Sonda ROS Brite™ DHCF

ROS Brite

La sonda ROS Brite™ DHCF se puede usar convenientemente para monitorear procesos redox celulares para ensayos de multiplexación con anticuerpos marcados con FITC o líneas celulares GFP. Una herramienta valiosa para investigar el estrés oxidativo en diversas patologías.

Descripción

Sonda ROS Brite™ DHCF

Las especies reactivas de oxígeno (ROS) son moléculas químicamente reactivas que contienen oxígeno. Los ejemplos incluyen superóxido, radical hidroxilo, oxígeno singulete y peróxidos. ROS es altamente reactivo debido a la presencia de electrones de capa de valencia no apareados.

Las ROS se forman como un subproducto natural del metabolismo normal del oxígeno y tienen funciones importantes en la señalización celular y la homeostasis. Sin embargo, durante momentos de estrés ambiental (por ejemplo, exposición a los rayos UV o al calor), los niveles de ROS pueden aumentar drásticamente. Esto puede resultar en un daño significativo a las estructuras celulares. Acumulativamente, esto se conoce como estrés oxidativo.

ROS Brite™ DHCF tiene propiedades redox similares a las del diacetato de 2′,7′-diclorodihidrofluoresceína con espectros significativamente desplazados hacia el rojo. ROS Brite™ DHCF es hidrolizado por esterasas celulares para generar la forma reducida no fluorescente que luego se oxida para generar el tinte libre altamente fluorescente principalmente por H2O2. ROS Brite™ DHCF podría ser reactivo frente a una amplia gama de reacciones oxidantes que pueden aumentar durante el estrés oxidativo intracelular.

Esta sonda se puede usar convenientemente para monitorear procesos redox celulares para ensayos de multiplexación con anticuerpos marcados con FITC o líneas celulares GFP. El producto oxidado es altamente fluorescente en las células. ROS Brite™ DHCF proporciona una herramienta valiosa para investigar el estrés oxidativo en diversas patologías.

Nombre en ingles: ROS Brite™ DHCF

CatalogoProductoPresentación
AAT-16053Sonda ROS Brite™ DHCF1mg

Importante: Solo para uso en investigación (RUO). Almacenamiento: Congelación (< -15 °C). Minimizar la exposición a la luz.

Propiedades fisicas

Peso Molecular 701.50
DisolventeDMSO

Espectro

Abrir en Advanced Spectrum Viewer

Propiedades Espectrales

Excitación (nm)560
Emisión (nm)575

Calculadora

Preparación de la solución de stock común

Volumen de DMSO necesario para reconstituir la masa específica de ROS Brite™ DHCF a la concentración dada. Tenga en cuenta que el volumen es solo para preparar la solución madre. Consulte el protocolo experimental de muestra para conocer los buffers experimentales/fisiológicos apropiados.

0.1 mg0.5 mg1 mg5 mg10 mg
1 mM142.552 µL712.758 µL1.426 mL7.128 mL14.255 mL
5 mM28.51 µL142.552 µL285.103 µL1.426 mL2.851 mL
10 mM14.255 µL71.276 µL142.552 µL712.758 µL1.426 mL

Imagen

Figura 1. Imágenes de fluorescencia de la medición de ROS en células HeLa utilizando ROS Brite™ DHCF (Cat# 16053). Tratamiento con H2O2: las células se incubaron con ROS Brite™ DHCF durante 1 hora, luego se trataron con H2O2 1 mM a 37 °C durante 30 minutos. Control no tratado: las células HeLa se incubaron con ROS Brite™ DHCF a 37 °C durante 1 hora sin tratamiento con H2O2. La señal de fluorescencia se midió utilizando un microscopio de fluorescencia con un filtro TRITC.

Productos Similares

NameExcitation (nm)Emission (nm)
ROS Brite™ 670 *Optimized for Detecting Reactive Oxygen Species (ROS)*651670
ROS Brite™ 700 *Optimized for in Vivo Imaging*682701
ROS Brite™ APF *Optimized for Detecting Reactive Oxygen Species (ROS)*498517
ROS Brite™ HPF *Optimized for Detecting Reactive Oxygen Species (ROS)*498517

Bibliografiía

Ver todas las 13 bibliogrfias: Citation Explorer

Bone microenvironment regulative hydrogels with ROS scavenging and prolonged oxygen-generating for enhancing bone repair
Authors: Sun, Han and Xu, Juan and Wang, Yangyufan and Shen, Siyu and Xu, Xingquan and Zhang, Lei and Jiang, Qing
Journal: Bioactive Materials (2023): 477–496

Nanomodulators Capable of Timely Scavenging ROS for Inflammation and Prognosis Control Following Photothermal Tumor Therapy
Authors: Wang, Shuai and Huang, Jixi and Zhu, Hanyin and Zhu, Jing and Wang, Zhenqiang and Xing, Yuxin and Xie, Xiyue and Cai, Kaiyong and Zhang, Jixi
Journal: Advanced Functional Materials (2023): 2213151

N-cystaminylbiguanide MC001 prevents neuron cell death and alleviates motor deficits in the MPTP-model of Parkinson’s disease
Authors: Xu, Binglin and Wang, Xiaoquan and Xu, Zhengshuang and Li, Qinkai and Quan, Junmin
Journal: Neuroscience Letters (2022): 136751

Melanin Nanoparticle-Actuated Redox-State Perturbation and Temporally Photoactivated Thermal Stress for Synergistic Tumor Therapy
Authors: Zhu, Hanyin and Qu, Yongyi and Wang, Shuai and Huang, Jixi and Zhu, Jing and Wang, Lu and Cai, Kaiyong and Zhang, Jixi
Journal: ACS Biomaterials Science & Engineering (2022): 3944–3956

Toxin-Enabled “On-Demand” Liposomes for Enhanced Phototherapy to Treat and Protect against Methicillin-Resistant Staphylococcus aureus Infection
Authors: Zhuge, Deli and Chen, Mengchun and Yang, Xuewei and Zhang, Xufei and Yao, Lulu and Li, Li and Wang, Haonan and Chen, Hao and Yin, Qingqing and Tian, Dongyan and others,
Journal: Small (2022): 2203292

Detection of Vascular Reactive Oxygen Species in Experimental Atherosclerosis by High-Resolution Near-Infrared Fluorescence Imaging Using VCAM-1-Targeted Liposomes Entrapping a Fluorogenic Redox-Sensitive Probe
Authors: Manea, Simona-Adriana and Vlad, Mihaela-Loredana and Rebleanu, Daniela and Lazar, Alexandra-Gela and Fenyo, Ioana Madalina and Calin, Manuela and Simionescu, Maya and Manea, Adrian
Journal: Oxidative Medicine and Cellular Longevity (2021)

Noninvasive Photochemical Sealing for Achilles Tendon Rupture by Combination of Upconversion Nanoparticles and Photochemical Tissue Bonding Technology
Authors: Zhu, Yiming and Xie, Aiguo and Li, Ming and Zhang, Chihao and Ni, Tao
Journal: BioMed Research International (2020)

The Ultrastructural and Abnormal Calcium Handling in Pulmonary Vein Sleeve Cells, Atrial and Ventricular Myocytes During Ageing
Authors: Masoud, Said
Journal: (2018)

Human elongation factor 4 regulates cancer bioenergetics by acting as a mitochondrial translation switch
Authors: Zhu, Ping and Liu, Yongzhang and Zhang, Fenglin and Bai, Xiufeng and Chen, Zilei and Shangguan, Fugen and Zhang, Bo and Zhang, Lingyun and Chen, Qianqian and Xie, Deyao and others,
Journal: Cancer research (2018): 2813–2824

Thiol-Mediated Synthesis of Hyaluronic Acid-Epigallocatechin-3-O-Gallate Conjugates for the Formation of Injectable Hydrogels with Free Radical Scavenging Property and Degradation Resistance
Authors: Liu, Chixuan and Bae, Ki Hyun and Yamashita, Atsushi and Chung, Joo Eun and Kurisawa, Motoichi
Journal: Biomacromolecules (2017)

Referencias

View all 91 references: Citation Explorer

Lipoxin A inhibits porphyromonas gingivalis-induced aggregation and reactive oxygen species production by modulating neutrophil-platelet interaction and CD11b expression
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Application Notes

A Comparison of Fluorescent Red Calcium Indicators for Detecting Intracellular Calcium Mobilization in CHO Cells
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A New Red Fluorescent & Robust Screen Quest™ Rhod-4™ Ca2+Indicator for Screening GPCR & Ca2+ Channel Targets
A New Robust No-Wash FLIPR Calcium Assay Kit for Screening GPCR and Calcium Channel Targets
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FAQ

Are NADH and ROS related?
Are there any alternatives for ethidium bromide in agarose gels?
Are there any alternatives to Cy5?
Are there any calcium indicators that don’t require probenecid (PBC)?
Are there safer alternatives to ethidium bromide?

Which ROS reagent is best for use in small animals such as mice or rats? What is the recommended dosage?

AssayWise

Intracellular Total ROS Activity Assays
Total ROS Detection
Selecting the right ROS probe
Intracellular Nitric Oxide (NO) Assays
Multicolor Intracellular Calcium Detection Probes