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1.
Anal Chem ; 95(43): 15943-15949, 2023 10 31.
Artículo en Inglés | MEDLINE | ID: mdl-37856787

RESUMEN

ß-Amyloid aggregation on living cell surfaces is described as responsible for the neurotoxicity associated with different neurodegenerative diseases. It is suggested that the aggregation of ß-amyloid (Aß) peptide on neuronal cell surface leads to various deviations of its vital function due to myriad pathways defined by internalization of calcium ions, apoptosis promotion, reduction of membrane potential, synaptic activity loss, etc. These are associated with structural reorganizations and pathologies of the cell cytoskeleton mainly involving actin filaments and microtubules and consequently alterations of cell mechanical properties. The effect of amyloid oligomers on cells' Young's modulus has been observed in a variety of studies. However, the precise connection between the formation of amyloid aggregates on cell membranes and their effects on the local mechanical properties of living cells is still unresolved. In this work, we have used correlative scanning ion-conductance microscopy (SICM) to study cell topography, Young's modulus mapping, and confocal imaging of Aß aggregate formation on living cell surfaces. However, it is well-known that the cytoskeleton state is highly connected to the intracellular level of reactive oxygen species (ROS). The effect of Aß leads to the induction of oxidative stress, actin polymerization, and stress fiber formation. We measured the reactive oxygen species levels inside single cells using platinum nanoelectrodes to demonstrate the connection of ROS and Young's modulus of cells. SICM can be successfully applied to studying the cytotoxicity mechanisms of Aß aggregates on living cell surfaces.


Asunto(s)
Péptidos beta-Amiloides , Microscopía , Especies Reactivas de Oxígeno/metabolismo , Péptidos beta-Amiloides/química , Citoesqueleto/metabolismo , Membrana Celular/metabolismo , Amiloide/química , Fragmentos de Péptidos/química
2.
Anal Chem ; 94(12): 4901-4905, 2022 03 29.
Artículo en Inglés | MEDLINE | ID: mdl-35285614

RESUMEN

The biodistribution of chemotherapy compounds within tumor tissue is one of the main challenges in the development of antineoplastic drugs, and techniques for simple, inexpensive, sensitive, and selective detection of various analytes in tumors are of great importance. In this paper we propose the use of platinized carbon nanoelectrodes (PtNEs) for the electrochemical detection of platinum-based drugs in various biological models, including single cells and tumor spheroids in vitro and inside solid tumors in vivo. We have demonstrated the quantitative direct detection of Pt(II) in breast adenocarcinoma MCF-7 cells treated with cisplatin and a cisplatin-based DNP prodrug. To realize the potential of this technique in advanced tumor models, we measured Pt(II) in 3D tumor spheroids in vitro and in tumor-bearing mice in vivo. The concentration gradient of Pt(II) species correlated with the distance from the sample surface in MCF-7 tumor spheroids. We then performed the detection of Pt(II) species in tumor-bearing mice treated intravenously with cisplatin and DNP. We found that there was deeper penetration of DNP in comparison to cisplatin. This research demonstrates a minimally invasive, real-time electrochemical technique for the study of platinum-based drugs.


Asunto(s)
Antineoplásicos , Profármacos , Animales , Cisplatino/química , Cisplatino/farmacología , Humanos , Células MCF-7 , Ratones , Profármacos/química , Distribución Tisular
3.
Anal Chem ; 92(12): 8010-8014, 2020 06 16.
Artículo en Inglés | MEDLINE | ID: mdl-32441506

RESUMEN

In vivo monitoring of reactive oxygen species (ROS) in tumors during treatment with anticancer therapy is important for understanding the mechanism of action and in the design of new anticancer drugs. In this work, a platinized nanoelectrode is placed into a single cell for detection of the ROS signal, and drug-induced ROS production is then recorded. The main advantages of this method are the short incubation time with the drug and its high sensitivity which allows the detection of low intracellular ROS concentrations. We have shown that our new method can measure the ROS response to chemotherapy in tumor-bearing mice in real-time. ROS levels were measured in vivo inside the tumor at different depths in response to doxorubicin. This work provides an effective new approach for the measurement of intracellular ROS by platinized nanoelectrodes.


Asunto(s)
Antineoplásicos/farmacología , Técnicas Biosensibles , Doxorrubicina/farmacología , Técnicas Electroquímicas , Especies Reactivas de Oxígeno/antagonistas & inhibidores , Animales , Línea Celular Tumoral , Humanos , Ratones , Neoplasias Experimentales/diagnóstico , Neoplasias Experimentales/tratamiento farmacológico , Neoplasias Experimentales/metabolismo , Células PC-3 , Especies Reactivas de Oxígeno/análisis , Especies Reactivas de Oxígeno/metabolismo
4.
Nanoscale ; 13(13): 6558-6568, 2021 Apr 07.
Artículo en Inglés | MEDLINE | ID: mdl-33885535

RESUMEN

Mechanical properties of living cells determined by cytoskeletal elements play a crucial role in a wide range of biological functions. However, low-stress mapping of mechanical properties with nanoscale resolution but with a minimal effect on the fragile structure of cells remains difficult. Scanning Ion-Conductance Microscopy (SICM) for quantitative nanomechanical mapping (QNM) is based on intrinsic force interactions between nanopipettes and samples and has been previously suggested as a promising alternative to conventional techniques. In this work, we have provided an alternative estimation of intrinsic force and stress and demonstrated the possibility to perform qualitative and quantitative analysis of cell nanomechanical properties of a variety of living cells. Force estimation on decane droplets with well-known elastic properties, similar to living cells, revealed that the forces applied using a nanopipette are much smaller than in the case using atomic force microscopy. We have shown that we can perform nanoscale topography and QNM using a scanning procedure with no detectable effect on live cells, allowing long-term QNM as well as detection of nanomechanical properties under drug-induced alterations of actin filaments and microtubulin.


Asunto(s)
Fenómenos Mecánicos , Microscopía de Fuerza Atómica
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