Methylene Blue/metabolism
5.
J Nanobiotechnology ; 22(1): 234, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724978

ABSTRACT

Radiotherapy-induced immune activation holds great promise for optimizing cancer treatment efficacy. Here, we describe a clinically used radiosensitizer hafnium oxide (HfO2) that was core coated with a MnO2 shell followed by a glucose oxidase (GOx) doping nanoplatform (HfO2@MnO2@GOx, HMG) to trigger ferroptosis adjuvant effects by glutathione depletion and reactive oxygen species production. This ferroptosis cascade potentiation further sensitized radiotherapy by enhancing DNA damage in 4T1 breast cancer tumor cells. The combination of HMG nanoparticles and radiotherapy effectively activated the damaged DNA and Mn2+-mediated cGAS-STING immune pathway in vitro and in vivo. This process had significant inhibitory effects on cancer progression and initiating an anticancer systemic immune response to prevent distant tumor recurrence and achieve long-lasting tumor suppression of both primary and distant tumors. Furthermore, the as-prepared HMG nanoparticles "turned on" spectral computed tomography (CT)/magnetic resonance dual-modality imaging signals, and demonstrated favorable contrast enhancement capabilities activated by under the GSH tumor microenvironment. This result highlighted the potential of nanoparticles as a theranostic nanoplatform for achieving molecular imaging guided tumor radiotherapy sensitization induced by synergistic immunotherapy.


Subject(s)
Ferroptosis , Immunotherapy , Manganese Compounds , Membrane Proteins , Mice, Inbred BALB C , Nanoparticles , Nucleotidyltransferases , Oxides , Radiation-Sensitizing Agents , Animals , Mice , Immunotherapy/methods , Oxides/chemistry , Oxides/pharmacology , Female , Nucleotidyltransferases/metabolism , Manganese Compounds/chemistry , Manganese Compounds/pharmacology , Cell Line, Tumor , Nanoparticles/chemistry , Radiation-Sensitizing Agents/pharmacology , Radiation-Sensitizing Agents/chemistry , Membrane Proteins/metabolism , Ferroptosis/drug effects , Glucose Oxidase/metabolism , Reactive Oxygen Species/metabolism , Humans , DNA Damage , Tumor Microenvironment/drug effects
6.
Luminescence ; 39(5): e4750, 2024 May.
Article in English | MEDLINE | ID: mdl-38733198

ABSTRACT

Ultra-high thermally stable Ca2MgWO6:xSm3+ (x = 0.5, 0.75, 1, 1.25, and 1.5 mol%) double perovskite phosphors were synthesized through solid-state reaction method. Product formation was confirmed by comparing the X-ray diffraction (XRD) patterns of the phosphors with the standard reference file. The structural, morphological, thermal, and optical properties of the prepared phosphor were examined in detail using XRD, Fourier transform infrared spectra, scanning electron microscopy, diffused reflectance spectra, thermogravimetric analysis (TGA), photoluminescence emission, and temperature-dependent PLE (TDPL). It was seen that the phosphor exhibited emission in the reddish region for the near-ultraviolet excitation with moderate Colour Rendering Index values and high colour purity. The optimized phosphor (x = 1.25 mol%) was found to possess a direct optical band gap of 3.31 eV. TGA studies showed the astonishing thermal stability of the optimized phosphor. Additionally, near-zero thermal quenching was seen in TDPL due to elevated phonon-assisted radiative transition. Furthermore, the anti-Stokes and Stokes emission peaks were found to be sensitive toward the temperature change and followed a Boltzmann-type distribution. All these marked properties will make the prepared phosphors a suitable candidate for multifield applications and a fascinating material for further development.


Subject(s)
Luminescence , Luminescent Agents , Samarium , Temperature , Tungsten Compounds , Tungsten Compounds/chemistry , Luminescent Agents/chemistry , Luminescent Agents/chemical synthesis , Samarium/chemistry , Luminescent Measurements , X-Ray Diffraction , Calcium Compounds/chemistry , Oxides/chemistry , Thermogravimetry
7.
ACS Appl Mater Interfaces ; 16(19): 24384-24397, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38709640

ABSTRACT

Vascularization and inflammation management are essential for successful bone regeneration during the healing process of large bone defects assisted by artificial implants/fillers. Therefore, this study is devoted to the optimization of the osteogenic microenvironment for accelerated bone healing through rapid neovascularization and appropriate inflammation inhibition that were achieved by applying a tantalum oxide (TaO)-based nanoplatform carrying functional substances at the bone defect. Specifically, TaO mesoporous nanospheres were first constructed and then modified by functionalized metal ions (Mg2+) with the following deferoxamine (DFO) loading to obtain the final product simplified as DFO-Mg-TaO. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) revealed that the product was homogeneously dispersed hollow nanospheres with large specific surface areas and mesoporous shells suitable for loading Mg2+ and DFO. The biological assessments indicated that DFO-Mg-TaO could enhance the adhesion, proliferation, and osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs). The DFO released from DFO-Mg-TaO promoted angiogenetic activity by upregulating the expressions of hypoxia-inducible factor-1 (HIF-1α) and vascular endothelial growth factor (VEGF). Notably, DFO-Mg-TaO also displayed anti-inflammatory activity by reducing the expressions of pro-inflammatory factors, benefiting from the release of bioactive Mg2+. In vivo experiments demonstrated that DFO-Mg-TaO integrated with vascular regenerative, anti-inflammatory, and osteogenic activities significantly accelerated the reconstruction of bone defects. Our findings suggest that the optimized DFO-Mg-TaO nanospheres are promising as multifunctional fillers to speed up the bone healing process.


Subject(s)
Bone Regeneration , Deferoxamine , Magnesium , Mesenchymal Stem Cells , Oxides , Tantalum , Deferoxamine/chemistry , Deferoxamine/pharmacology , Bone Regeneration/drug effects , Tantalum/chemistry , Animals , Oxides/chemistry , Oxides/pharmacology , Magnesium/chemistry , Magnesium/pharmacology , Mesenchymal Stem Cells/drug effects , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Osteogenesis/drug effects , Neovascularization, Physiologic/drug effects , Rats , Mice , Rats, Sprague-Dawley , Cell Proliferation/drug effects , Angiogenesis
8.
Sci Rep ; 14(1): 10684, 2024 05 09.
Article in English | MEDLINE | ID: mdl-38724636

ABSTRACT

Pollution by heavy metals (HMs) has become a global problem for agriculture and the environment. In this study, the effects of pristine biochar and biochar modified with manganese dioxide (BC@MnO2) and zinc oxide (BC@ZnO) nanoparticles on the immobilization and bioavailability of Pb, Cd, Zn, and Ni in soil under ryegrass (Lolium perenne L.) cultivation were investigated. The results of SEM-EDX, FTIR, and XRD showed that ZnO and MnO2 nanoparticles were successfully loaded onto biochar. The results showed that BC, BC@MnO2 and BC@ZnO treatments significantly increased shoots and roots dry weight of ryegrass compared to the control. The maximum dry weight of root and shoot (1.365 g pot-1 and 4.163 g pot-1, respectively) was reached at 1% BC@MnO2. The HMs uptake by ryegrass roots and shoots decreased significantly after addition of amendments. The lowest Pb, Cd, Zn and Ni uptake in the plant shoot (13.176, 24.92, 32.407, and 53.88 µg pot-1, respectively) was obtained in the 1% BC@MnO2 treatment. Modified biochar was more successful in reducing HMs uptake by ryegrass and improving plant growth than pristine biochar and can therefore be used as an efficient and cost effective amendment for the remediation of HMs contaminated soils. The lowest HMs translocation (TF) and bioconcentration factors were related to the 1% BC@MnO2 treatment. Therefore, BC@MnO2 was the most successful treatment for HMs immobilization in soil. Also, a comparison of the TF values of plant showed that ryegrass had a good ability to accumulate all studied HMs in its roots, and it is a suitable plant for HMs phytostabilization.


Subject(s)
Charcoal , Lolium , Manganese Compounds , Metals, Heavy , Oxides , Soil Pollutants , Zinc Oxide , Lolium/metabolism , Lolium/growth & development , Charcoal/chemistry , Soil Pollutants/metabolism , Oxides/chemistry , Metals, Heavy/metabolism , Zinc Oxide/chemistry , Manganese Compounds/chemistry , Manganese Compounds/metabolism , Plant Roots/metabolism , Plant Roots/growth & development , Nanoparticles/chemistry , Biological Availability , Soil/chemistry
9.
Water Environ Res ; 96(6): e11038, 2024 May.
Article in English | MEDLINE | ID: mdl-38797821

ABSTRACT

The continuous population growth and drying up the freshwater reservoirs around the world are increasing the demand for fresh water. Therefore, there is an urgent need to explore newer technologies able to purify water on large scales for human usage. Capacitive deionization is one of the most promising approaches to generate fresh water by the removal of salt ions from brackish water. In this work, we prepared three different capacitive deionization electrodes using carbonized palm tree fronds (PFC). These PFC activation was achieved using CO2 at 900°C. To generate the deionization electrodes, PFC activated carbon was combined with either polyaniline (PANI), MnO2, or both (PFC-PANI, PFC-MnO2, and PFC-MnO2-PANI). The MnO2 and PANI provided additional functionality and enhanced electrical conductivity, which resulted in much higher Na+ and Cl- ions adsorption. The BET surface area of PFC-MnO2-PANI was estimated to be 208.56 m2/g, which is approximately three times that of PCF-PANI and PFC-MnO2 alone. The morphological analysis showed that the PANI and MnO2 nanorods were well dispersed throughout the PFC network. Although PANI and MnO2 is largely embedded inside the PFC network, some remnants are visible on the surface of the electrodes. The cyclic voltammetry (CV) curves showed capacitive behavior of all electrodes in which PFC-MnO2-PANI showed highest specific capacitance of 84 F/g, while the PFC-MnO2 and PFC-PANI showed 42 and 43 F/g, respectively. Owing to its enhanced functionality and CV characteristics, the PFC-MnO2-PANI showed maximum salt adsorption capacity of 10.5 mg/g in contrast to 3.72 and 5.64 mg/g for PFC-MnO2 and PFC-PANI, respectively. Moreover, the measured contact angle for PFC-MnO2-PANI was ~51°, which indicates the hydrophilic nature of electrode that improved ions adsorption. PRACTITIONER POINTS: Date tree fronds were converted into mesopores carbon using CO2 as activation agent. Three composites were prepared with PANI, MnO2, and date palm fronds activated carbon (PFC-MnO2, PFC-MnO2-PANI, and PFC-PANI). Surface area, pore profile, surface morphology, electrochemical behavior, desalination performance, and hydrophilicity of all the electrodes were investigated. The PFC-MnO2-PANI showed maximum salt adsorption capacity of 10.5 mg/g in contrast to 3.72 and 5.64 mg/g for PFC-MnO2 and PFC-PANI, respectively.


Subject(s)
Aniline Compounds , Carbon Dioxide , Manganese Compounds , Oxides , Phoeniceae , Water Purification , Aniline Compounds/chemistry , Manganese Compounds/chemistry , Oxides/chemistry , Water Purification/methods , Phoeniceae/chemistry , Carbon Dioxide/chemistry , Carbon/chemistry , Electrodes , Adsorption
10.
J Environ Sci (China) ; 144: 212-224, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38802232

ABSTRACT

In this work, the perovskite LaZnO3 was synthesized via sol-gel method and applied for photocatalytic treatment of sulfamethizole (SMZ) antibiotics under visible light activation. SMZ was almost completely degraded (99.2% ± 0.3%) within 4 hr by photocatalyst LaZnO3 at the optimal dosage of 1.1 g/L, with a mineralization proportion of 58.7% ± 0.4%. The efficient performance of LaZnO3 can be attributed to its wide-range light absorption and the appropriate energy band edge levels, which facilitate the formation of active agents such as ·O2-, h+, and ·OH. The integration of RP-HPLC/Q-TOF-MS and DFT-based computational techniques revealed three degradation pathways of SMZ, which were initiated by the deamination reaction at the aniline ring, the breakdown of the sulfonamide moieties, and a process known as Smile-type rearrangement and SO2 intrusion. Corresponding toxicity of SMZ and the intermediates were analyzed by quantitative structure activity relationship (QSAR), indicating the effectiveness of LaZnO3-based photocatalysis in preventing secondary pollution of the intermediates to the ecosystem during the degradation process. The visible-light-activated photocatalyst LaZnO3 exhibited efficient performance in the occurrence of inorganic anions and maintained high durability across multiple recycling tests, making it a promising candidate for practical antibiotic treatment.


Subject(s)
Anti-Bacterial Agents , Light , Oxides , Sulfamethizole , Titanium , Water Pollutants, Chemical , Anti-Bacterial Agents/chemistry , Titanium/chemistry , Oxides/chemistry , Sulfamethizole/chemistry , Water Pollutants, Chemical/chemistry , Calcium Compounds/chemistry , Catalysis , Photolysis , Models, Chemical
11.
Bioresour Technol ; 402: 130841, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38750830

ABSTRACT

Activation of peroxymonosulfate (PMS) with solid catalysts for organic pharmaceutical degradation still faces challenge due to the demand of inexpensive catalysts. In this study, manganese-oxidizing microalgae (MOM) and its associated biogenic manganese oxides (BMO) were employed to prepare biomass-transformed porous-carbon/manganese (B-PC/Mn) catalyst through high-temperature calcination (850 °C). Remarkably, 100 % of carbamazepine (CBZ) was degraded within 30 min in the B-PC/Mn/PMS system. The degradation kinetic constant was 0.1718 min-1, which was 44.0 times higher than that of the biomass-transformed porous carbon mixed with MnOx activated PMS system. 1O2 was generated in the B-PC/Mn/PMS system, which is responsible for CBZ degradation. The MOM-BMO-associated structure greatly increased the specific surface areas and the contents of the C = O and pyrrolic-N groups, which facilitated PMS activation. The structure also induced the generation of Mn5C2, which exhibited a strong adsorption towards PMS. This study provides a novel strategy for preparing catalysts by using waste biomass.


Subject(s)
Biomass , Carbamazepine , Carbon , Manganese , Peroxides , Carbamazepine/chemistry , Catalysis , Porosity , Peroxides/chemistry , Carbon/chemistry , Manganese/chemistry , Kinetics , Water Pollutants, Chemical/chemistry , Microalgae/metabolism , Oxides/chemistry , Manganese Compounds/chemistry , Adsorption
12.
Int J Mol Sci ; 25(10)2024 May 07.
Article in English | MEDLINE | ID: mdl-38791115

ABSTRACT

Surface chemistry and bulk structure jointly play crucial roles in achieving high-performance supercapacitors. Here, the synergistic effect of surface chemistry properties (vacancy and phosphorization) and structure-derived properties (hollow hydrangea-like structure) on energy storage is explored by the surface treatment and architecture design of the nanostructures. The theoretical calculations and experiments prove that surface chemistry modulation is capable of improving electronic conductivity and electrolyte wettability. The structural engineering of both hollow and nanosheets produces a high specific surface area and an abundant pore structure, which is favorable in exposing more active sites and shortens the ion diffusion distance. Benefiting from its admirable physicochemical properties, the surface phosphorylated MnCo2O4.5 hollow hydrangea-like structure (P-MnCoO) delivers a high capacitance of 425 F g-1 at 1 A g-1, a superior capability rate of 63.9%, capacitance retention at 10 A g-1, and extremely long cyclic stability (91.1% after 10,000 cycles). The fabricated P-MnCoO/AC asymmetric supercapacitor achieved superior energy and power density. This work opens a new avenue to further improve the electrochemical performance of metal oxides for supercapacitors.


Subject(s)
Electric Capacitance , Manganese Compounds , Oxides , Oxygen , Manganese Compounds/chemistry , Oxides/chemistry , Oxygen/chemistry , Surface Properties , Nanostructures/chemistry , Electrochemical Techniques/methods
13.
Anal Chem ; 96(21): 8641-8647, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38716697

ABSTRACT

Pathogenic bacterial infections, even at extremely low concentrations, pose significant threats to human health. However, the challenge persists in achieving high-sensitivity bacterial detection, particularly in complex samples. Herein, we present a novel sandwich-type electrochemical sensor utilizing bacteria-imprinted polymer (BIP) coupled with vancomycin-conjugated MnO2 nanozyme (Van@BSA-MnO2) for the ultrasensitive detection of pathogenic bacteria, exemplified by Staphylococcus aureus (S. aureus). The BIP, in situ prepared on the electrode surface, acts as a highly specific capture probe by replicating the surface features of S. aureus. Vancomycin (Van), known for its affinity to bacterial cell walls, is conjugated with a Bovine serum albumin (BSA)-templated MnO2 nanozyme through EDC/NHS chemistry. The resulting Van@BSA-MnO2 complex, serving as a detection probe, provides an efficient catalytic platform for signal amplification. Upon binding with the captured S. aureus, the Van@BSA-MnO2 complex catalyzes a substrate reaction, generating a current signal proportional to the target bacterial concentration. The sensor displays remarkable sensitivity, capable of detecting a single bacterial cell in a phosphate buffer solution. Even in complex milk matrices, it maintains outstanding performance, identifying S. aureus at concentrations as low as 10 CFU mL-1 without requiring intricate sample pretreatment. Moreover, the sensor demonstrates excellent selectivity, particularly in distinguishing target S. aureus from interfering bacteria of the same genus at concentrations 100-fold higher. This innovative method, employing entirely synthetic materials, provides a versatile and low-cost detection platform for Gram-positive bacteria. In comparison to existing nanozyme-based bacterial sensors with biological recognition materials, our assay offers distinct advantages, including enhanced sensitivity, ease of preparation, and cost-effectiveness, thereby holding significant promise for applications in food safety and environmental monitoring.


Subject(s)
Manganese Compounds , Oxides , Polymers , Staphylococcus aureus , Vancomycin , Staphylococcus aureus/isolation & purification , Manganese Compounds/chemistry , Oxides/chemistry , Vancomycin/chemistry , Polymers/chemistry , Serum Albumin, Bovine/chemistry , Electrochemical Techniques/methods , Single-Cell Analysis , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacology , Animals , Limit of Detection , Molecularly Imprinted Polymers/chemistry , Humans
14.
Water Res ; 257: 121684, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38723348

ABSTRACT

Natural manganese oxides could induce the intermolecular coupling reactions among small-molecule organics in aqueous environments, which is one of the fundamental processes contributing to natural humification. These processes could be simulated to design novel advanced oxidation technology for water purification. In this study, periodate (PI) was selected as the supplementary electron-acceptor for colloidal manganese oxides (Mn(IV)aq) to remove phenolic contaminants from water. By introducing polyferric sulfate (PFS) into the Mn(IV)aq/PI system and exploiting the flocculation potential of Mn(IV)aq, a post-coagulation process was triggered to eliminate soluble manganese after oxidation. Under acidic conditions, periodate exists in the H4IO6- form as an octahedral oxyacid capable of coordinating with Mn(IV)aq to form bidentate complexes or oligomers (Mn(IV)-PI*) as reactive oxidants. The Mn(IV)-PI* complex could induce cross-coupling process between phenolic contaminants, resulting in the formation of oligomerized products ranging from dimers to hexamers. These oligomerized products participate in the coagulation process and become stored within the nascent floc due to their catenulate nature and strong hydrophobicity. Through coordination between Mn(IV)aq and H4IO6-, residual periodate is firmly connected with manganese oxides in the floc after coagulation and could be simultaneously separated from the aqueous phase. This study achieves oxidizing oligomerization through a homogeneous process under mild conditions without additional energy input or heterogeneous catalyst preparation. Compared to traditional mineralization-driven oxidation techniques, the proposed novel cascade processes realize transformation, convergence, and separation of phenolic contaminants with high oxidant utilization efficiency for low-carbon purification.


Subject(s)
Oxidation-Reduction , Water Purification , Water Purification/methods , Oxides/chemistry , Manganese Compounds/chemistry , Water Pollutants, Chemical/chemistry , Flocculation
15.
Environ Sci Technol ; 58(21): 9381-9392, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38747138

ABSTRACT

Designing suitable catalysts for efficiently degrading volatile organic compounds (VOCs) is a great challenge due to the distinct variety and nature of VOCs. Herein, the suitability of different typical VOCs (toluene and acetone) over Pt-based catalysts and Mn2O3 was investigated carefully. The activity of Mn2O3 was inferior to Pt-loaded catalysts in toluene oxidation but showed superior ability for destroying acetone, while Pt loading could boost the catalytic activity of Mn2O3 for both acetone and toluene. This suitability could be determined by the physicochemical properties of the catalysts and the structure of the VOC since toluene destruction activity is highly reliant on Pt0 in the metallic state and linearly correlated with the amount of surface reactive oxygen species (Oads), while the crucial factor that affects acetone oxidation is the mobility of lattice oxygen (Olat). The Pt/Mn2O3 catalyst shows highly active Pt-O-Mn interfacial sites, favoring the generation of Oads and promoting Mn-Olat mobility, leading to its excellent performance. Therefore, the design of abundant active sites is an effective means of developing highly adaptive catalysts for the oxidation of different VOCs.


Subject(s)
Oxidation-Reduction , Platinum , Volatile Organic Compounds , Volatile Organic Compounds/chemistry , Catalysis , Platinum/chemistry , Oxides/chemistry , Manganese Compounds/chemistry
16.
Anal Chem ; 96(21): 8814-8821, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38751335

ABSTRACT

Highly responsive interface of semiconductor nanophotoelectrochemical materials provides a broad development prospect for the identification of low-abundance cancer marker molecules. This work innovatively proposes an efficient blank WO3/SnIn4S8 heterojunction interface formed by self-assembly on the working electrode for interface regulation and photoregulation. Different from the traditional biomolecular layered interface, a hydrogel layer containing manganese dioxide with a wide light absorption range is formed at the interface after an accurate response to external immune recognition. The formation of the hydrogel layer hinders the effective contact between the heterojunction interface and the electrolyte solution, and manganese dioxide in the hydrogel layer forms a strong competition between the light source and the substrate photoelectric material. The process effectively improves the carrier recombination efficiency at the interface, reduces the interface reaction kinetics and photoelectric conversion efficiency, and thus provides strong support for target identification. Taking advantage of the process, the resulting biosensors are being explored for sensitive detection of human epidermal growth factor receptor 2, with a limit of detection as low as 0.037 pg/mL. Also, this study contributes to the advancement of photoelectrochemical biosensing technology and opens up new avenues for the development of sensitive and accurate analytical tools in the field of bioanalysis.


Subject(s)
Biosensing Techniques , Electrochemical Techniques , Manganese Compounds , Oxides , Receptor, ErbB-2 , Humans , Electrochemical Techniques/methods , Oxides/chemistry , Manganese Compounds/chemistry , Receptor, ErbB-2/immunology , Receptor, ErbB-2/metabolism , Hydrogels/chemistry , Photochemical Processes , Limit of Detection , Electrodes , Immunoassay/methods , Tungsten/chemistry
17.
Biosensors (Basel) ; 14(5)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38785698

ABSTRACT

Wastewater pipelines are present everywhere in urban areas. Wastewater is a preferable fuel for renewable electricity generation from microbial fuel cells. Here, we created an integrated microbial fuel cell pipeline (MFCP) that could be connected to wastewater pipelines and work as an organic content biosensor and energy harvesting device at domestic waste-treatment plants. The MFCP used a pipeline-like terracotta-based membrane, which provided structural support for the MFCP. In addition, the anode and cathode were attached to the inside and outside of the terracotta membrane, respectively. Co-MnO2 was used as a catalyst to improve the performance of the MFCP cathode. The experimental data showed a good linear relationship between wastewater chemical oxygen demand (COD) concentration and the MFCP output voltage in a COD range of 200-1900 mg/L. This result implies the potential of using the MFCP as a sensor to detect the organic content of the wastewater inside the wastewater pipeline. Furthermore, the MFCP can be used as a long-lasting sustainable energy harvester with a maximum power density of 400 mW/m2 harvested from 1900 mg/L COD wastewater at 25 °C.


Subject(s)
Bioelectric Energy Sources , Biosensing Techniques , Electrodes , Wastewater , Biological Oxygen Demand Analysis , Electricity , Oxides/chemistry , Manganese Compounds/chemistry
18.
Biosensors (Basel) ; 14(5)2024 May 09.
Article in English | MEDLINE | ID: mdl-38785712

ABSTRACT

Nanostructured metal oxides (NMOs) provide electrical properties such as high surface-to-volume ratio, reaction activity, and good adsorption strength. Furthermore, they serve as a conductive substrate for the immobilization of biomolecules, exhibiting notable biological activity. Capitalizing on these characteristics, they find utility in the development of various electrochemical biosensing devices, elevating the sensitivity and selectivity of such diagnostic platforms. In this review, different types of NMOs, including zinc oxide (ZnO), titanium dioxide (TiO2), iron (II, III) oxide (Fe3O4), nickel oxide (NiO), and copper oxide (CuO); their synthesis methods; and how they can be integrated into biosensors used for medical diagnosis are examined. It also includes a detailed table for the last 10 years covering the morphologies, analysis techniques, analytes, and analytical performances of electrochemical biosensors developed for medical diagnosis.


Subject(s)
Biosensing Techniques , Electrochemical Techniques , Nanostructures , Humans , Oxides/chemistry , Nickel/chemistry , Titanium/chemistry , Zinc Oxide/chemistry , Metals/chemistry , Copper/analysis , Copper/chemistry
19.
ACS Appl Bio Mater ; 7(5): 3215-3226, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38695746

ABSTRACT

This study presents a tetra-substituted phthalonitrile derivative, namely, diethyl 2-(3,4-dicyano-2,5-bis(hexyloxy)-6-(4-(trifluoromethoxy)phenoxy)phenyl)malonate (a), cyclotetramerizing in the presence of some metal salts. The resultant hexadeca-substituted metal phthalocyanines [M= Co, Zn, InCl)] (b-d) were used for the modification of reduced graphene oxide for the first time. The effect of the phthalonitrile/metal phthalocyanines on biological features of reduced graphene oxide (rGO) was extensively examined by the investigation of antioxidant, antimicrobial, DNA cleavage, cell viability, and antibiofilm activities of nanobioagents (1-4). The results were compared with those of unmodified rGO (nanobioagent 5), as well. Modification of reduced graphene oxide with the synthesized compounds improved its antioxidant activity. The antioxidant activities of all the tested nanobioagents also enhanced as the concentration increased. The antibacterial activities of all the nanobioagents improved by applying the photodynamic therapeutic (PDT) method. All the phthalonitrile/phthalocyanine-based nanobioagents (especially phthalocyanine-based nanocomposites) exhibited DNA cleavage activities, and complete DNA fragmentation was observed for nanobioagents (1-4) at 200 mg/L. They can be used as potent antimicrobial and antimicrobial photodynamic therapy agents as well as Escherichia coli microbial cell inhibitors. As a result, the prepared nanocomposites can be considered promising candidates for biomedicine.


Subject(s)
Anti-Bacterial Agents , Biocompatible Materials , Graphite , Indoles , Isoindoles , Materials Testing , Particle Size , Graphite/chemistry , Graphite/pharmacology , Indoles/chemistry , Indoles/pharmacology , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/chemical synthesis , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Biocompatible Materials/chemical synthesis , Microbial Sensitivity Tests , Cell Survival/drug effects , Escherichia coli/drug effects , Molecular Structure , Biofilms/drug effects , Humans , Antioxidants/pharmacology , Antioxidants/chemistry , Antioxidants/chemical synthesis , Oxides/chemistry , Oxides/pharmacology
20.
Biosens Bioelectron ; 258: 116354, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38723331

ABSTRACT

Real-time monitoring of biological markers in sweat is a valuable tool for health assessment. In this study, we have developed an innovative wearable biosensor for precise analysis of glucose in sweat during physical activities. The sensor is based on a single-atom catalyst of platinum (Pt) uniformly dispersed on tricobalt tetroxide (Co3O4) nanorods and reduced graphene oxide (rGO), featuring a unique three-dimensional nanostructure and excellent glucose electrocatalytic performance with a wide detection range of 1-800 µM. Additionally, density functional theory calculations have revealed the synergetic role of Pt active sites in the Pt single-atom catalyst (Co3O4/rGO/Pt) in glucose adsorption and electron transfer, thereby enhancing sensor performance. To enable application in wearable devices, we designed an S-shaped microfluidic chip and a point-of-care testing (POCT) device, both of which were validated for effectiveness through actual use by volunteers. This research provides valuable insights and innovative approaches for analyzing sweat glucose using wearable devices, contributing to the advancement of personalized healthcare.


Subject(s)
Biosensing Techniques , Glucose , Graphite , Platinum , Sweat , Wearable Electronic Devices , Biosensing Techniques/instrumentation , Sweat/chemistry , Platinum/chemistry , Humans , Catalysis , Glucose/analysis , Graphite/chemistry , Electrochemical Techniques/instrumentation , Nanotubes/chemistry , Limit of Detection , Equipment Design , Oxides/chemistry
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