Banana-Slice-Shaped Platinum-Based Nanosheets with Dual Phototherapeutic Functions for NIR Photothermal Tumor Therapy

Abstract Controllable synthesis of two-dimensional (2D) platinum (Pt)-based nanomaterials with high photothermal conversion property for near-infrared (NIR) photothermal tumor therapy (PTT) is highly desired yet challenging. Herein, we report iodide (I–)-engineered Pt-antimony nanosheets (PtSbI NSs) with an ultrathin banana-slice-shaped profile for PTT. These PtSbI NSs exhibit dual phototherapeutic functions including outstanding photothermal conversion efficiency (49.6%) versus PtSbI nanoparticles (24.2%), PtSb NSs (29.0%), and commercial Au NSs (10.7%) as well as excellent photothermal stability. When functionalized with aptamers targeting the tumor biomarker EpCAM, they can serve as a tumor-targeted nanozyme. Through reactive oxygen species generation, they effectively mitigate tumor hypoxia, induce selective tumor cell apoptosis, and facilitate synergistic photothermal–catalytic therapy, leading to an 83.3% reduction in tumor weight and a significant extension of survival in 4T1 breast cancer-bearing mice. This work is of great significance for advancing the synthesis and functionalization of 2D Pt-based nanomaterials employed in the PTT field and beyond.

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Publication Details

Journal
Nano Letters
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.nanolett.6c04212
Primary Topic
Nanoplatforms for cancer theranostics
Type
article
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article

Banana-Slice-Shaped Platinum-Based Nanosheets with Dual Phototherapeutic Functions for NIR Photothermal Tumor Therapy

Lingzheng Bu, Yanling Song, Yunhui Huang, Xingkai Zhao et al.
Nano Letters
Nanoplatforms for cancer theranostics
article

Banana-Slice-Shaped Platinum-Based Nanosheets with Dual Phototherapeutic Functions for NIR Photothermal Tumor Therapy

Lingzheng Bu, Yanling Song, Yunhui Huang, Xingkai Zhao, Stéphanie Belin, Xiaoqing Huang, Xia Lv, Yang Teng, Qingping Yu
article en

Abstract

Abstract Controllable synthesis of two-dimensional (2D) platinum (Pt)-based nanomaterials with high photothermal conversion property for near-infrared (NIR) photothermal tumor therapy (PTT) is highly desired yet challenging. Herein, we report iodide (I–)-engineered Pt-antimony nanosheets (PtSbI NSs) with an ultrathin banana-slice-shaped profile for PTT. These PtSbI NSs exhibit dual phototherapeutic functions including outstanding photothermal conversion efficiency (49.6%) versus PtSbI nanoparticles (24.2%), PtSb NSs (29.0%), and commercial Au NSs (10.7%) as well as excellent photothermal stability. When functionalized with aptamers targeting the tumor biomarker EpCAM, they can serve as a tumor-targeted nanozyme. Through reactive oxygen species generation, they effectively mitigate tumor hypoxia, induce selective tumor cell apoptosis, and facilitate synergistic photothermal–catalytic therapy, leading to an 83.3% reduction in tumor weight and a significant extension of survival in 4T1 breast cancer-bearing mice. This work is of great significance for advancing the synthesis and functionalization of 2D Pt-based nanomaterials employed in the PTT field and beyond.

Nano Letters
Xiamen University (CN), Max Planck Institute for Chemical Physics of Solids (DE)
Openalex Percentile: Top 23%
Nanoplatforms for cancer theranostics
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Banana-Slice-Shaped Platinum-Based Nanosheets with Dual Phototherapeutic Functions for NIR Photothermal Tumor Therapy — Lingzheng Bu, Yanling Song, et al. · Nano Letters (2026) | TGRS Research Map | TGRS