human brain glioma cell line u87 (ATCC)
99
Structured Review
ATCC
human brain glioma cell line u87
Human Brain Glioma Cell Line U87, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 10555 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/human+brain+glioma+cell+line+u87/U-87+MG/pm41905987-62-1-10
Average 99 stars, based on 10555 article reviews
Human Brain Glioma Cell Line U87, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 10555 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/human+brain+glioma+cell+line+u87/U-87+MG/pm41905987-62-1-10
Average 99 stars, based on 10555 article reviews
human brain glioma cell line u87 - by Bioz Stars,
2026-09
99/100 stars
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Cell Culture:Article Title: Indocyanine green-loaded gold nanostars for sensitive SERS imaging and subcellular monitoring of photothermal therapy. Article Snippet: The work shows a typical nanothermometer is incorporated in the gold nanostar-based theranostic probe to realize SERS imaging-based real-time sensitive monitoring of microscopic temperature in photothermal therapy, presenting a promising tool in terms of spatial resolution.. An exogenous thermosensitive molecule, indocyanine green, is selected as the Raman reporter to induce the probe unaff ected by the cellular microenvironment to effi ciently monitor photothermal therapy in various cell types.. This study is promising for a better understanding of the biological processes at the subcellular level, and reveals that the SERS-based monitoring technique can off er great potential for theranostics. Article Title: Highly Sensitive MoS 2 –Indocyanine Green Hybrid for Photoacoustic Imaging of Orthotopic Brain Glioma at Deep Site Article Snippet: .. The Article Title: Single-Layer MoS2Nanosheets with Amplified Photoacoustic Effect for Highly Sensitive Photoacoustic Imaging of Orthotopic Brain Tumors Article Snippet: As a hybrid and non-ionizing imaging modality, photoacoustic (PA) imaging has been developing rapidly over the past two decades, making important advances toward clinical applications in recent years.. [1,2] This novel technology generally employs a short laser pulse to excite the imaged object and a MHz ultrasound (US) transducer to detect acoustic signals.. [3] As a result, PA imaging retains a high optical contrast while overcoming the limitations of conventional optical imaging, providing tomographic imaging capabilities with high spatial resolution (within hundreds of micrometers) and a large penetration depth (up to centimeters). |